US20040202132A1 - Moving mobile wireless device having continuing service from the same internet server - Google Patents

Moving mobile wireless device having continuing service from the same internet server Download PDF

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Publication number
US20040202132A1
US20040202132A1 US10/836,241 US83624104A US2004202132A1 US 20040202132 A1 US20040202132 A1 US 20040202132A1 US 83624104 A US83624104 A US 83624104A US 2004202132 A1 US2004202132 A1 US 2004202132A1
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access point
service
server
short range
cellular telephone
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US10/836,241
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Tomi Heinonen
Timo Laitinen
Jarkko Lempio
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Nokia Oyj
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Nokia Oyj
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Assigned to NOKIA CORPORATION reassignment NOKIA CORPORATION ASSIGNMENT OF ASSIGNORS INTEREST (SEE DOCUMENT FOR DETAILS). Assignors: LEMPIO, JARKKO, HEINONEN, TOMI, LAITINEN, TIMO M.
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/28Data switching networks characterised by path configuration, e.g. LAN [Local Area Networks] or WAN [Wide Area Networks]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/0005Control or signalling for completing the hand-off
    • H04W36/0011Control or signalling for completing the hand-off for data sessions of end-to-end connection
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W28/00Network traffic management; Network resource management
    • H04W28/16Central resource management; Negotiation of resources or communication parameters, e.g. negotiating bandwidth or QoS [Quality of Service]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W36/00Hand-off or reselection arrangements
    • H04W36/14Reselecting a network or an air interface
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W84/00Network topologies
    • H04W84/02Hierarchically pre-organised networks, e.g. paging networks, cellular networks, WLAN [Wireless Local Area Network] or WLL [Wireless Local Loop]
    • H04W84/10Small scale networks; Flat hierarchical networks
    • H04W84/12WLAN [Wireless Local Area Networks]
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04WWIRELESS COMMUNICATION NETWORKS
    • H04W92/00Interfaces specially adapted for wireless communication networks
    • H04W92/04Interfaces between hierarchically different network devices
    • H04W92/14Interfaces between hierarchically different network devices between access point controllers and backbone network device

Definitions

  • the invention disclosed broadly relates to ubiquitous computing and more particularly relates to improvements in short range wireless technology.
  • Short range wireless systems have a typical range of one hundred meters or less. They often combine with systems wired to the Internet to provide communication over long distances.
  • the category of short range wireless systems includes wireless personal area networks (PANs) and wireless local area networks (LANs). They have the common feature of operating in unlicensed portions of the radio spectrum, usually either in the 2.4 GHz Industrial, Scientific, and Medical (ISM) band or the 5 GHz Unlicensed-National Information Infrastructure (U-NII) band.
  • ISM Industrial, Scientific, and Medical
  • U-NII Unlicensed-National Information Infrastructure
  • Wireless personal area networks use low cost, low power wireless devices that have a typical range of ten meters.
  • the best known example of wireless personal area network technology is the Bluetooth Standard, which operates in the 2.4 GHz ISM band.
  • Wireless local area networks generally operate at higher peak speeds of between 10 to 100 Mbps and have a longer range, which requires greater power consumption.
  • Wireless local area networks are typically used as wireless links from portable laptop computers to a wired LAN, via an access point (AP). Examples of wireless local area network technology include the IEEE 802.11 Wireless LAN Standard and the HiperLAN Standard, which operates in the 5 GHz U-NII band.
  • Bluetooth is a short range radio network, originally intended as a cable replacement. It can be used to create networks of up to eight devices operating together.
  • the Bluetooth Special Interest Group Specification Of The Bluetooth System, Volumes 1 and 2, Core and Profiles: Version 1.1, 22nd February, 2001, describes the principles of Bluetooth device operation and communication protocols.
  • the devices operate in the 2.4 GHz radio band reserved for general use by Industrial, Scientific, and Medical (ISM) applications.
  • Bluetooth devices are designed to find other Bluetooth devices within their ten meter radio communications range and to discover what services they offer, using a service discovery protocol (SDP).
  • SDP service discovery protocol
  • the SDP searching function relies on links being established between the requesting Bluetooth device, such as a stationary access point device, and the responding Bluetooth device, such as a mobile user's device.
  • the Link Controller layer in its transport protocol group handles the exchange of inquiry and paging packets to establish the initial link with the access point device. This process is relatively fast, typically being completed in approximately from one to five seconds.
  • the Logical Link Control and Adaptation Protocol (L2CAP) layer in the transport protocol group passes the link status up to the layers in the middleware protocol group.
  • L2CAP Logical Link Control and Adaptation Protocol
  • the SDP searching function in the middleware protocol group can then be used to find out about application programs in the responding Bluetooth device that may provide desired services.
  • the SDP searching function can require several seconds to complete, depending on the complexity of the search and the size of the device's registry.
  • WAP Wireless Application Environment
  • WAP-enabled wireless devices can use a microbrowser to display content on a small screen of the device.
  • WAP uses a combination of Internet protocols with other protocols especially modified to work with mobile devices.
  • the Internet protocols are: Point to Point Protocol (PPP), Internet Protocol (IP), and User Datagram Protocol (UDP).
  • the special mobile device protocols are: Wireless Transport Layer Security (WTLS), Wireless Transaction Protocol (WTP), Wireless Session Protocol (WSP), and Wireless Application Environment (WAE). It is the WAE that provides the microbrowser user interface for WAP.
  • PPP Point to Point Protocol
  • IP Internet Protocol
  • UDP User Datagram Protocol
  • WTLS Wireless Transport Layer Security
  • WTP Wireless Transaction Protocol
  • WSP Wireless Session Protocol
  • WAE Wireless Application Environment
  • each of the WAP protocol layers WTLS, WTP, WSP, and WAE must be established, which can require several more seconds to complete and possibly significant user interaction on the way.
  • the IEEE 802.11 Wireless LAN Standard defines at least two different physical (PHY) specifications and one common medium access control (MAC) specification.
  • the IEEE 802.11 (a) Standard is designed for either the 2.4 GHz ISM band or the 5 GHz U-NII band, and uses orthogonal frequency division multiplexing (OFDM) to deliver up to 54 Mbps data rates.
  • the IEEE 802.11 (b) Standard is designed for the 2.4 GHz ISM band and uses direct sequence spread spectrum (DSSS) to deliver up to 11 Mbps data rates.
  • the IEEE 802.11 Wireless LAN Standard describes two major components, the mobile station and the fixed access point (AP).
  • IEEE 802.11 networks can be configured where the mobile stations communicate with a fixed access point.
  • IEEE 802.11 also supports distributed activities similar those of the Bluetooth piconets.
  • the IEEE 802.11 standard provides wireless devices with service inquiry features similar to the Bluetooth inquiry and scanning features.
  • an IEEE 802.11 mobile station In order for an IEEE 802.11 mobile station to communicate with other stations in a network, it must first find the stations. The process of finding another station is by inquiring. Active inquiry requires the inquiring station to transmit queries and invoke responses from other wireless stations in a network. In an active inquiry, the mobile station will transmit a probe request frame. If there is a network on the same channel that matches the service set identity (SSID) in the probe request frame, a station in that network will respond by sending a probe response frame to the inquiring station. The probe response includes the information necessary for the inquiring station to access a description of the network. The inquiring station will also process any other received probe response and Beacon frames.
  • SSID service set identity
  • the station may change to another channel and repeat the process.
  • the station has accumulated information about the networks in its vicinity. Once a station has performed an inquiry that results in one or more network descriptions, the station may choose to join one of the networks.
  • the IEEE 802.11 Wireless LAN Standard is published in three parts as IEEE 802.11-1999; IEEE 802.11a-1999; and IEEE 802.11b-1999, which are available from the IEEE, Inc. web site http://grouper.ieee.org/groups/802/11.
  • the HiperLAN standard provides a wireless LAN with a high data rate of up to 54 Mbps and a medium-range of 50 meters.
  • HiperLAN wireless LANs provide multimedia distribution with video QoS, reserved spectrum, and good in-building propagation.
  • HiperLAN Type 1 is a dynamic, priority driven channel access protocol similar to wireless Ethernet.
  • HiperLAN Type 2 is reserved channel access protocol similar to a wireless version of ATM. Both HiperLAN Type 1 and HiperLAN Type 2 use dedicated spectrum at 5 GHz.
  • HiperLAN Type 1 uses an advanced channel equalizer to deal with intersymbol interference and signal multipath. HiperLAN Type 2 avoids these interference problems by using OFDM and a frequency transform function.
  • the HiperLAN Type 2 specification offers options for bit rates of 6, 16, 36, and 54 Mbps.
  • the physical layer adopts an OFDM multiple carrier scheme using 48 carrier frequencies per OFDM symbol. Each carrier may then be modulated using BPSK, QPSK, 16-QAM, or 64-QAM to provide different data rates.
  • the modulation schemes chosen for the higher bit rates achieve throughput in the range 30-50 Mbps.
  • the HiperLAN Type 1 is a dynamic, priority driven channel access protocol that can form networks of wireless devices.
  • HiperLAN Type 1 networks support distributed activities similar those of the Bluetooth piconets and IEEE 802.11 independent basic service sets (IBSS).
  • the HiperLAN Type 1 standard provides wireless devices with service inquiry features similar to those of the Bluetooth inquiry and scanning features and the IEEE 802.11 probe request and response features.
  • An overview of the HiperLAN Type 1 principles of operation is provided in the publication HiperLAN Type 1 Standard , ETSI ETS 300 652, WA2 December 1997.
  • HiperLAN Type 2 is a reserved channel access protocol that forms networks. HiperLAN Type 2 networks support distributed activities similar those of the HiperLAN Type 1 networks, Bluetooth piconets and IEEE 802.11 independent basic service sets (IBSS). HiperLAN Type 2 provides high speed radio communication with typical data rates from 6 MHz to 54 Mbps. It connects portable devices with broadband networks that are based on IP, ATM and other technologies. Centralized mode is used to operate HiperLAN Type 2 as an access network via a fixed access point. A central controller (CC) in the fixed access point provides QoS coordinates the access of the mobile stations support. User mobility is supported within the local service area and wide area roaming mobility can also be supported.
  • IBSS IEEE 802.11 independent basic service sets
  • the invention solves the problem of enabling a mobile wireless device to resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the access point.
  • Short range wireless systems include wireless personal area networks (PANs), such as Bluetooth networks and IrDA Infrared Data Protocol networks, and wireless local area networks (LANs), such as the IEEE 802.11 wireless LANs and HiperLAN networks.
  • PANs personal area networks
  • LANs wireless local area networks
  • the invention involves the use of mobile wireless devices that are equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
  • An example of such a mobile wireless device is a Bluetooth-equipped cellular telephone.
  • a mobile wireless device During the period when a mobile wireless device is within the coverage area of a short range wireless access point, it sends a request for service to be obtained over the Internet from a network server.
  • the short range wireless access point forwards that request over the Internet to the server, augmented with additional information including the network address and geographic location of the access point.
  • the short range wireless access point receives a response message over the Internet from the server, including a global/local parameter.
  • the global/local parameter will notify the mobile wireless device whether the requested service is available outside the coverage area of the short range wireless access point.
  • the access point forwards the response message to the mobile wireless device, which uses the information in the message to contact the server over the Internet to download web pages or to conduct other server operations.
  • Regions outside the coverage area of the short range wireless access point are covered by regional cellular telephone access points, such as cellular telephone base stations. Suitable cellular telephone systems include GSM, GPRS, UMTS, EDGE, and the like.
  • the mobile wireless device detects that it has left the coverage area of the short range wireless access point while in contact with the server, it will determine whether the global/local parameter indicates that the service is global. For example, the server may have been in the process of downloading web pages. If the parameter is global, then the mobile wireless device stores a bookmark of the server's URL, for example the URL and path name for one of the prior web pages downloaded from the server. The mobile wireless device displays a notice to the user offering the user the option of continuing the contact with the server over the regional cellular telephone network.
  • the handover address may be stored in the mobile wireless device or alternately, it may be stored in the short range wireless access point.
  • the stored handover address may be a default address or alternately, it may be a handover address included in the prior response message from the server.
  • the handover address will typically be the telephone number of a protocol gateway, such as a WAP gateway, connected between the cellular telephone network and the Internet.
  • a cellular telephone connection is made by the mobile wireless device with the regional cellular telephone access point. Then, a cellular telephone call is placed to the protocol gateway. When the call is completed over the telephone network from the mobile wireless device to the protocol gateway, the mobile wireless device sends a message to the protocol gateway.
  • the mobile wireless device includes the Wireless Application Protocol (WAP) and if the protocol gateway is a WAP gateway, then a Wireless Session Protocol (WSP) request can be generated in the mobile wireless device.
  • the WSP request is generated by a Wireless Markup Language (WML) “ ⁇ go>” element in the application program of the mobile wireless device, which specifies the server URL.
  • the message can include an HTTP request method, either the GET or the POST method. When GET is used, the data being sent to the server is appended to the end of the URL. When POST is used, the data is passed in the body of the message.
  • the WAP gateway then converts the WSP request into an HTTP request and forwards it over the Internet to the network server.
  • the server responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device.
  • WML, HTML, or graphics files can be returned by the server to the WAP gateway.
  • the server can respond to a GET method request by sending the requested web page to the protocol gateway.
  • the server can respond by executing CGI, ASP, or JSP scripts or other server programs to dynamically generate WML or HTML content to be returned to the WAP gateway.
  • the protocol gateway then performs an HTML to WML conversion of the content, followed by WML encoding to form the WSP response message.
  • the WSP response message is then transmitted by the WAP gateway over the telephone network to the cellular telephone access device.
  • the cellular telephone access device transmits the WSP response message containing the content, over the cellular telephone air link to the mobile wireless device.
  • Additional options can be offered to the user when resuming the service. Alternately, the user may choose to save the URL link in the terminal memory and continue the service later via digital video broadcast or other broadcasting medium.
  • the mobile wireless device can resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the short range wireless access point.
  • FIG. 1 shows the user's wireless device 100 at a first location “A Street” near two short range wireless access points 140 and 140 A and then later at a second location “B Street”, near a regional cellular telephone access point 148 .
  • FIG. 1A is a flow diagram of processing a service request in the access point 140 .
  • FIG. 1B is a flow diagram of processing a service handoff in the mobile wireless device 100 .
  • FIG. 1C illustrates the Bluetooth packet structure for the user device 100 request to the access point 140 , requesting service from the server 180 .
  • FIG. 1D illustrates the Bluetooth packet structure for the access point 140 forwarding a response message 435 to the user device 100 , from the server 180 .
  • FIG. 1E is a data flow diagram showing the service request packet 420 from the user's device 100 being forwarded by the access point 140 in the augmented service request message 440 , to the content server 180 .
  • FIG. 1F is a data flow diagram showing the content server 180 returning a response message 435 to the access point 140 , including a local/global parameter 557 and a handoff address 582 .
  • FIG. 1G is a data flow diagram showing the access point 140 sending the response message 435 to the user's mobile device 100 .
  • FIG. 1H illustrates the respective prior art protocol stacks for the user's Bluetooth device 100 , access point 140 , and content server 180 .
  • FIG. 1I illustrates an alternate embodiment of the invention, with the respective protocol stacks for the user's Bluetooth device 100 and access point 140 exchanging content by means of an Access Point Service Indicator (APSI) message 550 .
  • APSI Access Point Service Indicator
  • FIG. 1J is a functional block diagram of the user's wireless device 100 , showing the APSI message buffer 236 in the alternate embodiment of the invention.
  • FIG. 2A is a functional block diagram of the wireless access point 140 , with the receive packet buffer 252 , trigger word table 260 , APSI message cache 285 , and APSI cache hit logic 283 .
  • FIG. 2B is a data flow diagram of the alternate embodiment of the invention, showing the inquiry response packet 510 from the user's device 100 being detected by the access point 140 and the access point sending an event message 610 to the content server 180 in response to determining that the access point 140 does not have a corresponding APSI message in its cache.
  • FIG. 2C is a data flow diagram the alternate embodiment of the invention, showing the content server 180 returning a content message 620 to the access point 140 , in response to the server having processed the event message 610 .
  • FIG. 2D is a data flow diagram showing the alternate embodiment of the invention, the access point 140 sending the APSI message 550 to the user's mobile device 100 , which the access point has assembled from the content message 620 received from the server 180 .
  • FIG. 3 is a flow diagram of the alternate embodiment of the invention, showing sequence of operational steps performed by the user's device 100 in processing an APSI message
  • FIG. 3A is a flow diagram of an alternate embodiment of the invention, which shows the operation of the User's Bluetooth device 100 when receiving an APSI message 550 without any previous warnings.
  • FIG. 4A shows the alternate embodiment of the invention with the Bluetooth packet structure for an inquiry packet 500 sent by a Bluetooth access point device to the user's device 100 .
  • FIG. 4B shows the alternate embodiment of the invention with the Bluetooth frequency hop synchronization (FHS) packet structure for an inquiry response packet 510 sent by the user's device 100 .
  • FHS Bluetooth frequency hop synchronization
  • FIG. 4C shows the alternate embodiment of the invention with the Bluetooth frequency hop synchronization (FHS) packet structure for the paging packet 530 sent by the Bluetooth access point device.
  • FHS Bluetooth frequency hop synchronization
  • FIG. 4D shows the alternate embodiment of the invention with the Bluetooth packet structure for the subsequent APSI message.
  • FIG. 5 is a network process diagram of the alternate embodiment of the invention, showing the interaction between the user's device 100 , the access point 140 , and the content server 180 .
  • FIG. 1 shows the user's wireless device 100 at a first location “A Street” near two short range wireless access points 140 and 140 A and then later at a second location “B Street”, near a regional cellular telephone access point 148 .
  • the mobile wireless device 100 of FIG. 1 is equipped with circuits 103 for short range wireless systems and circuits 105 for cellular telephone communications systems.
  • Short range wireless systems include wireless personal area networks (PANs), such as Bluetooth networks and IrDA Infrared Data Protocol networks, and wireless local area networks (LANs), such as the IEEE 802.11 wireless LANs and HiperLAN networks.
  • Cellular telephone communications systems include GSM, GPRS, UMTS, EDGE, and the like.
  • An example of such a mobile wireless device 100 is a Bluetooth-equipped GSM cellular telephone.
  • the mobile wireless device 100 During an initial period when the mobile wireless device 100 is within the coverage area of the short range wireless access point 140 , it sends a request for service to be obtained, for example, over the Internet 144 from network server 180 .
  • the short range wireless access point 140 is a Bluetooth access point and the short range wireless circuits in the mobile wireless device 100 are Bluetooth circuits.
  • the user has previously actuated the Bluetooth mode button “BT” on the keypad 104 and the Bluetooth circuits have completed their exchanged of inquiry, paging, and service discovery packets with the Bluetooth access point 140 .
  • the user wishes to view the daily news service provided by the server 180 .
  • FIG. 1A is a flow diagram of processing the user's service request in the access point 140 .
  • Step 340 receives the user request 420 , which is shown in FIG. 1C.
  • the Bluetooth packet structure 420 for the user's request 425 includes the access code 422 for the piconet master in the piconet formed by the mobile Bluetooth device 100 and the Bluetooth access point 140 , the header 424 containing the slave device number 421 and the packet type 423 , and the payload portion.
  • the payload portion includes the payload header 427 and the payload data 428 .
  • the user's service request 425 to the server 180 is contained in the payload data 428 .
  • the Bluetooth access point forwards the user's service request 425 in an augmented service request message 440 to the server 180 .
  • FIG. 1 E is a data flow diagram showing the service request 425 from the user's device 100 being forwarded by the access point 140 in the augmented service request message 440 , over, for example, the LAN 142 and the Internet 144 to the content server 180 .
  • the augmented service request message 440 may include the payload data 281 , the address 284 of the user's Bluetooth device 100 , its class of device 286 , access point geographic location information 288 , the access point address 290 , the destination server path name 292 and the destination server URL 294 .
  • FIG. 1E shows the augmented service request message 440 being sent to the news server 180 .
  • the Bluetooth access point receives a response message 435 , shown in FIG. 1F, from server 180 .
  • FIG. 1F is a data flow diagram showing the content server 180 returning a response message 435 to the access point 140 , including a local/global parameter 557 and a handoff address 582 .
  • the local/global parameter 557 specifies whether the service from the server 180 can be reached also through alternate channels or bearers.
  • the response message 435 includes the local/global parameter 557 , and may also include priority information 558 , timer information 560 , display mode information 562 , content 564 , a title 566 , a bit map 568 , soft key — 1 selection information 570 , soft key — 2 selection information 572 , soft key — 3 selection information 574 , location information 576 , URL information 578 , service type information 580 , the handoff address 582 and an end marker 584 .
  • the Bluetooth access point forwards the response message 435 to the user's Bluetooth device 100 , as shown in FIGS. 1D and 1G.
  • FIG. 1D illustrates the Bluetooth packet structure 430 for the access point 140 forwarding a response message 435 to the user device 100 , from the server 180 .
  • FIG. 1G is a data flow diagram showing the access point 140 sending the response message 435 to the user's mobile device 100 .
  • the Bluetooth packet structure 430 for the user's request 435 includes the access code 432 for the piconet master in the piconet formed by the mobile Bluetooth device 100 and the Bluetooth access point 140 , the header 434 containing the slave device number 431 and the packet type 433 , and the payload portion 436 .
  • the payload portion includes the payload header 437 and the payload data 438 .
  • the response message 435 is contained in the payload data 438 .
  • FIG. 1B is a flow diagram of processing in the mobile wireless device 100 .
  • the mobile wireless device 100 receives the server response message 435 and in step 352 , it stores the local/global parameter 557 in a buffer in its memory 202 , as shown in FIG. 1J.
  • the mobile wireless device 100 receives the handover address 582 , which it stores in a buffer in its memory 202 , as shown in FIG. 1J.
  • the mobile wireless device 100 uses the information in the server response message 435 to contact the server over the Internet to download web pages or to conduct other server operations.
  • Regions outside the coverage area of the short range wireless access point 140 of FIG. 1, are typically covered by regional cellular telephone access points 148 , such as cellular telephone base stations. Suitable cellular telephone systems include GSM, GPRS, UMTS, EDGE, and the like.
  • the mobile wireless device 100 detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180 , it will determine whether the global/local parameter 557 indicates that the service is global. This step is shown as step 354 in FIG. 1B. If decision block 356 determines that the parameter 557 is “Local”, then step 358 ends the service with the server 180 .
  • the process of FIG. 1B flows to step 360 .
  • the server 180 may have been in the process of downloading web pages when interrupted by the motion of the mobile device 100 .
  • the mobile wireless device 100 stores a bookmark of the server's URL 123 , as shown in step 360 .
  • the URL and path name may be saved for one of the prior web pages downloaded from the server 180 .
  • the mobile wireless device 100 displays in FIG. 1, a notice 121 “GLOBAL” or some expression having a similar meaning, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network 116 .
  • a stored handover address is accessed, as shown in step 364 .
  • the handover address may be stored in the mobile wireless device 100 or alternately, it may be stored in the short range wireless access point 140 .
  • the stored handover address may be a default address or alternately, it may be a handover address included in the prior server response message 435 from the server 180 .
  • the handover address will typically be the telephone number of a protocol gateway 118 , such as a WAP gateway, connected between the cellular telephone network 116 and the Internet 144 .
  • Step 364 the user actuates the cellular telephone mode button “GSM” on the keypad 104 and makes a cellular telephone connection between the mobile wireless device 100 and the regional cellular telephone access point 148 . Then, a cellular telephone call is placed over the telephone network 116 to the protocol gateway 118 . When the call is completed over the telephone network 116 from the mobile wireless device 110 to the protocol gateway 118 , the mobile wireless device 100 sends a message to the protocol gateway 118 .
  • GSM cellular telephone mode button
  • a Wireless Session Protocol (WSP) request can be generated in the mobile wireless device 100 .
  • the WSP request is generated by a Wireless Markup Language (WML) “ ⁇ go>” element in the application program 106 of the mobile wireless device 100 , which specifies the server URL.
  • the message can include an HTTP request method, either the GET or the POST method. When GET is used, the data being sent to the server 180 is appended to the end of the URL. When POST is used, the data is passed in the body of the message.
  • the WAP gateway 118 then converts the WSP request into an HTTP request and forwards it over the Internet 144 to the server 180 .
  • the server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100 .
  • WML, HTML, or graphics files can be returned by the server 180 to the WAP gateway 118 .
  • the server 180 can respond to a GET method request by sending the requested web page to the protocol gateway 118 .
  • the server 180 can respond by executing CGI, ASP, or JSP scripts or other server programs to dynamically generate WML or HTML content to be returned to the WAP gateway 118 .
  • the protocol gateway 118 then performs an HTML to WML conversion of the content, followed by WML encoding for form the WSP response message.
  • the WSP response message is then transmitted by the WAP gateway 118 over the telephone network 116 to the cellular telephone access device 148 .
  • the cellular telephone access device 148 then transmits the WSP response message containing the content, over the cellular telephone air link to cellular telephone antenna 105 and circuits 208 of the mobile wireless device 100 . Additional options can be offered to the user when resuming the service. Alternately, the user may choose to save the URL link in the terminal memory and continue the service later via digital broadcast or other broadcasting medium.
  • the mobile wireless device can resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the short range wireless access point.
  • This inventive system can easily be implemented also to any other existing or future protocol techniques.
  • the invention is described for mobile wireless devices and wireless telephones implementing the Wireless Application Protocol (WAP) standard.
  • WAP Wireless Application Protocol
  • Other protocols that can be used in the invention to access the Internet include I-Mode protocol and mobile IPv6 protocol.
  • the user's WAP-enabled mobile wireless device 100 can be a wireless mobile phone, pager, two-way radio, smartphone, personal communicator, or the like.
  • the user's WAP-enabled portable wireless device 100 accesses a small file called a deck which is composed of several smaller pages called cards which are small enough to fit into the display area of the device's microbrowser 102 .
  • the small size of the microbrowser 102 and the small file sizes accommodate the low memory constraints of the portable wireless device 100 and the low-bandwidth constraints of a wireless network.
  • the cards are written in the Wireless Markup Language (WML) which is specifically devised for small screens and one-hand navigation without a keyboard.
  • WML Wireless Markup Language
  • the WML language is scaleable from two-line text displays on the microbrowser 102 of a cellular telephone, up through large LCD screens found on smart phones and personal communicators.
  • the cards written in the WML language can include programs written in WMLScript, which is similar to JavaScript, but makes minimal demands on memory and CPU power of the device 100 because it does not contain many of the unnecessary functions found in other scripting languages.
  • the microbrowser 102 enables the user to navigate through the cards being displayed and to select options that are programmed by the application programs 106 .
  • the Nokia WAP Client Version 2.0 is a software product containing the components necessary to implement the WAP client on the wireless device 100 . These components include a Wireless Markup Language (WML) Browser, WMLScript engine, Push Subsystem, and Wireless Protocol Stack.
  • the Nokia WAP Client is a source-code product that can port and integrate into wireless devices such as mobile phones and wireless PDAs.
  • Application programs 106 stored in the wireless device 100 interact with the WAP Client to implement a variety of communications applications. Details of the Nokia WAP Client Version 2.0 can be found in the online paper: Nokia WAP Client Version 2.0 , Product Overview , Nokia Internet Communications, 2000, www.nokia.com/corporate/wap.
  • the WAP Client includes the Wireless Public Key infrastructure (PKI) feature, providing the infrastructure and the procedures required for authentication and digital signatures for servers and mobile clients.
  • PKI Wireless Public Key infrastructure
  • Wireless PKI is a certificate-based system that utilizes public/private key pairs associated with each party involved in a mobile transaction.
  • WIM Wireless Identity Module
  • WAP Client is a security token feature of the WAP Client, which includes security features, such as the public and private keys and service certificates, needed for user authentication and digital signatures. Additionally, it has the ability to perform cryptographic operations to encrypt and decrypt messages.
  • the WAP protocol gateway 118 links the Internet 144 and the telephone network 116 .
  • the WAP protocol gateway 118 includes the Wireless Public Key infrastructure (PKI) feature to help provide a secure Internet connection to the wireless device 100 .
  • PKI Wireless Public Key infrastructure
  • the WAP protocol gateway 118 enables the WAP-enabled wireless device 100 to access Internet applications such as headline news, exchange rates, sports results, stock quotes, online travel and banking services, or to download distinctive ringing tones.
  • the user's WAP-enabled portable wireless device 100 communicates with the cellular telephone access point 148 and can exchange messages for distances up to several kilometers.
  • the types of wireless networks supported by the WAP standard include GSM, GPRS, UMTS, EDGE, CDPD, CDMA, TDMA, 3 G-Broadband, and the like.
  • the user's device 100 sends the URL, via the cellular telephone access point 148 and the telephone network 116 , to the gateway 118 using WAP protocols.
  • the gateway 118 translates the WAP request into an HTTP request and sends it over the Internet 144 to the server 180 , via Transmission Control Protocol/Internet Protocol (TCP/IP) interfaces.
  • TCP/IP Transmission Control Protocol/Internet Protocol
  • the server 180 handles the request just like any other HTTP request received over the Internet.
  • the server 180 either returns a WML deck or a HyperText Markup Language (HTML) page back to the gateway 118 using standard server programs written, for example in Common Gateway Interface (CGI) programs, Java servlets, or the like.
  • CGI Common Gateway Interface
  • the gateway 118 receives the response from the server 180 on behalf of the user's device 100 . If the response is an HTML page, it gets transcoded into WML if necessary. Then the WML and WMLScript coding is encoded into a byte code that is then sent to the user's device 100 .
  • the user's device 100 receives the response in the WML byte code and displays the first card in the deck on the microbrowser 102 to the user.
  • the protocol gateway 118 includes a WAP protocol stack organized into five different layers.
  • An application layer is the wireless application environment, which executes portable applications and services.
  • a session layer is the wireless session protocol, which supplies methods for the organized exchange of content between client/server applications.
  • a transaction layer is the wireless transaction protocol, which provides methods for performing reliable transactions.
  • a security layer is the wireless transport layer security, which provides authentication, privacy, and secure connections between applications.
  • the transport layer is the wireless datagram protocol, which shelters the upper layers from the unique requirements of the diverse wireless network protocols, such as GSM, GPRS, UMTS, EDGE, etc. Additional information about the WAP standard and the WAP protocol stack can be found in the book by Charles Arehart, et al. entitled, Professional WAP , published by Wrox Press Ltd., 2000 (ISBN 1-861004-04-1).
  • FIG. 1H illustrates the respective prior art protocol stacks used for the user's Bluetooth device 100 , the Bluetooth access point 140 , and the content server 180 .
  • the protocol stack for Bluetooth device is made up of three protocol groups: the transport protocol group, the middleware protocol group and the application group.
  • the transport protocol group includes the link controller and baseband 216 , the link manager 218 and the logical link control and adaptation protocol (L2CAP) 220 ′.
  • L2CAP logical link control and adaptation protocol
  • the transport protocol group enables Bluetooth devices to locate each other and to create, configure, and manage the physical and logical links that allow higher layer protocols and applications to pass data through these transport protocols.
  • the middleware protocol group includes a serial port emulator protocol called RFCOMM, and the Internet protocols: point-to-point protocol (PPP), Internet protocol (IP), and user datagram protocol (UDP).
  • the application group includes the wireless application protocol (WAP) and the wireless application environment (WAE), as well as graphic user interface (GUI) programs 234 and application programs.
  • WAP wireless application protocol
  • WAE wireless application environment
  • GUI graphic user interface
  • SDP service discovery protocol
  • the access point 140 includes the same transport protocol group and middleware protocol group protocol layers.
  • a gateway node 146 which includes the UDP, IP, and PPP layers.
  • the content server 180 includes the middleware layers and the WAP and WAE layers of the application group.
  • the purpose of FIG. 1H is to illustrate that the prior art requires the user's device 100 to set up all of the protocol layers in the middleware protocol group and in the application group in order to receive even the most simple content 564 from the content server 180 .
  • the time required to set up all of the protocol layers in the user's device 100 in order to establish a connection with the access point device 140 can exceed the short interval during which the user's device 100 is within communication range of the access point 140 .
  • FIG. 1I illustrates the respective protocol stacks for the user's Bluetooth device 100 and the access point 140 exchanging content 564 by means of an Access Point Service Indicator (APSI) message 550 , in accordance with an alternate embodiment of the invention.
  • the L2CAP layer 220 in the user's device 100 is modified to detect a unique class of device (CoD) value in either a paging packet or an inquiry response packet from the L2CAP layer 220 in the access point 140 .
  • CoD class of device
  • the user's device 100 detects the arrival of a paging packet with the unique CoD value, it indicates that the next packet to be sent by the access point 140 is an access point service indication (APSI) message.
  • APSI access point service indication
  • the L2CAP layer 220 in the user's device 100 loads it into an APSI message buffer 236 .
  • the L2CAP layer verifies that the packet header for the APSI message 550 has a unique message ID indicating that it is in fact, an APSI message from the access point.
  • the L2CAP layer immediately passes the APSI message directly up to the GUI application layer 234 , thereby bypassing the middleware protocol layers as well as the WAP layers in the user's device 100 . This significantly reduces the amount of time necessary to set up a connection to enable the user's device 100 to receive and display content 564 contained in the APSI message 550 .
  • FIG. 11 Also shown in FIG. 11 is the receipt by the access point device 140 of a content message 620 .
  • the access point device 140 accesses the content 564 from a content server such as the content server 180 in FIG. 1.
  • the resulting content message 620 contains the content 564 which is assembled by the access point 140 into the APSI message 550 of FIG. 1I.
  • the user's Bluetooth device 100 does not need to receive any previous indication of the arriving APSI message 550 .
  • the APSI message 550 packet having a unique message ID is received by the user's device 100 .
  • the user's Bluetooth device L2CAP layer determines that the message is, in fact, an APSI message 550 from the access point device 140 .
  • the user's Bluetooth device L2CAP layer loads the APSI message into an APSI message buffer 236 .
  • the L2CAP layer immediately passes the APSI message directly up to the GUI application layer 234 , thereby bypassing the middleware protocol layers as well as the WAP layers in the user's device 100 . This significantly reduces the amount of time necessary to set up a connection to enable the user's device 100 to receive and display content 564 contained in the APSI message 550 .
  • FIG. 1J is a functional block diagram of an the user's Bluetooth device 100 , showing the APSI message buffer 236 , in accordance with the invention.
  • FIG. 1J shows a memory 202 , connected by means of a bus 204 to a Bluetooth radio 206 and its antenna 103 , a keypad 104 , a central processor 210 , a display 212 , and a cellular telephone radio 208 and its antenna 105 .
  • the memory 202 stores program instructions which are sequences of operational steps, which, when executed by the central processor 210 , carry out the function of the invention.
  • the memory 202 is shown partitioned into transport protocol group 214 , middleware group 224 , and application group 235 .
  • a link controller and baseband 216 there is a link controller and baseband 216 , a link manager 218 , a logical link control and adaptation protocol 220 , and an APSI message buffer 236 .
  • the middleware protocol group 224 is the RFCOMM, the PPP, the IP, the UDP and SDP protocol layers.
  • the application group 235 is a GUI application 234 , an application program 106 , a display buffer 244 , the WAE and the WAP protocol layers, a buffer for the local/global parameter 557 and a buffer for the handoff address 582 .
  • APSI message 550 contained in the APSI message buffer 236 is recognized by the logical link control and adaptation protocol 220 , and the body 238 of the APSI message 550 is immediately provided over the path 242 to the GUI application 234 and the application program 106 .
  • FIG. 2A is a functional block diagram of an alternate embodiment the Bluetooth access point 140 , with a receive packet buffer 252 , a trigger word table 260 , an APSI message cache 285 , and an APSI cache hit logic 283 .
  • a server notification message table 280 is also shown in FIG. 2A.
  • the access point 140 stores Access Point Service Indicator (APSI) messages in the APSI message cache 285 , which characterize service platform offerings.
  • the APSI message 550 includes a header 554 which contains a unique APSI message ID 556 .
  • the access point uses the information in the received packet as stimuli to be matched with trigger words stored in the trigger word table 260 .
  • the address of the device 100 in field 520 can be matched with address values 266 in the trigger word table 260 .
  • the class of device of the device 100 in field 522 can be compared with class of device values 268 stored in the trigger word table 260 . If there is a match, then the APSI message cache 285 is checked by means of the APSI cache hit logic 283 , to determine if a corresponding APSI message is stored in the cache 285 .
  • the APSI message is immediately sent to the mobile Bluetooth device 100 . If there is no corresponding APSI message in the message cache 285 , then the APSI cache hit logic 283 signals the server notification message table 280 to send a server notification message 610 to a content server specified in the message.
  • FIG. 2B is a dataflow diagram of an alternate embodiment of the invention, showing an inquiry response packet 510 from the user's device 100 being detected by the access point 140 .
  • FIG. 2B shows the access point sending an event message 610 to the content server 180 in response to the access point determining that it does not have a corresponding APSI message in its cache 285 .
  • the event message 610 includes specific data values for a server notification message number 282 , trigger word number 262 ′, the address 284 of the user's Bluetooth device 100 , its class of device 286 , other information 288 , the access point address 290 , the destination server path name 292 and the destination server URL 294 .
  • FIG. 2B shows the event message 610 being sent to the news server 180 .
  • FIG. 2C is a dataflow diagram of an alternate embodiment of the invention, showing the content server 180 returning a content message 620 to the access point 140 , in response to the server 180 having processed the event message 610 .
  • FIG. 2C shows that the content message 620 includes content information, which will ultimately be incorporated into the APSI message 550 .
  • FIG. 2D is a dataflow diagram of an alternate embodiment of the invention, showing the access point 140 sending the APSI message 550 to the user's mobile device 100 , which the access point 140 has assembled from the content message 620 received from the server 180 .
  • FIG. 3 is a flow diagram of the operation of the User's Bluetooth device 100 according to one alternate embodiment of the invention when receiving an APSI message 550 .
  • the short range wireless access point forwards that request over the Internet to the server, augmented with additional information including the network address and geographic location of the access point.
  • the short range wireless access point receives a response message over the Internet from the server, including a global/local parameter.
  • the global/local parameter will notify the mobile wireless device whether the requested service is available outside the coverage area of the short range wireless access point.
  • the access point forwards the response message to the mobile wireless device, which uses the information in the message to contact the server over the Internet to download web pages or to conduct other server operations.
  • FIG. 3 shows the following steps 300 to 332 .
  • Step 300 User device 100 receives the paging packet 530 (FIG. 4C) from the access point (AP) device 140 .
  • Step 302 The user device's L2CAP layer 220 determines in decision block 304 , if the class of device (CoD) field 542 in the paging packet 530 indicates that the next packet is an Access Point Service Indication (APSI) message 550 .
  • CoD class of device
  • APSI Access Point Service Indication
  • Step 320 If it is, then when the user's device 100 receives the next packet(s) from the AP 140 , the L2CAP layer 220 loads it into an APSI message buffer 236 .
  • Step 322 The L2CAP layer 220 verifies that packet header 554 indicates an APSI message 550 from the AP 140 .
  • Step 324 the L2CAP layer 220 passes the APSI message 550 directly to the GUI application layer 234 .
  • the APSI message 550 contains fields for content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557 , the handoff address 582 , and URL.
  • Step 326 The GUI layer 234 then loads the content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557 , the handoff address 582 , and URL from the APSI message 550 into the display buffer 244 and other buffers.
  • Step 328 Then, the user selectively enters an input to the GUI 234 to establish a connection with the AP 140 for a session with the service platform server 180 .
  • Step 330 The user device 100 and the AP 140 then open an SDP and/or a non-SDP channel and they begin a session.
  • Step 332 The AP 140 registers the user's device 100 with the service platform server 180 and requests service for the user's device 100 . Then, the user's device 100 and the service platform server 180 conduct a session via the AP 140 . The service platform server 180 can then download the maps, advertising and/or other service offerings to the mobile Bluetooth device 100 .
  • Regions outside the coverage area of the short range wireless access point 140 are covered by regional cellular telephone access points 148 , such as cellular telephone base stations.
  • the regions inside the short range wireless access ports are also covered by regional cellular telephone access points 148 .
  • the mobile wireless device 100 if it detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180 , it will determine whether the global/local parameter 557 indicates that the service is global which means in other words that the service can be acquired using other carriers/bearers. If the parameter 557 is global, then the mobile wireless device 100 may store a bookmark of the server's URL, for example the URL and path name for one of the prior web pages downloaded from the server 180 .
  • the mobile wireless device 100 displays a notice on browser 102 to the user, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network. If the user selects to continue the contact with the server 180 , then a stored handover address 582 is accessed.
  • the handover address 582 may be stored in the mobile wireless device 100 or alternately, it may be stored in the short range wireless access point 140 .
  • the stored handover address 582 may be a default address or alternately, it may be a handover address included in the prior response message from the server 180 .
  • the handover address 582 will typically be the telephone number of a protocol gateway 118 , such as a WAP gateway, connected between the cellular telephone network 116 and the Internet 144 .
  • a cellular telephone connection is made by the mobile wireless device 100 with the regional cellular telephone access point 148 . Then, a cellular telephone call is placed to the protocol gateway 118 .
  • the mobile wireless device 100 sends a message to the protocol gateway 118 , which it forwards to the server 180 .
  • the server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100 .
  • Step 302 determines in decision block 304 that the class of device (CoD) field 542 in the paging packet 530 does not indicate that the next packet is an Access Point Service Indication (APSI) message 550 , then the process flows through steps 306 to 318 .
  • CoD class of device
  • APSI Access Point Service Indication
  • Step 306 The user's device 100 opens the service discovery protocol (SDP) channel and begins a session with the access point 140 .
  • SDP service discovery protocol
  • Step 308 The user's device 100 opens a non-SDP channel with the access point 140 .
  • Step 310 The user's device 100 waits for registration of the user's device and request for service via the access point 140 from the service platform server 180 .
  • Step 312 The user's device 100 conducts a service session via the access point 140 with the service platform server 180 .
  • Step 314 The user's device 100 receives a service message at the L2CAP layer 220 with content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557 , the handoff address 582 , and URL.
  • Step 316 The L2CAP layer 220 passes the service message up through all of the layers RFCOMM, PPP, IP, UDP, WAP, and WAE of the protocol stack in the user's device 100 , to the GUI application layer 234 .
  • Step 318 The GUI application layer 234 loads the content, title, bitmap, soft key selection items, the local/global parameter 557 , the handoff address 582 , and URL, from the service message into the display buffer 244 or other buffers.
  • location information and service type information can also be loaded into the display buffer 244 .
  • the mobile wireless device 100 if it detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180 , it will determine whether the global/local parameter 557 indicates that the service is global. If the parameter 557 is global, then the mobile wireless device 100 may store a bookmark of the server's URL. The mobile wireless device 100 displays a notice on browser 102 to the user, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network. If the user selects to continue the contact with the server 180 , then a stored handover address 582 is accessed. The handover address 582 will typically be the telephone number of a protocol gateway 118 connected between the cellular telephone network 116 and the Internet 144 .
  • a cellular telephone connection is made by the mobile wireless device 100 with the regional cellular telephone access point 148 . Then, a cellular telephone call is placed to the protocol gateway 118 .
  • the mobile wireless device 100 sends a message to the protocol gateway 118 , which it forwards to the server 180 .
  • the server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100 .
  • FIG. 3A a flow diagram of another alternate embodiment of the invention shows the operation of the User's Bluetooth device 100 when receiving an APSI message 550 without any previous warnings.
  • the figure shows the steps 400 to 412 .
  • Step 400 User device 100 sends inquiry response packet 510 (FIG. 4B) and receives the paging packet 530 (FIG. 4C) from the access point (AP) device 140 .
  • Step 402 The user device 100 receives the next packet(s) from the AP, and the L2CAP layer 220 determines that packet header 554 indicates an APSI message 550 from the AP 140 and the L2CAP layer 220 loads it into an APSI message buffer 236 .
  • Step 404 the L2CAP layer 220 passes the APSI message 550 directly to the GUI application layer 234 .
  • the APSI message 550 contains fields for content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557 , the handoff address 582 , and URL.
  • Step 406 The GUI layer 234 then loads the content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557 , the handoff address 582 , and URL from the APSI message 550 into the display buffer 244 .
  • Step 408 Then, the user selectively enters an input to the GUI 234 to establish a connection with the AP 140 for a session with the service platform server 180 .
  • Step 410 The user device 100 and the AP 140 then open an SDP and/or a non-SDP channel and they begin a session.
  • Step 412 The AP 140 registers the user's device 100 with the service platform server 180 and requests service for the user's device 100 . Then, the user's device 100 and the service platform server 180 conduct a session via the AP 140 . The service platform server 180 can then download the maps, advertising and/or other service offerings to the mobile Bluetooth device 100 .
  • the Bluetooth access point device 140 is connected over a landline network 142 and 144 or alternatively over wireless network to the service platform server 180 .
  • the service platform server 180 has service offerings that it would like to make available to mobile Bluetooth devices 100 passing within the RF communications range of the Bluetooth access point device 140 .
  • the Bluetooth access point device 140 stores an Access Point Service Indicator (APSI) message 550 characterizing the offerings of the service platform server 180 .
  • APSI Access Point Service Indicator
  • notification of the impending arrival of the APSI message 550 is made by information inserted by the access point 140 into the inquiry response packets or paging packets sent to the user's device 100 .
  • the recognition of the message can also be accomplished without any previous notification to the terminal.
  • the Bluetooth access point device 140 periodically sends out Bluetooth inquiry packets 500 via RF link to any mobile Bluetooth devices 100 within the RF communications range.
  • FIG. 4A shows the Bluetooth packet structure for an inquiry packet 500 sent by a Bluetooth access point device to the user's device 100 .
  • the general inquiry access code (GIAC) of the packet 500 is recognized by all Bluetooth devices as an inquiry message.
  • any other Bluetooth devices that are in the inquiry scan state such as the user's device 100 , are scanning for the receipt of inquiry packets 500 . If the user's device 100 in the inquiry scan state receives the inquiry packet 500 , it will respond with an inquiry response packet 510 that has sufficient information to enable the Bluetooth access point device to build its inquiry response table of essential information required to make a connection.
  • GIAC general inquiry access code
  • FIG. 4B shows the Bluetooth frequency hop synchronization (FHS) packet structure for an inquiry response packet 510 sent by the user's device 100 .
  • the FHS packet structure for an inquiry response packet 510 sent by the user's device 100 includes an access code field 512 , a header which includes a slave member number field 514 in which AM_ADDR is no yet assigned and is set to zero, a type field 516 and a parity field 518 .
  • Another slave member number field 524 also has AM_ADDR set to zero.
  • Field 522 contains user's class-of-device (CoD) information.
  • CoD class-of-device
  • the FHS packet structure for an inquiry response packet 510 provides essential information about the user's device 100 that enables the Bluetooth access point device to the make a connection to the user's device:
  • Field 520 contains the user's device BD_ADDR and field 526 contains the user's device current clock value.
  • the Bluetooth access point device uses the information provided in the inquiry response packet 510 it has received from the user's device to be paged, to prepare and send a paging message to the user's paged device.
  • the access point paging device To establish a connection, the access point paging device must enter the page state.
  • the Bluetooth access point device invokes its link controller to enter the page state, where it will transmit paging messages to the user's paged device using the access code and timing information acquired from the inquiry response packet 510 .
  • the user's paged device must be in the page scan state to allow the access point paging device to connect with it. Once in the page scan state, the user's paged device will acknowledge the paging messages and the access point paging device will send a paging packet 530 shown in FIG.
  • the paging packet 530 includes the class of device (CoD) field 542 that is a 24-bit field usually used to specify the class of the paging device, such as “FAX machine”.
  • CoD class of device
  • the class of device (CoD) field 542 of the paging packet 530 sent by the Bluetooth access point paging device includes a unique value indicating that the next packet to be received from the Bluetooth access point paging device is the Access Point Service Indicator (APSI) message.
  • APSI Access Point Service Indicator
  • Bluetooth access point device Since Bluetooth access point device has initiated the page, it will be the master device in the new piconet being formed by the two devices.
  • the user's paged device which will become the slave to the Bluetooth access point device, must also know the Bluetooth access point device BD_ADDR, since it is the master device's address that is used in the piconet access code for the new piconet being formed by the two devices.
  • FIG. 4C shows the Bluetooth frequency hop synchronization (FHS) packet structure for a paging packet 530 sent by the Bluetooth access point device.
  • FHS Bluetooth frequency hop synchronization
  • the FHS packet structure for the paging packet 530 sent by the Bluetooth access point device includes an access code field 532 which contains the user's paged device's BD_ADDR, a header which includes a slave member number field 534 in which AM_ADDR is now assigned the value of one, a type field 536 and a parity field 538 .
  • Another slave member number field 544 also has AM_ADDR set to one.
  • Field 542 contains the Bluetooth access point device class-of-device (CoD) unique value.
  • the CoD field 542 indicates that the next packet sent to the terminal is an APSI message. If such indication is used, the user's device 100 can be set to a mode where APSI messages are refused and if refusal is preferred, the user's device 100 is automatically set to not reply to paging with APSI indication.
  • the FHS packet structure for the paging packet 530 provides the essential information about the Bluetooth access point device that enables the user's paged device to the make the connection to the Bluetooth access point device:
  • Field 540 contains the Bluetooth access point device BD_ADDR and field 546 contains the Bluetooth access point device current clock value.
  • FIG. 4D shows the Bluetooth packet structure for the subsequent APSI message 550 .
  • the APSI message includes a header 554 that has the unique message ID 556 that indicates it is an APSI message.
  • the APSI message 550 includes the header 554 which contains the unique APSI message ID 556 .
  • the local/global parameter 557 includes coordinates and a location name. These parameters can be applied in the GUI of the user's device in an appropriate manner.
  • Local/Global parameters describe whether the service is available locally, i.e., only inside the current Bluetooth coverage area.
  • Global means that the service is available inside the Bluetooth coverage area, but also outside the coverage area.
  • the user's device queries whether a default bearer (e.g., WAP over GSM-data) may be activated in order to maintain the connection to the service.
  • a default bearer e.g., WAP over GSM-data
  • the user's device 100 can initiate the connection.
  • the user's device 100 can send out an inquiry packet 500 shown in FIG. 4A.
  • the access point 140 will respond with an inquiry response packet, modified from that shown for packet 510 in FIG. 4B, by having the sender's address field 520 contain the access point's address and by having the sender's class of device field 522 contain the unique CoD value.
  • the unique CoD value identifies that the next packet to be sent by the access point 140 is the APSI message 550 .
  • the access point 140 will then have to wait until the user's device 100 responds with a page packet similar to packet 530 of FIG. 4C, since the access point 140 will need the address in the sender's address field 540 of the page packet in order to use it as the destination address 552 in the APSI message 550 .
  • the user device's paging packet 530 will contain the user device's address in field 540 and class of device information in field 542 , which is the information needed by the access point 140 to select and return an appropriate APSI message 550 .
  • the user device's paging packet 530 received by the access point 140 will be buffered in the receive packet buffer 252 of FIG. 2A. There, its sender's address field 540 of FIG.
  • the 4C can be matched with address value 266 in the trigger word table 260 of FIG. 2A.
  • the address of the device 100 in field 540 can be matched with address values 266 in the trigger word table 260 .
  • the class of device of the device 100 in field 542 can be compared with class of device values 268 stored in the trigger word table 260 . If there is a match, then the APSI message cache 285 is checked by means of the APSI cache hit logic 283 , to determine if a corresponding APSI message 550 is stored in the cache 285 . If there is a corresponding APSI message in the cache 285 , then the APSI message 550 is immediately sent to the mobile Bluetooth device 100 .
  • FIG. 5 is a network process diagram of an alternate embodiment of the invention, showing the interaction between the user's device 100 , the access point 140 , and the content server 180 .
  • the network process diagram is divided into three columns with the user's device 100 on the left column, the access point device 140 in the middle column, and the content server 180 in the right hand column.
  • the network process begins with step 300 in the user's device 100 sending an inquiry response 510 to the access point 140 and receiving a page 530 from the access point.
  • the corresponding step at the access point 140 is step 600 where the access point receives the inquiry response packet 510 (which is shown in FIG. 4B) from the user's device 100 . Remaining at the access point device 140 in FIG.
  • step 600 flows to step 602 wherein the access point determines that a trigger word is satisfied in its trigger table 260 by the receipt of information in the inquiry response 510 . Then step 602 passes to the decision block 603 , which determines whether a corresponding APSI message 550 is currently stored in the local APSI cache 285 . If it is, then the decision block 603 passes to step 624 where the access point 140 sends the APSI message 550 shown in FIG. 4D to the user's device 100 . Alternately, if the decision block 603 determines that the corresponding APSI message 550 is not stored in the local APSI cache 285 , then block 603 flows to step 604 .
  • step 604 the access point 140 forwards its access point address 290 and the user's device ID 284 in an event message 610 of FIG. 2B to the content server 180 .
  • step 614 receives the event message 610 and the content server 180 accesses content in its database 182 in response to the user's device ID 284 and the access point address 290 .
  • Step 614 then flows to step 616 in the content server 180 , where the content server returns the content information in a content message 620 of FIG. 2C to the access point 140 as specified in the access point address 290 provided in the event message 610 .
  • the content message 620 includes the local/global parameter 557 and the handoff address 582 .
  • step 622 receives the content message 620 and uses it to assemble the APSI message 550 so as to contain the content 564 , a title 566 , a bit map 568 , soft key — 1 selection information 570 , soft key — 2 selection information 572 , soft key — 3 selection information 574 , location information 576 , URL information 578 , service type information 580 the local/global parameter 557 and the handoff address 582 contained in the content message 620 of FIG. 2C. Then step 622 flows to step 624 , wherein the access point 140 sends the newly assembled APSI message 550 to the user's device 100 . Turning now to the user's device 100 of FIG.
  • step 304 is optional and depending on the embodiment of the invention.
  • Step 320 receives the APSI message 550 and stores it in the APSI message buffer 236 .
  • the user's device 100 verifies with the L2CAP layer 220 that the packet header 554 of the received packet indicates that it is in fact an APSI message 550 as shown in FIG. 4D.
  • step 322 flows to step 324 where the L2CAP layer 220 immediately passes the APSI message 550 over path 242 to the GUI application layer 234 , thereby bypassing the middleware protocol group 224 layers.
  • the content 564 , a title 566 , a bit map 568 , soft key — 1 selection information 570 , soft key — 2 selection information 572 , soft key — 3 selection information 574 , location information 576 , URL information 578 , service type information 580 , the local/global parameter 557 and the handoff address 582 are then processed by the application group 235 programs and the content 564 is displayed to the user in the browser 102 .
  • decision block 603 of FIG. 5 enables the access point to pass directly to step 624 to send the APSI message(s) stored in its memory directly to all mobile devices entering its coverage area, without fetching content for APSI messages from the server.
  • the resulting invention solves the problem of enabling a mobile wireless device to resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the access point.

Abstract

A short range wireless access point enables a mobile wireless device to resume an Internet service with the same network server upon being interrupted by moving the mobile device outside the coverage area of the access point. A request forwarded by the mobile device to the access point is forwarded to the network server, the request being for service to be obtained over the Internet from the same server. The forwarding occurs during a period when the mobile device is within coverage area of the access point. A response message is sent from the server to the mobile device, the response message including a global/local parameter notifying the mobile device whether the requested service is available outside the coverage area and specifying alternative channels for continuing the service from the same server. A bookmark of the server is stored in the mobile device if the parameter indicates the service is available.

Description

    FIELD OF THE INVENTION
  • The invention disclosed broadly relates to ubiquitous computing and more particularly relates to improvements in short range wireless technology. [0001]
  • BACKGROUND OF THE INVENTION
  • Short Range Wireless Systems [0002]
  • Short range wireless systems have a typical range of one hundred meters or less. They often combine with systems wired to the Internet to provide communication over long distances. The category of short range wireless systems includes wireless personal area networks (PANs) and wireless local area networks (LANs). They have the common feature of operating in unlicensed portions of the radio spectrum, usually either in the 2.4 GHz Industrial, Scientific, and Medical (ISM) band or the 5 GHz Unlicensed-National Information Infrastructure (U-NII) band. Wireless personal area networks use low cost, low power wireless devices that have a typical range of ten meters. The best known example of wireless personal area network technology is the Bluetooth Standard, which operates in the 2.4 GHz ISM band. It provides a peak air link speed of one Mbps and a power consumption low enough for use in personal, portable electronics such as PDAs and mobile phones. Wireless local area networks generally operate at higher peak speeds of between 10 to 100 Mbps and have a longer range, which requires greater power consumption. Wireless local area networks are typically used as wireless links from portable laptop computers to a wired LAN, via an access point (AP). Examples of wireless local area network technology include the IEEE 802.11 Wireless LAN Standard and the HiperLAN Standard, which operates in the 5 GHz U-NII band. [0003]
  • The Bluetooth Short Range Wireless Technology [0004]
  • Bluetooth is a short range radio network, originally intended as a cable replacement. It can be used to create networks of up to eight devices operating together. The Bluetooth Special Interest Group, Specification Of The Bluetooth System, [0005] Volumes 1 and 2, Core and Profiles: Version 1.1, 22nd February, 2001, describes the principles of Bluetooth device operation and communication protocols. The devices operate in the 2.4 GHz radio band reserved for general use by Industrial, Scientific, and Medical (ISM) applications. Bluetooth devices are designed to find other Bluetooth devices within their ten meter radio communications range and to discover what services they offer, using a service discovery protocol (SDP).
  • The SDP searching function relies on links being established between the requesting Bluetooth device, such as a stationary access point device, and the responding Bluetooth device, such as a mobile user's device. When the mobile user's device enters within communicating range of the access point, its Link Controller layer in its transport protocol group handles the exchange of inquiry and paging packets to establish the initial link with the access point device. This process is relatively fast, typically being completed in approximately from one to five seconds. Then the Logical Link Control and Adaptation Protocol (L2CAP) layer in the transport protocol group passes the link status up to the layers in the middleware protocol group. The SDP searching function in the middleware protocol group can then be used to find out about application programs in the responding Bluetooth device that may provide desired services. The SDP searching function can require several seconds to complete, depending on the complexity of the search and the size of the device's registry. [0006]
  • An example application program service that can be discovered by the SDP searching function is the Wireless Application Environment (WAE) graphical user interface (GUI) function of the Wireless Application Protocol (WAP). WAP-enabled wireless devices can use a microbrowser to display content on a small screen of the device. WAP uses a combination of Internet protocols with other protocols especially modified to work with mobile devices. The Internet protocols are: Point to Point Protocol (PPP), Internet Protocol (IP), and User Datagram Protocol (UDP). The special mobile device protocols are: Wireless Transport Layer Security (WTLS), Wireless Transaction Protocol (WTP), Wireless Session Protocol (WSP), and Wireless Application Environment (WAE). It is the WAE that provides the microbrowser user interface for WAP. In order to establish a connection to send content from the requesting access point device to the WAE microbrowser of the responding user's device, each of the WAP protocol layers WTLS, WTP, WSP, and WAE must be established, which can require several more seconds to complete and possibly significant user interaction on the way. [0007]
  • It can be seen that if the user's mobile Bluetooth device has enough speed to travel across the communications area of the Bluetooth access point before completing downloading data from a network server, the contact with the server will be irretrievably lost. THE IEEE 802.11 WIRELESS LAN STANDARD [0008]
  • The IEEE 802.11 Wireless LAN Standard defines at least two different physical (PHY) specifications and one common medium access control (MAC) specification. The IEEE 802.11 (a) Standard is designed for either the 2.4 GHz ISM band or the 5 GHz U-NII band, and uses orthogonal frequency division multiplexing (OFDM) to deliver up to 54 Mbps data rates. The IEEE 802.11 (b) Standard is designed for the 2.4 GHz ISM band and uses direct sequence spread spectrum (DSSS) to deliver up to 11 Mbps data rates. The IEEE 802.11 Wireless LAN Standard describes two major components, the mobile station and the fixed access point (AP). IEEE 802.11 networks can be configured where the mobile stations communicate with a fixed access point. IEEE 802.11 also supports distributed activities similar those of the Bluetooth piconets. The IEEE 802.11 standard provides wireless devices with service inquiry features similar to the Bluetooth inquiry and scanning features. [0009]
  • In order for an IEEE 802.11 mobile station to communicate with other stations in a network, it must first find the stations. The process of finding another station is by inquiring. Active inquiry requires the inquiring station to transmit queries and invoke responses from other wireless stations in a network. In an active inquiry, the mobile station will transmit a probe request frame. If there is a network on the same channel that matches the service set identity (SSID) in the probe request frame, a station in that network will respond by sending a probe response frame to the inquiring station. The probe response includes the information necessary for the inquiring station to access a description of the network. The inquiring station will also process any other received probe response and Beacon frames. Once the inquiring station has processed any responses, or has decided there will be no responses, it may change to another channel and repeat the process. At the conclusion of the inquiry, the station has accumulated information about the networks in its vicinity. Once a station has performed an inquiry that results in one or more network descriptions, the station may choose to join one of the networks. The IEEE 802.11 Wireless LAN Standard is published in three parts as IEEE 802.11-1999; IEEE 802.11a-1999; and IEEE 802.11b-1999, which are available from the IEEE, Inc. web site http://grouper.ieee.org/groups/802/11. [0010]
  • In the case of IEEE 802.11 mobile stations, if the user's mobile device has enough speed to travel across the communications area of the IEEE 802.11 access point before completing downloading data from a network server, the contact with the server will be irretrievably lost. [0011]
  • High Performance Radio Local Area Network (HiperLAN) [0012]
  • The HiperLAN standard provides a wireless LAN with a high data rate of up to 54 Mbps and a medium-range of 50 meters. HiperLAN wireless LANs provide multimedia distribution with video QoS, reserved spectrum, and good in-building propagation. There are two HiperLAN standards. HiperLAN [0013] Type 1 is a dynamic, priority driven channel access protocol similar to wireless Ethernet. HiperLAN Type 2 is reserved channel access protocol similar to a wireless version of ATM. Both HiperLAN Type 1 and HiperLAN Type 2 use dedicated spectrum at 5 GHz. HiperLAN Type 1 uses an advanced channel equalizer to deal with intersymbol interference and signal multipath. HiperLAN Type 2 avoids these interference problems by using OFDM and a frequency transform function. The HiperLAN Type 2 specification offers options for bit rates of 6, 16, 36, and 54 Mbps. The physical layer adopts an OFDM multiple carrier scheme using 48 carrier frequencies per OFDM symbol. Each carrier may then be modulated using BPSK, QPSK, 16-QAM, or 64-QAM to provide different data rates. The modulation schemes chosen for the higher bit rates achieve throughput in the range 30-50 Mbps.
  • The [0014] HiperLAN Type 1 is a dynamic, priority driven channel access protocol that can form networks of wireless devices. HiperLAN Type 1 networks support distributed activities similar those of the Bluetooth piconets and IEEE 802.11 independent basic service sets (IBSS). The HiperLAN Type 1 standard provides wireless devices with service inquiry features similar to those of the Bluetooth inquiry and scanning features and the IEEE 802.11 probe request and response features. An overview of the HiperLAN Type 1 principles of operation is provided in the publication HiperLAN Type 1 Standard, ETSI ETS 300 652, WA2 December 1997.
  • HiperLAN Type 2 is a reserved channel access protocol that forms networks. HiperLAN Type 2 networks support distributed activities similar those of the [0015] HiperLAN Type 1 networks, Bluetooth piconets and IEEE 802.11 independent basic service sets (IBSS). HiperLAN Type 2 provides high speed radio communication with typical data rates from 6 MHz to 54 Mbps. It connects portable devices with broadband networks that are based on IP, ATM and other technologies. Centralized mode is used to operate HiperLAN Type 2 as an access network via a fixed access point. A central controller (CC) in the fixed access point provides QoS coordinates the access of the mobile stations support. User mobility is supported within the local service area and wide area roaming mobility can also be supported. An overview of the HiperLAN Type 2 principles of operation is provided in the Broadband Radio Access Networks (BRAN), HiperLAN Type 2; System Overview, ETSI TR 101 683 VI.I.1 (2000-02) and a more detailed specification of its ad hoc network architecture is described in HiperLAN Type 2, Data Link Control (DLC) Layer; Part 4. Extension for Home Environment, ETSI TS 101 761-4 V1.2.1 (2000-12).
  • In the case of HiperLAN mobile stations, if the user's mobile device has enough speed to travel across the communications area of the HiperLAN access point before completing downloading data from a network server, the contact with the server will be irretrievably lost. [0016]
  • What is needed is a way of enabling a mobile wireless device to resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the access point. [0017]
  • SUMMARY OF THE INVENTION
  • The invention solves the problem of enabling a mobile wireless device to resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the access point. Short range wireless systems include wireless personal area networks (PANs), such as Bluetooth networks and IrDA Infrared Data Protocol networks, and wireless local area networks (LANs), such as the IEEE 802.11 wireless LANs and HiperLAN networks. The invention involves the use of mobile wireless devices that are equipped with both short range wireless communications circuits and with cellular telephone communications circuits. An example of such a mobile wireless device is a Bluetooth-equipped cellular telephone. [0018]
  • During the period when a mobile wireless device is within the coverage area of a short range wireless access point, it sends a request for service to be obtained over the Internet from a network server. The short range wireless access point forwards that request over the Internet to the server, augmented with additional information including the network address and geographic location of the access point. The short range wireless access point receives a response message over the Internet from the server, including a global/local parameter. The global/local parameter will notify the mobile wireless device whether the requested service is available outside the coverage area of the short range wireless access point. The access point forwards the response message to the mobile wireless device, which uses the information in the message to contact the server over the Internet to download web pages or to conduct other server operations. [0019]
  • Regions outside the coverage area of the short range wireless access point are covered by regional cellular telephone access points, such as cellular telephone base stations. Suitable cellular telephone systems include GSM, GPRS, UMTS, EDGE, and the like. In accordance with the invention, if the mobile wireless device detects that it has left the coverage area of the short range wireless access point while in contact with the server, it will determine whether the global/local parameter indicates that the service is global. For example, the server may have been in the process of downloading web pages. If the parameter is global, then the mobile wireless device stores a bookmark of the server's URL, for example the URL and path name for one of the prior web pages downloaded from the server. The mobile wireless device displays a notice to the user offering the user the option of continuing the contact with the server over the regional cellular telephone network. [0020]
  • If the user selects to continue the contact with the server, then a stored handover address is accessed. The handover address may be stored in the mobile wireless device or alternately, it may be stored in the short range wireless access point. The stored handover address may be a default address or alternately, it may be a handover address included in the prior response message from the server. The handover address will typically be the telephone number of a protocol gateway, such as a WAP gateway, connected between the cellular telephone network and the Internet. A cellular telephone connection is made by the mobile wireless device with the regional cellular telephone access point. Then, a cellular telephone call is placed to the protocol gateway. When the call is completed over the telephone network from the mobile wireless device to the protocol gateway, the mobile wireless device sends a message to the protocol gateway. [0021]
  • For example, if the mobile wireless device includes the Wireless Application Protocol (WAP) and if the protocol gateway is a WAP gateway, then a Wireless Session Protocol (WSP) request can be generated in the mobile wireless device. The WSP request is generated by a Wireless Markup Language (WML) “<go>” element in the application program of the mobile wireless device, which specifies the server URL. The message can include an HTTP request method, either the GET or the POST method. When GET is used, the data being sent to the server is appended to the end of the URL. When POST is used, the data is passed in the body of the message. The WAP gateway then converts the WSP request into an HTTP request and forwards it over the Internet to the network server. [0022]
  • Depending on the request, the server responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device. For example, WML, HTML, or graphics files can be returned by the server to the WAP gateway. For example, the server can respond to a GET method request by sending the requested web page to the protocol gateway. Alternately, the server can respond by executing CGI, ASP, or JSP scripts or other server programs to dynamically generate WML or HTML content to be returned to the WAP gateway. The protocol gateway then performs an HTML to WML conversion of the content, followed by WML encoding to form the WSP response message. The WSP response message is then transmitted by the WAP gateway over the telephone network to the cellular telephone access device. The cellular telephone access device then transmits the WSP response message containing the content, over the cellular telephone air link to the mobile wireless device. [0023]
  • Additional options can be offered to the user when resuming the service. Alternately, the user may choose to save the URL link in the terminal memory and continue the service later via digital video broadcast or other broadcasting medium. [0024]
  • In this manner, the mobile wireless device can resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the short range wireless access point.[0025]
  • DESCRIPTION OF THE FIGURES
  • FIG. 1 shows the user's [0026] wireless device 100 at a first location “A Street” near two short range wireless access points 140 and 140A and then later at a second location “B Street”, near a regional cellular telephone access point 148.
  • FIG. 1A is a flow diagram of processing a service request in the [0027] access point 140.
  • FIG. 1B is a flow diagram of processing a service handoff in the [0028] mobile wireless device 100.
  • FIG. 1C illustrates the Bluetooth packet structure for the [0029] user device 100 request to the access point 140, requesting service from the server 180.
  • FIG. 1D illustrates the Bluetooth packet structure for the [0030] access point 140 forwarding a response message 435 to the user device 100, from the server 180.
  • FIG. 1E is a data flow diagram showing the [0031] service request packet 420 from the user's device 100 being forwarded by the access point 140 in the augmented service request message 440, to the content server 180.
  • FIG. 1F is a data flow diagram showing the [0032] content server 180 returning a response message 435 to the access point 140, including a local/global parameter 557 and a handoff address 582.
  • FIG. 1G is a data flow diagram showing the [0033] access point 140 sending the response message 435 to the user's mobile device 100.
  • FIG. 1H illustrates the respective prior art protocol stacks for the user's [0034] Bluetooth device 100, access point 140, and content server 180.
  • FIG. 1I illustrates an alternate embodiment of the invention, with the respective protocol stacks for the user's [0035] Bluetooth device 100 and access point 140 exchanging content by means of an Access Point Service Indicator (APSI) message 550.
  • FIG. 1J is a functional block diagram of the user's [0036] wireless device 100, showing the APSI message buffer 236 in the alternate embodiment of the invention.
  • FIG. 2A is a functional block diagram of the [0037] wireless access point 140, with the receive packet buffer 252, trigger word table 260, APSI message cache 285, and APSI cache hit logic 283.
  • FIG. 2B is a data flow diagram of the alternate embodiment of the invention, showing the [0038] inquiry response packet 510 from the user's device 100 being detected by the access point 140 and the access point sending an event message 610 to the content server 180 in response to determining that the access point 140 does not have a corresponding APSI message in its cache.
  • FIG. 2C is a data flow diagram the alternate embodiment of the invention, showing the [0039] content server 180 returning a content message 620 to the access point 140, in response to the server having processed the event message 610.
  • FIG. 2D is a data flow diagram showing the alternate embodiment of the invention, the [0040] access point 140 sending the APSI message 550 to the user's mobile device 100, which the access point has assembled from the content message 620 received from the server 180.
  • FIG. 3 is a flow diagram of the alternate embodiment of the invention, showing sequence of operational steps performed by the user's [0041] device 100 in processing an APSI message
  • FIG. 3A is a flow diagram of an alternate embodiment of the invention, which shows the operation of the User's [0042] Bluetooth device 100 when receiving an APSI message 550 without any previous warnings.
  • FIG. 4A shows the alternate embodiment of the invention with the Bluetooth packet structure for an [0043] inquiry packet 500 sent by a Bluetooth access point device to the user's device 100.
  • FIG. 4B shows the alternate embodiment of the invention with the Bluetooth frequency hop synchronization (FHS) packet structure for an [0044] inquiry response packet 510 sent by the user's device 100.
  • FIG. 4C shows the alternate embodiment of the invention with the Bluetooth frequency hop synchronization (FHS) packet structure for the [0045] paging packet 530 sent by the Bluetooth access point device.
  • FIG. 4D shows the alternate embodiment of the invention with the Bluetooth packet structure for the subsequent APSI message. [0046]
  • FIG. 5 is a network process diagram of the alternate embodiment of the invention, showing the interaction between the user's [0047] device 100, the access point 140, and the content server 180.
  • DISCUSSION OF THE PREFERRED EMBODIMENT
  • FIG. 1 shows the user's [0048] wireless device 100 at a first location “A Street” near two short range wireless access points 140 and 140A and then later at a second location “B Street”, near a regional cellular telephone access point 148. The mobile wireless device 100 of FIG. 1, is equipped with circuits 103 for short range wireless systems and circuits 105 for cellular telephone communications systems. Short range wireless systems include wireless personal area networks (PANs), such as Bluetooth networks and IrDA Infrared Data Protocol networks, and wireless local area networks (LANs), such as the IEEE 802.11 wireless LANs and HiperLAN networks. Cellular telephone communications systems include GSM, GPRS, UMTS, EDGE, and the like. An example of such a mobile wireless device 100 is a Bluetooth-equipped GSM cellular telephone.
  • During an initial period when the [0049] mobile wireless device 100 is within the coverage area of the short range wireless access point 140, it sends a request for service to be obtained, for example, over the Internet 144 from network server 180. In this example, the short range wireless access point 140 is a Bluetooth access point and the short range wireless circuits in the mobile wireless device 100 are Bluetooth circuits. The user has previously actuated the Bluetooth mode button “BT” on the keypad 104 and the Bluetooth circuits have completed their exchanged of inquiry, paging, and service discovery packets with the Bluetooth access point 140. In this example, the user wishes to view the daily news service provided by the server 180.
  • FIG. 1A is a flow diagram of processing the user's service request in the [0050] access point 140. Step 340 receives the user request 420, which is shown in FIG. 1C. The Bluetooth packet structure 420 for the user's request 425, includes the access code 422 for the piconet master in the piconet formed by the mobile Bluetooth device 100 and the Bluetooth access point 140, the header 424 containing the slave device number 421 and the packet type 423, and the payload portion. The payload portion includes the payload header 427 and the payload data 428. The user's service request 425 to the server 180 is contained in the payload data 428.
  • In [0051] step 342 of the flow diagram of FIG. 1A, the Bluetooth access point forwards the user's service request 425 in an augmented service request message 440 to the server 180. FIG. 1E is a data flow diagram showing the service request 425 from the user's device 100 being forwarded by the access point 140 in the augmented service request message 440, over, for example, the LAN 142 and the Internet 144 to the content server 180. The augmented service request message 440 may include the payload data 281, the address 284 of the user's Bluetooth device 100, its class of device 286, access point geographic location information 288, the access point address 290, the destination server path name 292 and the destination server URL 294. FIG. 1E shows the augmented service request message 440 being sent to the news server 180.
  • In [0052] step 344 of the flow diagram of FIG. 1A, the Bluetooth access point receives a response message 435, shown in FIG. 1F, from server 180. FIG. 1F is a data flow diagram showing the content server 180 returning a response message 435 to the access point 140, including a local/global parameter 557 and a handoff address 582. The local/global parameter 557 specifies whether the service from the server 180 can be reached also through alternate channels or bearers. The response message 435 includes the local/global parameter 557, and may also include priority information 558, timer information 560, display mode information 562, content 564, a title 566, a bit map 568, soft key 1 selection information 570, soft key2 selection information 572, soft key3 selection information 574, location information 576, URL information 578, service type information 580, the handoff address 582 and an end marker 584.
  • In [0053] step 346 of the flow diagram of FIG. 1A, the Bluetooth access point forwards the response message 435 to the user's Bluetooth device 100, as shown in FIGS. 1D and 1G. FIG. 1D illustrates the Bluetooth packet structure 430 for the access point 140 forwarding a response message 435 to the user device 100, from the server 180. FIG. 1G is a data flow diagram showing the access point 140 sending the response message 435 to the user's mobile device 100. The Bluetooth packet structure 430 for the user's request 435, includes the access code 432 for the piconet master in the piconet formed by the mobile Bluetooth device 100 and the Bluetooth access point 140, the header 434 containing the slave device number 431 and the packet type 433, and the payload portion 436. The payload portion includes the payload header 437 and the payload data 438. The response message 435 is contained in the payload data 438. FIG. 1B is a flow diagram of processing in the mobile wireless device 100. In Step 350, the mobile wireless device 100 receives the server response message 435 and in step 352, it stores the local/global parameter 557 in a buffer in its memory 202, as shown in FIG. 1J. Optionally, the mobile wireless device 100 receives the handover address 582, which it stores in a buffer in its memory 202, as shown in FIG. 1J. The mobile wireless device 100 uses the information in the server response message 435 to contact the server over the Internet to download web pages or to conduct other server operations.
  • Regions outside the coverage area of the short range [0054] wireless access point 140 of FIG. 1, are typically covered by regional cellular telephone access points 148, such as cellular telephone base stations. Suitable cellular telephone systems include GSM, GPRS, UMTS, EDGE, and the like. In accordance with the invention, if the mobile wireless device 100 detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180, it will determine whether the global/local parameter 557 indicates that the service is global. This step is shown as step 354 in FIG. 1B. If decision block 356 determines that the parameter 557 is “Local”, then step 358 ends the service with the server 180. Alternately, if the decision block 356 determines that the parameter 557 is “Global”, then the process of FIG. 1B flows to step 360. As an example, the server 180 may have been in the process of downloading web pages when interrupted by the motion of the mobile device 100. If the parameter 557 is global, then the mobile wireless device 100 stores a bookmark of the server's URL 123, as shown in step 360. For example, the URL and path name may be saved for one of the prior web pages downloaded from the server 180. Then in step 362, the mobile wireless device 100 displays in FIG. 1, a notice 121 “GLOBAL” or some expression having a similar meaning, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network 116.
  • If the user selects to continue the contact with the server, then a stored handover address is accessed, as shown in [0055] step 364. The handover address may be stored in the mobile wireless device 100 or alternately, it may be stored in the short range wireless access point 140. The stored handover address may be a default address or alternately, it may be a handover address included in the prior server response message 435 from the server 180. The handover address will typically be the telephone number of a protocol gateway 118, such as a WAP gateway, connected between the cellular telephone network 116 and the Internet 144. In Step 364, the user actuates the cellular telephone mode button “GSM” on the keypad 104 and makes a cellular telephone connection between the mobile wireless device 100 and the regional cellular telephone access point 148. Then, a cellular telephone call is placed over the telephone network 116 to the protocol gateway 118. When the call is completed over the telephone network 116 from the mobile wireless device 110 to the protocol gateway 118, the mobile wireless device 100 sends a message to the protocol gateway 118.
  • For example, if the [0056] mobile wireless device 100 includes the Wireless Application Protocol (WAP) and if the protocol gateway is a WAP gateway, then a Wireless Session Protocol (WSP) request can be generated in the mobile wireless device 100. The WSP request is generated by a Wireless Markup Language (WML) “<go>” element in the application program 106 of the mobile wireless device 100, which specifies the server URL. The message can include an HTTP request method, either the GET or the POST method. When GET is used, the data being sent to the server 180 is appended to the end of the URL. When POST is used, the data is passed in the body of the message. The WAP gateway 118 then converts the WSP request into an HTTP request and forwards it over the Internet 144 to the server 180.
  • Depending on the request, the [0057] server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100. For example, WML, HTML, or graphics files can be returned by the server 180 to the WAP gateway 118. For example, the server 180 can respond to a GET method request by sending the requested web page to the protocol gateway 118. Alternately, the server 180 can respond by executing CGI, ASP, or JSP scripts or other server programs to dynamically generate WML or HTML content to be returned to the WAP gateway 118. The protocol gateway 118 then performs an HTML to WML conversion of the content, followed by WML encoding for form the WSP response message. The WSP response message is then transmitted by the WAP gateway 118 over the telephone network 116 to the cellular telephone access device 148. The cellular telephone access device 148 then transmits the WSP response message containing the content, over the cellular telephone air link to cellular telephone antenna 105 and circuits 208 of the mobile wireless device 100. Additional options can be offered to the user when resuming the service. Alternately, the user may choose to save the URL link in the terminal memory and continue the service later via digital broadcast or other broadcasting medium.
  • In this manner, the mobile wireless device can resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the short range wireless access point. This inventive system can easily be implemented also to any other existing or future protocol techniques. [0058]
  • The invention is described for mobile wireless devices and wireless telephones implementing the Wireless Application Protocol (WAP) standard. Other protocols that can be used in the invention to access the Internet include I-Mode protocol and mobile IPv6 protocol. The user's WAP-enabled [0059] mobile wireless device 100 can be a wireless mobile phone, pager, two-way radio, smartphone, personal communicator, or the like. The user's WAP-enabled portable wireless device 100 accesses a small file called a deck which is composed of several smaller pages called cards which are small enough to fit into the display area of the device's microbrowser 102. The small size of the microbrowser 102 and the small file sizes accommodate the low memory constraints of the portable wireless device 100 and the low-bandwidth constraints of a wireless network. The cards are written in the Wireless Markup Language (WML) which is specifically devised for small screens and one-hand navigation without a keyboard. The WML language is scaleable from two-line text displays on the microbrowser 102 of a cellular telephone, up through large LCD screens found on smart phones and personal communicators. The cards written in the WML language can include programs written in WMLScript, which is similar to JavaScript, but makes minimal demands on memory and CPU power of the device 100 because it does not contain many of the unnecessary functions found in other scripting languages. The microbrowser 102 enables the user to navigate through the cards being displayed and to select options that are programmed by the application programs 106.
  • The Nokia WAP Client Version 2.0 is a software product containing the components necessary to implement the WAP client on the [0060] wireless device 100. These components include a Wireless Markup Language (WML) Browser, WMLScript engine, Push Subsystem, and Wireless Protocol Stack. The Nokia WAP Client is a source-code product that can port and integrate into wireless devices such as mobile phones and wireless PDAs. Application programs 106 stored in the wireless device 100 interact with the WAP Client to implement a variety of communications applications. Details of the Nokia WAP Client Version 2.0 can be found in the online paper: Nokia WAP Client Version 2.0, Product Overview, Nokia Internet Communications, 2000, www.nokia.com/corporate/wap.
  • The WAP Client includes the Wireless Public Key infrastructure (PKI) feature, providing the infrastructure and the procedures required for authentication and digital signatures for servers and mobile clients. Wireless PKI is a certificate-based system that utilizes public/private key pairs associated with each party involved in a mobile transaction. Wireless Identity Module (WIM) is a security token feature of the WAP Client, which includes security features, such as the public and private keys and service certificates, needed for user authentication and digital signatures. Additionally, it has the ability to perform cryptographic operations to encrypt and decrypt messages. [0061]
  • The [0062] WAP protocol gateway 118 links the Internet 144 and the telephone network 116. The WAP protocol gateway 118 includes the Wireless Public Key infrastructure (PKI) feature to help provide a secure Internet connection to the wireless device 100. The WAP protocol gateway 118 enables the WAP-enabled wireless device 100 to access Internet applications such as headline news, exchange rates, sports results, stock quotes, online travel and banking services, or to download distinctive ringing tones.
  • The user's WAP-enabled [0063] portable wireless device 100 communicates with the cellular telephone access point 148 and can exchange messages for distances up to several kilometers. The types of wireless networks supported by the WAP standard include GSM, GPRS, UMTS, EDGE, CDPD, CDMA, TDMA, 3G-Broadband, and the like.
  • The overall process of communication between the user's WAP-enabled wireless device (the client) [0064] 100, through the WAP protocol gateway 118, to the server 180 resembles the way Web pages are served on the Internet using the HyperText Transfer Protocol (HTTP) or World Wide Web protocol:
  • [1] The user presses a phone key on the user's [0065] device 100 related to the Uniform Resource Locator (URL) of the server 180.
  • [2] The user's [0066] device 100 sends the URL, via the cellular telephone access point 148 and the telephone network 116, to the gateway 118 using WAP protocols.
  • [3] The [0067] gateway 118 translates the WAP request into an HTTP request and sends it over the Internet 144 to the server 180, via Transmission Control Protocol/Internet Protocol (TCP/IP) interfaces.
  • [4] The [0068] server 180 handles the request just like any other HTTP request received over the Internet. The server 180 either returns a WML deck or a HyperText Markup Language (HTML) page back to the gateway 118 using standard server programs written, for example in Common Gateway Interface (CGI) programs, Java servlets, or the like.
  • [5] The [0069] gateway 118 receives the response from the server 180 on behalf of the user's device 100. If the response is an HTML page, it gets transcoded into WML if necessary. Then the WML and WMLScript coding is encoded into a byte code that is then sent to the user's device 100.
  • [6] The user's [0070] device 100 receives the response in the WML byte code and displays the first card in the deck on the microbrowser 102 to the user.
  • In FIG. 1, the [0071] protocol gateway 118 includes a WAP protocol stack organized into five different layers. An application layer is the wireless application environment, which executes portable applications and services. A session layer is the wireless session protocol, which supplies methods for the organized exchange of content between client/server applications. A transaction layer is the wireless transaction protocol, which provides methods for performing reliable transactions. A security layer is the wireless transport layer security, which provides authentication, privacy, and secure connections between applications. The transport layer is the wireless datagram protocol, which shelters the upper layers from the unique requirements of the diverse wireless network protocols, such as GSM, GPRS, UMTS, EDGE, etc. Additional information about the WAP standard and the WAP protocol stack can be found in the book by Charles Arehart, et al. entitled, Professional WAP, published by Wrox Press Ltd., 2000 (ISBN 1-861004-04-1).
  • FIG. 1H illustrates the respective prior art protocol stacks used for the user's [0072] Bluetooth device 100, the Bluetooth access point 140, and the content server 180. As is described in detail in the Bluetooth specification, the protocol stack for Bluetooth device is made up of three protocol groups: the transport protocol group, the middleware protocol group and the application group. The transport protocol group includes the link controller and baseband 216, the link manager 218 and the logical link control and adaptation protocol (L2CAP) 220′. The transport protocol group enables Bluetooth devices to locate each other and to create, configure, and manage the physical and logical links that allow higher layer protocols and applications to pass data through these transport protocols. The middleware protocol group includes a serial port emulator protocol called RFCOMM, and the Internet protocols: point-to-point protocol (PPP), Internet protocol (IP), and user datagram protocol (UDP). The application group includes the wireless application protocol (WAP) and the wireless application environment (WAE), as well as graphic user interface (GUI) programs 234 and application programs. Also shown for the user's device 100 is the service discovery protocol (SDP), which enables devices to discover services offered by other Bluetooth devices. This constitutes the prior art Bluetooth protocol stack. As is shown in FIG. 1H, the access point 140 includes the same transport protocol group and middleware protocol group protocol layers. Also shown in FIG. 1H is a gateway node 146, which includes the UDP, IP, and PPP layers. The content server 180 includes the middleware layers and the WAP and WAE layers of the application group. The purpose of FIG. 1H is to illustrate that the prior art requires the user's device 100 to set up all of the protocol layers in the middleware protocol group and in the application group in order to receive even the most simple content 564 from the content server 180. The time required to set up all of the protocol layers in the user's device 100 in order to establish a connection with the access point device 140 can exceed the short interval during which the user's device 100 is within communication range of the access point 140.
  • FIG. 1I illustrates the respective protocol stacks for the user's [0073] Bluetooth device 100 and the access point 140 exchanging content 564 by means of an Access Point Service Indicator (APSI) message 550, in accordance with an alternate embodiment of the invention. As will be described below, according to one alternate embodiment of the invention, the L2CAP layer 220 in the user's device 100 is modified to detect a unique class of device (CoD) value in either a paging packet or an inquiry response packet from the L2CAP layer 220 in the access point 140. When the user's device 100 detects the arrival of a paging packet with the unique CoD value, it indicates that the next packet to be sent by the access point 140 is an access point service indication (APSI) message. Then, when the user's device 100 receives the next packet from the access point, the L2CAP layer 220 in the user's device 100 loads it into an APSI message buffer 236. The L2CAP layer verifies that the packet header for the APSI message 550 has a unique message ID indicating that it is in fact, an APSI message from the access point. Then, the L2CAP layer immediately passes the APSI message directly up to the GUI application layer 234, thereby bypassing the middleware protocol layers as well as the WAP layers in the user's device 100. This significantly reduces the amount of time necessary to set up a connection to enable the user's device 100 to receive and display content 564 contained in the APSI message 550.
  • Also shown in FIG. 11 is the receipt by the [0074] access point device 140 of a content message 620. As will be described below, if the access point device 140 does not currently have the APSI message 550 stored in its memory, then the access point 140 accesses the content 564 from a content server such as the content server 180 in FIG. 1. The resulting content message 620 contains the content 564 which is assembled by the access point 140 into the APSI message 550 of FIG. 1I.
  • According to another alternate embodiment of the invention, the user's [0075] Bluetooth device 100 does not need to receive any previous indication of the arriving APSI message 550. In this alternate embodiment, immediately after successful paging, the APSI message 550 packet having a unique message ID is received by the user's device 100. The user's Bluetooth device L2CAP layer determines that the message is, in fact, an APSI message 550 from the access point device 140. The user's Bluetooth device L2CAP layer loads the APSI message into an APSI message buffer 236. Then, the L2CAP layer immediately passes the APSI message directly up to the GUI application layer 234, thereby bypassing the middleware protocol layers as well as the WAP layers in the user's device 100. This significantly reduces the amount of time necessary to set up a connection to enable the user's device 100 to receive and display content 564 contained in the APSI message 550.
  • FIG. 1J is a functional block diagram of an the user's [0076] Bluetooth device 100, showing the APSI message buffer 236, in accordance with the invention. FIG. 1J shows a memory 202, connected by means of a bus 204 to a Bluetooth radio 206 and its antenna 103, a keypad 104, a central processor 210, a display 212, and a cellular telephone radio 208 and its antenna 105. The memory 202 stores program instructions which are sequences of operational steps, which, when executed by the central processor 210, carry out the function of the invention. The memory 202 is shown partitioned into transport protocol group 214, middleware group 224, and application group 235. Within the transport protocol group 214, there is a link controller and baseband 216, a link manager 218, a logical link control and adaptation protocol 220, and an APSI message buffer 236. In the middleware protocol group 224 is the RFCOMM, the PPP, the IP, the UDP and SDP protocol layers. In the application group 235 is a GUI application 234, an application program 106, a display buffer 244, the WAE and the WAP protocol layers, a buffer for the local/global parameter 557 and a buffer for the handoff address 582. In accordance with an alternate embodiment of the invention, APSI message 550 contained in the APSI message buffer 236 is recognized by the logical link control and adaptation protocol 220, and the body 238 of the APSI message 550 is immediately provided over the path 242 to the GUI application 234 and the application program 106.
  • FIG. 2A is a functional block diagram of an alternate embodiment the [0077] Bluetooth access point 140, with a receive packet buffer 252, a trigger word table 260, an APSI message cache 285, and an APSI cache hit logic 283. A server notification message table 280 is also shown in FIG. 2A. In accordance with the invention, the access point 140 stores Access Point Service Indicator (APSI) messages in the APSI message cache 285, which characterize service platform offerings. The APSI message 550 includes a header 554 which contains a unique APSI message ID 556. Also included in the APSI message 550 in a body portion 238, is the local/global parameter 557, priority information 558, timer information 560, display mode information 562, content 564, a title 566, a bit map 568, soft key 1 selection information 570, soft key2 selection information 572, soft key3 selection information 574, location information 576, URL information 578, service type information 580, the handoff address 582 and an end marker 584. When the user's device 100 sends either a paging packet or an inquiry response packet, such as inquiry response packet 510, to the access point 140, the access point uses the information in the received packet as stimuli to be matched with trigger words stored in the trigger word table 260. For example, the address of the device 100 in field 520 can be matched with address values 266 in the trigger word table 260. Also, the class of device of the device 100 in field 522 can be compared with class of device values 268 stored in the trigger word table 260. If there is a match, then the APSI message cache 285 is checked by means of the APSI cache hit logic 283, to determine if a corresponding APSI message is stored in the cache 285. If there is a corresponding APSI message in the cache 285, then the APSI message is immediately sent to the mobile Bluetooth device 100. If there is no corresponding APSI message in the message cache 285, then the APSI cache hit logic 283 signals the server notification message table 280 to send a server notification message 610 to a content server specified in the message.
  • FIG. 2B is a dataflow diagram of an alternate embodiment of the invention, showing an [0078] inquiry response packet 510 from the user's device 100 being detected by the access point 140. FIG. 2B shows the access point sending an event message 610 to the content server 180 in response to the access point determining that it does not have a corresponding APSI message in its cache 285. As is shown in FIG. 2B, the event message 610, includes specific data values for a server notification message number 282, trigger word number 262′, the address 284 of the user's Bluetooth device 100, its class of device 286, other information 288, the access point address 290, the destination server path name 292 and the destination server URL 294. FIG. 2B shows the event message 610 being sent to the news server 180.
  • FIG. 2C is a dataflow diagram of an alternate embodiment of the invention, showing the [0079] content server 180 returning a content message 620 to the access point 140, in response to the server 180 having processed the event message 610. FIG. 2C shows that the content message 620 includes content information, which will ultimately be incorporated into the APSI message 550.
  • FIG. 2D is a dataflow diagram of an alternate embodiment of the invention, showing the [0080] access point 140 sending the APSI message 550 to the user's mobile device 100, which the access point 140 has assembled from the content message 620 received from the server 180.
  • FIG. 3 is a flow diagram of the operation of the User's [0081] Bluetooth device 100 according to one alternate embodiment of the invention when receiving an APSI message 550. During the period when the mobile wireless device 100 is within the coverage area of the short range wireless access point 140, it sends a request for service to be obtained over the Internet from the network server 180. The short range wireless access point forwards that request over the Internet to the server, augmented with additional information including the network address and geographic location of the access point. The short range wireless access point receives a response message over the Internet from the server, including a global/local parameter. The global/local parameter will notify the mobile wireless device whether the requested service is available outside the coverage area of the short range wireless access point. The access point forwards the response message to the mobile wireless device, which uses the information in the message to contact the server over the Internet to download web pages or to conduct other server operations. FIG. 3 shows the following steps 300 to 332.
  • Step [0082] 300: User device 100 receives the paging packet 530 (FIG. 4C) from the access point (AP) device 140.
  • Step [0083] 302: The user device's L2CAP layer 220 determines in decision block 304, if the class of device (CoD) field 542 in the paging packet 530 indicates that the next packet is an Access Point Service Indication (APSI) message 550.
  • Step [0084] 320: If it is, then when the user's device 100 receives the next packet(s) from the AP 140, the L2CAP layer 220 loads it into an APSI message buffer 236.
  • Step [0085] 322: The L2CAP layer 220 verifies that packet header 554 indicates an APSI message 550 from the AP 140.
  • Step [0086] 324: Then, the L2CAP layer 220 passes the APSI message 550 directly to the GUI application layer 234. The APSI message 550 contains fields for content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557, the handoff address 582, and URL.
  • Step [0087] 326: The GUI layer 234 then loads the content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557, the handoff address 582, and URL from the APSI message 550 into the display buffer 244 and other buffers.
  • Step [0088] 328: Then, the user selectively enters an input to the GUI 234 to establish a connection with the AP 140 for a session with the service platform server 180.
  • Step [0089] 330: The user device 100 and the AP 140 then open an SDP and/or a non-SDP channel and they begin a session.
  • Step [0090] 332: The AP 140 registers the user's device 100 with the service platform server 180 and requests service for the user's device 100. Then, the user's device 100 and the service platform server 180 conduct a session via the AP 140. The service platform server 180 can then download the maps, advertising and/or other service offerings to the mobile Bluetooth device 100.
  • Regions outside the coverage area of the short range [0091] wireless access point 140 are covered by regional cellular telephone access points 148, such as cellular telephone base stations. The regions inside the short range wireless access ports are also covered by regional cellular telephone access points 148. In accordance with the invention, if the mobile wireless device 100 detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180, it will determine whether the global/local parameter 557 indicates that the service is global which means in other words that the service can be acquired using other carriers/bearers. If the parameter 557 is global, then the mobile wireless device 100 may store a bookmark of the server's URL, for example the URL and path name for one of the prior web pages downloaded from the server 180. The mobile wireless device 100 displays a notice on browser 102 to the user, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network. If the user selects to continue the contact with the server 180, then a stored handover address 582 is accessed. The handover address 582 may be stored in the mobile wireless device 100 or alternately, it may be stored in the short range wireless access point 140. The stored handover address 582 may be a default address or alternately, it may be a handover address included in the prior response message from the server 180. The handover address 582 will typically be the telephone number of a protocol gateway 118, such as a WAP gateway, connected between the cellular telephone network 116 and the Internet 144. A cellular telephone connection is made by the mobile wireless device 100 with the regional cellular telephone access point 148. Then, a cellular telephone call is placed to the protocol gateway 118. When the call is completed over the telephone network 116 from the mobile wireless device 100 to the protocol gateway 118, the mobile wireless device 100 sends a message to the protocol gateway 118, which it forwards to the server 180. Depending on the request, the server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100.
  • Alternately, if [0092] Step 302 determines in decision block 304 that the class of device (CoD) field 542 in the paging packet 530 does not indicate that the next packet is an Access Point Service Indication (APSI) message 550, then the process flows through steps 306 to 318.
  • Step [0093] 306: The user's device 100 opens the service discovery protocol (SDP) channel and begins a session with the access point 140.
  • Step [0094] 308: The user's device 100 opens a non-SDP channel with the access point 140.
  • Step [0095] 310: The user's device 100 waits for registration of the user's device and request for service via the access point 140 from the service platform server 180.
  • Step [0096] 312: The user's device 100 conducts a service session via the access point 140 with the service platform server 180.
  • Step [0097] 314: The user's device 100 receives a service message at the L2CAP layer 220 with content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557, the handoff address 582, and URL.
  • Step [0098] 316: The L2CAP layer 220 passes the service message up through all of the layers RFCOMM, PPP, IP, UDP, WAP, and WAE of the protocol stack in the user's device 100, to the GUI application layer 234.
  • Step [0099] 318: The GUI application layer 234 loads the content, title, bitmap, soft key selection items, the local/global parameter 557, the handoff address 582, and URL, from the service message into the display buffer 244 or other buffers. Optionally, location information and service type information can also be loaded into the display buffer 244.
  • In accordance with the invention, if the [0100] mobile wireless device 100 detects that it has left the coverage area of the short range wireless access point 140 while in contact with the server 180, it will determine whether the global/local parameter 557 indicates that the service is global. If the parameter 557 is global, then the mobile wireless device 100 may store a bookmark of the server's URL. The mobile wireless device 100 displays a notice on browser 102 to the user, offering the user the option of continuing the contact with the server 180 over the regional cellular telephone network. If the user selects to continue the contact with the server 180, then a stored handover address 582 is accessed. The handover address 582 will typically be the telephone number of a protocol gateway 118 connected between the cellular telephone network 116 and the Internet 144. A cellular telephone connection is made by the mobile wireless device 100 with the regional cellular telephone access point 148. Then, a cellular telephone call is placed to the protocol gateway 118. When the call is completed over the telephone network 116 from the mobile wireless device 100 to the protocol gateway 118, the mobile wireless device 100 sends a message to the protocol gateway 118, which it forwards to the server 180. Depending on the request, the server 180 responds by resuming the operations it had previously been conducting in its prior contact with the mobile wireless device 100.
  • In FIG. 3A, a flow diagram of another alternate embodiment of the invention shows the operation of the User's [0101] Bluetooth device 100 when receiving an APSI message 550 without any previous warnings. The figure shows the steps 400 to 412.
  • Step [0102] 400: User device 100 sends inquiry response packet 510 (FIG. 4B) and receives the paging packet 530 (FIG. 4C) from the access point (AP) device 140.
  • Step [0103] 402: The user device 100 receives the next packet(s) from the AP, and the L2CAP layer 220 determines that packet header 554 indicates an APSI message 550 from the AP 140 and the L2CAP layer 220 loads it into an APSI message buffer 236.
  • Step [0104] 404: Then, the L2CAP layer 220 passes the APSI message 550 directly to the GUI application layer 234. The APSI message 550 contains fields for content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557, the handoff address 582, and URL.
  • Step [0105] 406: The GUI layer 234 then loads the content, title, bitmap, soft key selection items, location information, service type information, the local/global parameter 557, the handoff address 582, and URL from the APSI message 550 into the display buffer 244.
  • Step [0106] 408: Then, the user selectively enters an input to the GUI 234 to establish a connection with the AP 140 for a session with the service platform server 180.
  • Step [0107] 410: The user device 100 and the AP 140 then open an SDP and/or a non-SDP channel and they begin a session.
  • Step [0108] 412: The AP 140 registers the user's device 100 with the service platform server 180 and requests service for the user's device 100. Then, the user's device 100 and the service platform server 180 conduct a session via the AP 140. The service platform server 180 can then download the maps, advertising and/or other service offerings to the mobile Bluetooth device 100.
  • The following paragraphs discuss the use of the Bluetooth inquiry, inquiry response, and paging packets by the alternate embodiment of the invention. To recap, the Bluetooth [0109] access point device 140 is connected over a landline network 142 and 144 or alternatively over wireless network to the service platform server 180. The service platform server 180 has service offerings that it would like to make available to mobile Bluetooth devices 100 passing within the RF communications range of the Bluetooth access point device 140. In accordance with the alternate embodiment of the invention, the Bluetooth access point device 140 stores an Access Point Service Indicator (APSI) message 550 characterizing the offerings of the service platform server 180.
  • According to one alternate embodiment of the invention, in order to quickly communicate and display the content of the [0110] APSI message 550 on the user's device 100, notification of the impending arrival of the APSI message 550 is made by information inserted by the access point 140 into the inquiry response packets or paging packets sent to the user's device 100. According to another alternate embodiment of the invention the recognition of the message can also be accomplished without any previous notification to the terminal.
  • The Bluetooth [0111] access point device 140 periodically sends out Bluetooth inquiry packets 500 via RF link to any mobile Bluetooth devices 100 within the RF communications range. FIG. 4A shows the Bluetooth packet structure for an inquiry packet 500 sent by a Bluetooth access point device to the user's device 100. The general inquiry access code (GIAC) of the packet 500 is recognized by all Bluetooth devices as an inquiry message. During the inquiry procedure, any other Bluetooth devices that are in the inquiry scan state, such as the user's device 100, are scanning for the receipt of inquiry packets 500. If the user's device 100 in the inquiry scan state receives the inquiry packet 500, it will respond with an inquiry response packet 510 that has sufficient information to enable the Bluetooth access point device to build its inquiry response table of essential information required to make a connection. Any Bluetooth device recognizing inquiry packet 500 can respond. FIG. 4B shows the Bluetooth frequency hop synchronization (FHS) packet structure for an inquiry response packet 510 sent by the user's device 100. The FHS packet structure for an inquiry response packet 510 sent by the user's device 100 includes an access code field 512, a header which includes a slave member number field 514 in which AM_ADDR is no yet assigned and is set to zero, a type field 516 and a parity field 518. Another slave member number field 524 also has AM_ADDR set to zero. Field 522 contains user's class-of-device (CoD) information. The FHS packet structure for an inquiry response packet 510, provides essential information about the user's device 100 that enables the Bluetooth access point device to the make a connection to the user's device: Field 520 contains the user's device BD_ADDR and field 526 contains the user's device current clock value.
  • The Bluetooth access point device uses the information provided in the [0112] inquiry response packet 510 it has received from the user's device to be paged, to prepare and send a paging message to the user's paged device. To establish a connection, the access point paging device must enter the page state. The Bluetooth access point device invokes its link controller to enter the page state, where it will transmit paging messages to the user's paged device using the access code and timing information acquired from the inquiry response packet 510. The user's paged device must be in the page scan state to allow the access point paging device to connect with it. Once in the page scan state, the user's paged device will acknowledge the paging messages and the access point paging device will send a paging packet 530 shown in FIG. 4C, which provides the clock timing and access code of the Bluetooth access point paging device to the user's paged device. The paging packet 530 includes the class of device (CoD) field 542 that is a 24-bit field usually used to specify the class of the paging device, such as “FAX machine”.
  • In accordance with one alternate embodiment of the invention, the class of device (CoD) [0113] field 542 of the paging packet 530 sent by the Bluetooth access point paging device includes a unique value indicating that the next packet to be received from the Bluetooth access point paging device is the Access Point Service Indicator (APSI) message.
  • Since Bluetooth access point device has initiated the page, it will be the master device in the new piconet being formed by the two devices. The user's paged device, which will become the slave to the Bluetooth access point device, must also know the Bluetooth access point device BD_ADDR, since it is the master device's address that is used in the piconet access code for the new piconet being formed by the two devices. FIG. 4C shows the Bluetooth frequency hop synchronization (FHS) packet structure for a [0114] paging packet 530 sent by the Bluetooth access point device. The FHS packet structure for the paging packet 530 sent by the Bluetooth access point device includes an access code field 532 which contains the user's paged device's BD_ADDR, a header which includes a slave member number field 534 in which AM_ADDR is now assigned the value of one, a type field 536 and a parity field 538. Another slave member number field 544 also has AM_ADDR set to one. Field 542 contains the Bluetooth access point device class-of-device (CoD) unique value.
  • According to one alternate embodiment of the invention, the [0115] CoD field 542 indicates that the next packet sent to the terminal is an APSI message. If such indication is used, the user's device 100 can be set to a mode where APSI messages are refused and if refusal is preferred, the user's device 100 is automatically set to not reply to paging with APSI indication.
  • The FHS packet structure for the [0116] paging packet 530, provides the essential information about the Bluetooth access point device that enables the user's paged device to the make the connection to the Bluetooth access point device: Field 540 contains the Bluetooth access point device BD_ADDR and field 546 contains the Bluetooth access point device current clock value.
  • In accordance with the alternate embodiment of the invention, FIG. 4D shows the Bluetooth packet structure for the [0117] subsequent APSI message 550. The APSI message includes a header 554 that has the unique message ID 556 that indicates it is an APSI message. The APSI message 550 includes the header 554 which contains the unique APSI message ID 556. Also included in the APSI message 550 in the body portion 238, is the local/global parameter 557, priority information 558, timer information 560, display mode information 562, content 564, a title 566, a bit map 568, soft key selection 1 information 570, soft key selection2 information 572, soft key selection3 information 574, location information 576, service type information 578, URL information 580, the bandoff address 582, and an end marker 584. Location information includes coordinates and a location name. These parameters can be applied in the GUI of the user's device in an appropriate manner. Local/Global parameters describe whether the service is available locally, i.e., only inside the current Bluetooth coverage area. Global means that the service is available inside the Bluetooth coverage area, but also outside the coverage area. When the service is available also outside the Bluetooth coverage area, the user's device queries whether a default bearer (e.g., WAP over GSM-data) may be activated in order to maintain the connection to the service.
  • Instead of the [0118] access point 140 sending out an inquiry packet 500 and receiving an inquiry response packet 510 from user's device 100 with the user device's address 520 and class of device 522 information, the user's device 100, itself, can initiate the connection. The user's device 100 can send out an inquiry packet 500 shown in FIG. 4A. The access point 140 will respond with an inquiry response packet, modified from that shown for packet 510 in FIG. 4B, by having the sender's address field 520 contain the access point's address and by having the sender's class of device field 522 contain the unique CoD value. According to one alternate embodiment of the invention the unique CoD value identifies that the next packet to be sent by the access point 140 is the APSI message 550. The access point 140 will then have to wait until the user's device 100 responds with a page packet similar to packet 530 of FIG. 4C, since the access point 140 will need the address in the sender's address field 540 of the page packet in order to use it as the destination address 552 in the APSI message 550. The user device's paging packet 530, will contain the user device's address in field 540 and class of device information in field 542, which is the information needed by the access point 140 to select and return an appropriate APSI message 550. The user device's paging packet 530 received by the access point 140, will be buffered in the receive packet buffer 252 of FIG. 2A. There, its sender's address field 540 of FIG. 4C can be matched with address value 266 in the trigger word table 260 of FIG. 2A. For example, the address of the device 100 in field 540 can be matched with address values 266 in the trigger word table 260. Also, the class of device of the device 100 in field 542 can be compared with class of device values 268 stored in the trigger word table 260. If there is a match, then the APSI message cache 285 is checked by means of the APSI cache hit logic 283, to determine if a corresponding APSI message 550 is stored in the cache 285. If there is a corresponding APSI message in the cache 285, then the APSI message 550 is immediately sent to the mobile Bluetooth device 100.
  • FIG. 5 is a network process diagram of an alternate embodiment of the invention, showing the interaction between the user's [0119] device 100, the access point 140, and the content server 180. The network process diagram is divided into three columns with the user's device 100 on the left column, the access point device 140 in the middle column, and the content server 180 in the right hand column. The network process begins with step 300 in the user's device 100 sending an inquiry response 510 to the access point 140 and receiving a page 530 from the access point. The corresponding step at the access point 140 is step 600 where the access point receives the inquiry response packet 510 (which is shown in FIG. 4B) from the user's device 100. Remaining at the access point device 140 in FIG. 5, step 600 flows to step 602 wherein the access point determines that a trigger word is satisfied in its trigger table 260 by the receipt of information in the inquiry response 510. Then step 602 passes to the decision block 603, which determines whether a corresponding APSI message 550 is currently stored in the local APSI cache 285. If it is, then the decision block 603 passes to step 624 where the access point 140 sends the APSI message 550 shown in FIG. 4D to the user's device 100. Alternately, if the decision block 603 determines that the corresponding APSI message 550 is not stored in the local APSI cache 285, then block 603 flows to step 604. In step 604, the access point 140 forwards its access point address 290 and the user's device ID 284 in an event message 610 of FIG. 2B to the content server 180. Turning now to the content server 180 of FIG. 5, step 614 receives the event message 610 and the content server 180 accesses content in its database 182 in response to the user's device ID 284 and the access point address 290. Step 614 then flows to step 616 in the content server 180, where the content server returns the content information in a content message 620 of FIG. 2C to the access point 140 as specified in the access point address 290 provided in the event message 610. The content message 620 includes the local/global parameter 557 and the handoff address 582. Returning to the access point 140 in FIG. 5, step 622 receives the content message 620 and uses it to assemble the APSI message 550 so as to contain the content 564, a title 566, a bit map 568, soft key 1 selection information 570, soft key2 selection information 572, soft key3 selection information 574, location information 576, URL information 578, service type information 580 the local/global parameter 557 and the handoff address 582 contained in the content message 620 of FIG. 2C. Then step 622 flows to step 624, wherein the access point 140 sends the newly assembled APSI message 550 to the user's device 100. Turning now to the user's device 100 of FIG. 5, step 304 is optional and depending on the embodiment of the invention. Step 320 receives the APSI message 550 and stores it in the APSI message buffer 236. Then in step 322, the user's device 100 verifies with the L2CAP layer 220 that the packet header 554 of the received packet indicates that it is in fact an APSI message 550 as shown in FIG. 4D. Then step 322 flows to step 324 where the L2CAP layer 220 immediately passes the APSI message 550 over path 242 to the GUI application layer 234, thereby bypassing the middleware protocol group 224 layers. The content 564, a title 566, a bit map 568, soft key 1 selection information 570, soft key2 selection information 572, soft key3 selection information 574, location information 576, URL information 578, service type information 580, the local/global parameter 557 and the handoff address 582 are then processed by the application group 235 programs and the content 564 is displayed to the user in the browser 102.
  • Note that decision block [0120] 603 of FIG. 5 enables the access point to pass directly to step 624 to send the APSI message(s) stored in its memory directly to all mobile devices entering its coverage area, without fetching content for APSI messages from the server.
  • The resulting invention solves the problem of enabling a mobile wireless device to resume an Internet contact with a web site, which was being conducted through a short range wireless access point, but which has been interrupted by moving the mobile device out of the coverage area of the access point. [0121]
  • Although a specific embodiment of the invention has been disclosed, it will be understood by those having skill in the art that changes can be made to that specific embodiment without departing from the spirit and the scope of the invention. [0122]

Claims (92)

1-81. Cancelled.
82. A method in a short range wireless access point for enabling a mobile wireless device to resume an Internet service with a network server, the service having been interrupted by moving the mobile device out of the coverage area of the access point, comprising:
forwarding at the short range wireless access point, a request from the mobile wireless device to the network server, the request being for service to be obtained over the Internet from the server, the forwarding occurring during a period when the mobile device is within coverage area of the access point; and
forwarding at the access point, a response message from the server to the mobile device, the response message including a global/local parameter that will notify the mobile device whether the requested service is available outside the coverage area of the access point via an alternative channel specified by the global/local parameter for continuing the service.
83. The method of claim 82 wherein the alternative channel is a wide area cellular communication network.
84. The method of claim 83, wherein the wide area cellular communication network is a cellular telephone network.
85. The method of claim 82 further comprising
determining whether the global/local parameter indicates that the service is available outside the coverage area of the access point; and
storing a bookmark of the network server in the mobile device if the parameter indicates that the service is available outside the coverage area of the access point.
86. The method of claim 84 further comprising:
displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
87. The method of claim 82 further comprising:
terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
88. The method of claim 86 further comprising
obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
89. The method of claim 88 further comprising:
sending a message to the server via the cellular telephone network and the gateway to resume service.
90. The method of claim 89, which further comprises:
forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
91. The method of claim 82, which further comprises:
said short range wireless access point being a Bluetooth access point.
92. The method of claim 82, which further comprises:
said short range wireless access point being an IrDA Infrared Data Protocol access point.
93. The method of claim 82, which further comprises:
said short range wireless access point being an IEEE 802.11 wireless LAN access point.
94. The method of claim 82, which further comprises:
said short range wireless access point being a HiperLAN access point.
95. The method of claim 82, which further comprises:
said mobile wireless device being equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
96. The method of claim 82 which further comprises:
said mobile wireless device being a Bluetooth-equipped cellular telephone.
97. The method of claim 82, which further comprises:
said regional cellular telephone access point being a GSM base station.
98. The method of claim 82, which further comprises:
said regional cellular telephone access point being a GPRS base station.
99. The method of claim 82, which further comprises:
said regional cellular telephone access point being a UMTS base station.
100. The method of claim 82, which further comprises:
said regional cellular telephone access point being a EDGE base station.
101. The method of claim 82, which further comprises:
said gateway being a wireless application protocol gateway.
102. A method in a short range wireless access point for enabling a mobile wireless device to resume an Internet service with a network server, the service having been interrupted by moving the mobile device out of the coverage area of the access point, comprising:
forwarding at the short range wireless access point, a request from the mobile wireless device to the network server, the request being for service to be obtained over the Internet from the server, the forwarding occurring during a period when the mobile device is within coverage area of the access point;
forwarding at the access point, a response message from the server to the mobile device, the response message including a global/local parameter that will notify the mobile device whether the requested service is available outside the coverage area of the access point via an alternative channel specified by the global/local parameter for continuing the service wherein the alternative channel is a wide area cellular communication network;
determining whether the global/local parameter indicates that the service is global; and
storing a bookmark of the network server in the mobile device if the parameter indicates that the service is global.
103. The method of claim 102, wherein the wide area cellular communication network is a cellular telephone network.
104. The method of claim 103 further comprising:
displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
105. The method of claim 102 further comprising:
terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
106. The method of claim 103 further comprising
obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
107. The method of claim 103 further comprising:
sending a message to the server via the cellular telephone network and the gateway to resume service.
108. The method of claim 104, which further comprises:
forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
109. A computer program product, executable in a computer system, to enable a mobile wireless device to resume an Internet service with a network server, the server having been interrupted by moving the mobile device out of the coverage area of a short range wireless access point, comprising
a computer readable medium;
program code in the medium for forwarding at the short range wireless access point, a request from the mobile wireless device to the network server, the request being for service to be obtained over the Internet from the server, the forwarding occurring during a period when the mobile device is within coverage area of the access point;
program code in the medium for forwarding at the access point, a response message from the server to the mobile device, the response message including a global/local parameter that will notify the mobile device whether the requested service is available outside the coverage area of the access point via an alternative channel specified by the global/local parameter for continuing the service wherein the alternative channel is a wide area cellular communication network;
program code in the medium for determining whether the global/local parameter indicates that the service is global; and
program code for storing a bookmark of the network server in the mobile device if the parameter indicates that the service is global.
110. The computer program product of claim 109, wherein the wide area cellular communication network is a cellular telephone network.
111. The computer program product of claim 110 further comprising:
program code displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
112. The computer program product of claim 109 further comprising:
program code terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
113. The computer program product of claim 111 further comprising
program code obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
114. The computer program product of claim 113 further comprising:
program code sending a message to the server via the cellular telephone network and the gateway to resume service.
115. The computer program product of claim 111, which further comprises:
program code forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
116. A short range wireless access point for enabling a mobile wireless device to resume a service with a network server, the service having been interrupted by moving the mobile device out of the coverage area of the access point, comprising:
a short range wireless transceiver for receiving a request from the mobile wireless device;
a processor coupled to the transceiver, for forwarding the request from the mobile wireless device over a network to a network server, the request being for service to be obtained from the server, the forwarding occurring during a period when the mobile device is within coverage area of the access point; and
a network interface coupled to the network, for receiving from the server, a response message including a global/local parameter indicating whether the requested service is available outside the coverage area of the access point via an alternative channel specified by the global/local parameter wherein the alternative channel is a wide area cellular communication network;
said transceiver forwarding the response message to the mobile device.
117. The method of claim 116, wherein the wide area cellular communication network is a cellular telephone network.
118. The method of claim 117 further comprising:
displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
119. The method of claim 116 further comprising:
terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
120. The method of claim 117 further comprising
obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
121. The method of claim 120 further comprising:
sending a message to the server via the cellular telephone network and the gateway to resume service.
122. The method of claim 118, which further comprises:
forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
123. The short range wireless access point of claim 116, which further comprises:
said short range wireless access point being a Bluetooth access point.
124. The short range wireless access point of claim 116, which further comprises:
said short range wireless access point being an IrDA Infrared Data Protocol access point.
125. The short range wireless access point of claim 116, which further comprises:
said short range wireless access point being an IEEE 802.11 wireless LAN access point.
126. The short range wireless access point of claim 116, which further comprises:
said short range wireless access point being a HiperLAN access point.
127. The short range wireless access point of claim 116, which further comprises:
said mobile wireless device being equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
128. The short range wireless access point of claim 116, which further comprises:
said mobile wireless device being a Bluetooth-equipped cellular telephone.
129. The short range wireless access point of claim 122, which further comprises:
said cellular telephone access point being a GSM base station.
130. The short range wireless access point of claim 122, which further comprises:
said cellular telephone access point being a GPRS base station.
131. The short range wireless access point of claim 122, which further comprises:
said cellular telephone access point being a UMTS base station.
132. The short range wireless access point of claim 122, which further comprises:
said cellular telephone access point being a EDGE base station.
133. The short range wireless access point of claim 122, which further comprises:
said gateway being a wireless application protocol gateway.
134. A mobile wireless device to resume a service with a network server, the service having been interrupted by moving the mobile device out of a coverage area of a short range wireless access point, comprising:
a short range wireless transceiver for sending a request to a short range wireless access point, for service to be obtained over a network from a network server, the sending occurring during a period when the mobile device is within the coverage area of a short range wireless access point;
said transceiver receiving from the short range wireless access point, a response message from the server, including a global/local parameter that indicates whether the requested service is available outside the coverage area of the short range wireless access point and specifying an alternative channel for continuing the service, the alternative channel being a wide area cellular network;
a processor coupled to the short range wireless transceiver, for detecting that the mobile device has left the coverage area of the short range wireless access point;
said processor determining whether the global/local parameter indicates that the service is global and storing a bookmark of the network server in the mobile device if the parameter indicates that the service is global;
a user interface coupled to the processor, for displaying an option to the user for continuing the service with the server over the wide area cellular network when the mobile device moves outside of the coverage area of the access point;
said user interface receiving a user selection to continue the service with the server; and
a cellular telephone transceiver coupled to the processor, for placing a cellular telephone call via the wide area cellular telephone network and a protocol gateway between the wide area cellular network and the Internet to send a message to the network server to resume service between the mobile device and the server.
135. The mobile wireless device of claim 134, which further comprises:
said mobile wireless device being equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
136. The mobile wireless device of claim 134, which further comprises:
said mobile wireless device being a Bluetooth-equipped cellular telephone.
137. The mobile wireless device of claim 134, which further comprises:
a cellular telephone access point connected to the gateway and being a GSM base station.
138. The mobile wireless device of claim 137, which further comprises:
said cellular telephone access point being a GPRS base station.
139. The mobile wireless device of claim 137, which further comprises:
said cellular telephone access point being a UMTS base station.
140. The mobile wireless device of claim 137, which further comprises:
said cellular telephone access point being a EDGE base station.
141. A method in a short range wireless access point for enabling a mobile wireless device to resume a network service with a network server, the service having been interrupted by moving the mobile device out of the coverage area of the access point, comprising:
forwarding at the short range wireless access point, information from the mobile wireless device to the network server, the information being associated with service available over the network from the server, the forwarding occurring during a period when the mobile device is within coverage area of the access point; and
forwarding at the access point, an APSI message with information from the server to the mobile device, the APSI message including a global/local parameter that will notify the mobile device whether the service is available outside the coverage area of the access point and specify an alternative channel for continuing the service, the alternative channel being a wide area cellular communication network.
142. The method of claim 141, wherein the wide area cellular communication network is a cellular telephone network.
143. The method of claim 142 further comprising:
displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
144. The method of claim 141 further comprising:
terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
145. The method of claim 143 further comprising
obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
146. The method of claim 145 further comprising:
sending a message to the server via the cellular telephone network and the gateway to resume service
147. The method of claim 143, which further comprises:
forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
148. The short range wireless access point of claim 141, which further comprises:
said short range wireless access point being a Bluetooth access point.
149. The short range wireless access point of claim 141, which further comprises:
said short range wireless access point being an IrDA Infrared Data Protocol access point.
150. The short range wireless access point of claim 141, which further comprises:
said short range wireless access point being an IEEE 802.11 wireless LAN access point.
151. The short range wireless access point of claim 141, which further comprises:
said short range wireless access point being a HiperLAN access point.
152. The short range wireless access point of claim 141, which further comprises:
said mobile wireless device being equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
153. A method in a mobile wireless device to resume service with a network server, the service having been interrupted by moving the mobile device out of a coverage area of a short range wireless access point, comprising:
sending information to the short range wireless access point during a period when the mobile device is within the coverage area of the access point;
receiving from the short range access point, an APSI message with information from the network server, including a global/local parameter that indicates whether service is available outside the coverage area of the access point and an alternative channel for continuing the service, the alternate channel being a wide area cellular communication network;
detecting that the mobile device has left the coverage area of the short range wireless access point;
determining whether the global/local parameter indicates that the service is global;
storing a bookmark of the network server in the mobile device if the parameter is global.
displaying an option to the user for continuing the service with the server over the wide area cellular communication network;
receiving a user selection to continue the service with the server;
placing a cellular telephone call via the wide area cellular network and a protocol gateway between the wide area cellular network and the Internet for sending a message to the network server to resume service between the mobile device and the server.
154. The method of claim 153, wherein the wide area cellular communication network is a cellular telephone network.
155. The method of claim 154 further comprising:
displaying on the mobile wireless device a notice offering a user an option of resuming the service with the network server over the cellular telephone network when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is available outside the coverage area of the access point.
156. The method of claim 153 further comprising:
terminating the service when the mobile device moves outside of the coverage area of the access point and the parameter indicates that the service is local.
157. The method of claim 155 further comprising
obtaining a telephone number of a gateway connected between the cellular telephone network and the Internet if the user elects to resume service with the network server.
158. The method of claim 157 further comprising:
sending a message to the server via the cellular telephone network and the gateway to resume service.
159. The method of claim 157, which further comprises:
forwarding at a cellular telephone access point, a bookmark URL from the mobile wireless device to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the Internet service.
160. The method of claim 159, which further comprises:
obtaining an address of the gateway, thereby enabling a connection to be made by the mobile device via the cellular telephone access point to the gateway, to resume the network service.
161. The method of claim 159, which further comprises:
sending a bookmark URL to the gateway via the cellular telephone access point, for forwarding to the network server, thereby enabling a connection to the server be completed by the gateway, to resume the network service.
162. The method of claim 153, which further comprises:
said short range wireless access point being a Bluetooth access point.
163. The method of claim 153, which further comprises:
said short range wireless access point being an IrDA Infrared Data Protocol access point.
164. The method of claim 153, which further comprises:
said short range wireless access point being an IEEE 802.11 wireless LAN access point.
165. The method of claim 153, which further comprises:
said short range wireless access point being a HiperLAN access point.
166. The method of claim 153, which further comprises:
said mobile wireless device being equipped with both short range wireless communications circuits and with cellular telephone communications circuits.
167. The method of claim 153, which further comprises:
said mobile wireless device being a Bluetooth-equipped cellular telephone.
168. The method of claim 159 which further comprises:
said cellular telephone access point being a GSM base station.
169. The method of claim 159, which further comprises:
said cellular telephone access point being a GPRS base station.
170. The method of claim 159, which further comprises:
said cellular telephone access point being a UMTS base station.
171. The method of claim 159 which further comprises:
said cellular telephone access point being a EDGE base station.
172. The method of claim 157, which further comprises:
said gateway being a wireless application protocol gateway.
US10/836,241 2001-11-01 2004-05-03 Moving mobile wireless device having continuing service from the same internet server Abandoned US20040202132A1 (en)

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Cited By (73)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US20030108017A1 (en) * 2001-12-10 2003-06-12 David Famolari Method and apparatus utilizing bluetooth protocols for the remote setting of IP network parameters
US20030119480A1 (en) * 2001-02-26 2003-06-26 Jahangir Mohammed Apparatus and method for provisioning an unlicensed wireless communications base station for operation within a licensed wireless communications system
US20030147364A1 (en) * 2002-02-06 2003-08-07 Fujio Watanabe Using subnet relations to conserve power in a wireless communication device
US20030153304A1 (en) * 2001-12-28 2003-08-14 Sk Teletech Co., Ltd. File construction for mobile communication device including machine-language-code execution segment and file execution method using the same
US20030165129A1 (en) * 2002-03-01 2003-09-04 Microsoft Corporation Method to obtain friendly names for bluetooth devices
US20030220105A1 (en) * 2002-05-24 2003-11-27 Alcatel Method for localizing a mobile terminal in an area under radio coverage of a cellular communication network and of a localization point, corresponding mobile terminal, server and localization point
US20040104938A1 (en) * 2002-09-09 2004-06-03 Saraswat Vijay Anand System and method for multi-modal browsing with integrated update feature
US20040165565A1 (en) * 2003-02-26 2004-08-26 Ntt Docomo, Inc Communication system, mobile terminal and transfer device
US20040203824A1 (en) * 2002-07-26 2004-10-14 Mock Von A. Method and mobile station for determining a communication channel for a communication session
US20040266439A1 (en) * 2003-06-25 2004-12-30 Lynch Jamel P Systems, methods and computer program products for connecting ad hoc piconets to wide area networks
US20050183024A1 (en) * 2002-03-19 2005-08-18 Henrik Andersson Architecture and method for integrating and presenting medical information
US20050227677A1 (en) * 2002-06-12 2005-10-13 Nokia Corporation Downloadable profiles for mobile terminals
US20050249142A1 (en) * 2004-05-07 2005-11-10 Yu-Chul Kim Method for receiving broadcast service using broadcast zone identifier in a mobile communication system
US20050288003A1 (en) * 2004-06-29 2005-12-29 Kabushiki Kaisha Toshiba Wireless communication system and communication terminal
US20060046651A1 (en) * 2004-08-31 2006-03-02 Research In Motion Ltd. Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US20060052108A1 (en) * 2003-10-16 2006-03-09 Rajiv Laroia Methods and apparatus of improving inter-sector and/or inter-cell handoffs in a multi-carrier wireless communications system
US20060062183A1 (en) * 2004-03-03 2006-03-23 Forte Andrea G Methods and systems for reducing MAC layer handoff latency in wireless networks
US20060262760A1 (en) * 2005-05-19 2006-11-23 Byung-Jun Bae DMB/mobile communication network linkage platform for interactive service, DMB/mobile communication network integrated receiving terminal using the same and method thereof
US20070197164A1 (en) * 2006-02-23 2007-08-23 Arnold Sheynman Method and device for automatic bluetooth pairing
US20070211694A1 (en) * 2006-03-13 2007-09-13 Nokia Corporation Method for the transfer of information during handovers in a communication system
US20080082555A1 (en) * 2006-10-02 2008-04-03 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US20080082586A1 (en) * 2006-10-02 2008-04-03 Salesforce.Com, Inc Method and system for selecting amongst a plurality of processes to send a message
US20080112362A1 (en) * 2006-11-10 2008-05-15 Motorola, Inc. Ip layer-handoff using mobility domains and ip caching
US20080189776A1 (en) * 2007-02-01 2008-08-07 Credit Suisse Securities (Usa) Llc Method and System for Dynamically Controlling Access to a Network
US20090052401A1 (en) * 2006-02-06 2009-02-26 Nec Corporation Mobile communication system, base station controller, mobile device, handover control method, and program
US20090232047A1 (en) * 2008-03-14 2009-09-17 Lynch Jr Jamel P Systems for connecting ad hoc piconets to wide area networks
US20090310509A1 (en) * 2005-06-02 2009-12-17 Hisao Kumai Communication system and communication terminal
US7668558B2 (en) 2002-10-18 2010-02-23 Kineto Wireless, Inc. Network controller messaging for paging in an unlicensed wireless communication system
US20100054224A1 (en) * 2002-12-27 2010-03-04 Hayduk Matthew A Communication subsystem for wireless devices or the like
US7720481B2 (en) 2001-02-26 2010-05-18 Kineto Wireless, Inc. Apparatus for supporting the handover of a telecommunication session between a licensed wireless system and an unlicensed wireless system
US7746834B1 (en) * 2003-03-17 2010-06-29 3Com Corporation Method of dynamically locating and connecting to a wireless device
US20100169763A1 (en) * 2008-12-27 2010-07-01 Yoram Zahavi Method and system for inserting data in a web page that is transmitted to a handheld device
US7756546B1 (en) 2005-03-30 2010-07-13 Kineto Wireless, Inc. Methods and apparatuses to indicate fixed terminal capabilities
US20100257195A1 (en) * 2009-02-20 2010-10-07 Nikon Corporation Mobile information device, image pickup device, and information acquisition system
US7843900B2 (en) 2005-08-10 2010-11-30 Kineto Wireless, Inc. Mechanisms to extend UMA or GAN to inter-work with UMTS core network
US7852817B2 (en) 2006-07-14 2010-12-14 Kineto Wireless, Inc. Generic access to the Iu interface
US7873015B2 (en) 2002-10-18 2011-01-18 Kineto Wireless, Inc. Method and system for registering an unlicensed mobile access subscriber with a network controller
US7885644B2 (en) 2002-10-18 2011-02-08 Kineto Wireless, Inc. Method and system of providing landline equivalent location information over an integrated communication system
US7904084B2 (en) 2005-08-26 2011-03-08 Kineto Wireless, Inc. Intelligent access point scanning with self-learning capability
US7912004B2 (en) 2006-07-14 2011-03-22 Kineto Wireless, Inc. Generic access to the Iu interface
US7929977B2 (en) 2003-10-17 2011-04-19 Kineto Wireless, Inc. Method and system for determining the location of an unlicensed mobile access subscriber
US7933598B1 (en) 2005-03-14 2011-04-26 Kineto Wireless, Inc. Methods and apparatuses for effecting handover in integrated wireless systems
US7949326B2 (en) 2002-10-18 2011-05-24 Kineto Wireless, Inc. Apparatus and method for extending the coverage area of a licensed wireless communication system using an unlicensed wireless communication system
US7953423B2 (en) 2002-10-18 2011-05-31 Kineto Wireless, Inc. Messaging in an unlicensed mobile access telecommunications system
US7957348B1 (en) 2004-04-21 2011-06-07 Kineto Wireless, Inc. Method and system for signaling traffic and media types within a communications network switching system
US7974624B2 (en) 2002-10-18 2011-07-05 Kineto Wireless, Inc. Registration messaging in an unlicensed mobile access telecommunications system
US7995994B2 (en) 2006-09-22 2011-08-09 Kineto Wireless, Inc. Method and apparatus for preventing theft of service in a communication system
US8005076B2 (en) 2006-07-14 2011-08-23 Kineto Wireless, Inc. Method and apparatus for activating transport channels in a packet switched communication system
US8019331B2 (en) 2007-02-26 2011-09-13 Kineto Wireless, Inc. Femtocell integration into the macro network
US8036664B2 (en) 2006-09-22 2011-10-11 Kineto Wireless, Inc. Method and apparatus for determining rove-out
US8041385B2 (en) 2004-05-14 2011-10-18 Kineto Wireless, Inc. Power management mechanism for unlicensed wireless communication systems
US8041335B2 (en) 2008-04-18 2011-10-18 Kineto Wireless, Inc. Method and apparatus for routing of emergency services for unauthorized user equipment in a home Node B system
US8073428B2 (en) 2006-09-22 2011-12-06 Kineto Wireless, Inc. Method and apparatus for securing communication between an access point and a network controller
US8130703B2 (en) 2002-10-18 2012-03-06 Kineto Wireless, Inc. Apparatus and messages for interworking between unlicensed access network and GPRS network for data services
US8150397B2 (en) 2006-09-22 2012-04-03 Kineto Wireless, Inc. Method and apparatus for establishing transport channels for a femtocell
US8165585B2 (en) 2002-10-18 2012-04-24 Kineto Wireless, Inc. Handover messaging in an unlicensed mobile access telecommunications system
US8165086B2 (en) 2006-04-18 2012-04-24 Kineto Wireless, Inc. Method of providing improved integrated communication system data service
US8204502B2 (en) 2006-09-22 2012-06-19 Kineto Wireless, Inc. Method and apparatus for user equipment registration
US20130132465A1 (en) * 2011-10-14 2013-05-23 Zoll Medical Corporation Automated delivery of medical device support software
US8526916B2 (en) 2002-02-13 2013-09-03 Nokia Corporation Method and system for multimedia tags
US20130281064A1 (en) * 2010-12-20 2013-10-24 Telefonaktiebolaget L M Ericsson (Publ) Methods and User Equipments for Granting a First User Equipment Access to a Service
US8588776B1 (en) * 2009-01-15 2013-11-19 Sprint Communications Company L.P. User controlled base station selection
US8769008B1 (en) * 2007-12-07 2014-07-01 The New York Times Company Method and system for providing preference based content to a location aware mobile device
US9380411B2 (en) * 2012-06-21 2016-06-28 Broadcom Corporation Proximity detection
US9490857B2 (en) 2002-09-20 2016-11-08 Iii Holdings 1, Llc Systems and methods for parallel signal cancellation
US9648644B2 (en) 2004-08-24 2017-05-09 Comcast Cable Communications, Llc Determining a location of a device for calling via an access point
WO2018058129A1 (en) * 2016-09-26 2018-03-29 Uber Technologies, Inc. Network service over limited network connectivity
US10075588B2 (en) 2015-10-15 2018-09-11 Microsoft Technology Licensing, Llc Managing communication events
US20180293248A1 (en) * 2017-04-05 2018-10-11 Toyota Research Institute, Inc. Mobile computing systems and methods for accessing data
US11087287B2 (en) 2017-04-28 2021-08-10 Uber Technologies, Inc. System and method for generating event invitations to specified recipients
US11582328B2 (en) 2017-08-11 2023-02-14 Uber Technologies, Inc. Dynamic scheduling system for planned service requests
US11601511B2 (en) 2016-09-26 2023-03-07 Uber Technologies, Inc. Service information and configuration user interface
US11954754B2 (en) 2019-06-13 2024-04-09 Uber Technologies, Inc. Computing system configuring destination accelerators based on usage patterns of users of a transport service

Families Citing this family (115)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
EP1043845A1 (en) * 1999-04-06 2000-10-11 Telefonaktiebolaget L M Ericsson (Publ) A method of and equipment for performing radio communication in a plurality of radio communication environments
US6850512B1 (en) 1999-08-26 2005-02-01 Ipr Licensing, Inc. Two tier hi-speed wireless communication link
AU4637801A (en) * 2000-03-21 2001-10-03 Siemens Ag Method for transmitting a data packet from a first network unit to a second network unit in a data network
US7146636B2 (en) * 2000-07-24 2006-12-05 Bluesocket, Inc. Method and system for enabling centralized control of wireless local area networks
JP3639200B2 (en) * 2000-09-08 2005-04-20 株式会社東芝 COMMUNICATION SYSTEM, MOBILE TERMINAL DEVICE, GATEWAY DEVICE, ADDRESS ALLOCATION METHOD, AND SEARCH SERVICE METHOD
GB2373966B (en) * 2001-03-30 2003-07-09 Toshiba Res Europ Ltd Mode monitoring & identification through distributed radio
US7161923B2 (en) * 2001-08-31 2007-01-09 Sharp Laboratories Of America, Inc. System and method for establishing bluetooth communications
US7164886B2 (en) * 2001-10-30 2007-01-16 Texas Instruments Incorporated Bluetooth transparent bridge
US6744753B2 (en) * 2001-11-01 2004-06-01 Nokia Corporation Local service handover
CN1605200A (en) * 2001-11-05 2005-04-06 松下电器产业株式会社 Terminal used in video transmission system
WO2003041341A1 (en) * 2001-11-05 2003-05-15 Matsushita Electric Industrial Co., Ltd. Server apparatus and terminal apparatus used in video transmission system
US7496065B2 (en) * 2001-11-29 2009-02-24 Telcordia Technologies, Inc. Efficient piconet formation and maintenance in a Bluetooth wireless network
GB2418809A (en) * 2001-12-20 2006-04-05 Hewlett Packard Co A device for inter-network transfer
AU2003235660A1 (en) * 2002-01-10 2003-07-30 Thomson Licensing S.A. Telephony device with irda repeater
US7653569B1 (en) * 2002-02-06 2010-01-26 At&T Intellectual Property I, L.P. Systems and methods for delivering advertisements
US7277409B1 (en) * 2002-02-07 2007-10-02 Broadcom Corporation Wireless local area network management
US7509417B1 (en) * 2002-02-28 2009-03-24 Palm, Inc. Method for intelligently selecting a wireless communication access point
US6754194B2 (en) * 2002-03-18 2004-06-22 Thomson Licensing S.A. Method and apparatus for indicating the presence of a wireless local area network by detecting signature sequences
US7102640B1 (en) 2002-03-21 2006-09-05 Nokia Corporation Service/device indication with graphical interface
KR20040103969A (en) * 2002-04-19 2004-12-09 컴퓨터 어소시에이츠 싱크, 인코포레이티드 System and method for managing wireless devices in an enterprise
US7103359B1 (en) 2002-05-23 2006-09-05 Nokia Corporation Method and system for access point roaming
US20040014422A1 (en) * 2002-07-19 2004-01-22 Nokia Corporation Method and system for handovers using service description data
US7835328B2 (en) * 2002-09-13 2010-11-16 Strix Systems, Inc. Network access points using multiple devices
JP3707462B2 (en) * 2002-09-18 2005-10-19 日本電気株式会社 Mobile phone, local wireless communication method used therefor, and program thereof
MXPA05003176A (en) * 2002-09-27 2006-06-08 Axesstel Inc Multimode phone including two wireless modems and a modem processor.
JP3679080B2 (en) * 2002-09-30 2005-08-03 株式会社バッファロー Wireless LAN, data transmission / reception method using wireless LAN, and medium recording data transmission / reception control program
US7006481B2 (en) * 2002-10-10 2006-02-28 Interdigital Technology Corporation System and method for integrating WLAN and 3G
US7471655B2 (en) * 2003-10-17 2008-12-30 Kineto Wireless, Inc. Channel activation messaging in an unlicensed mobile access telecommunications system
US7283505B1 (en) 2002-10-31 2007-10-16 Aol Llc, A Delaware Limited Liability Company Configuring wireless access points
US7752329B1 (en) 2002-10-31 2010-07-06 Aol Inc. Migrating configuration information based on user identity information
US7313384B1 (en) 2002-10-31 2007-12-25 Aol Llc, A Delaware Limited Liability Company Configuring wireless devices
US7366523B2 (en) * 2002-11-12 2008-04-29 Nokia Corporation Method and system for providing location-based services
US7263086B2 (en) * 2002-11-12 2007-08-28 Nokia Corporation Method and system for providing location-based services in multiple coverage area environments
AU2002354277A1 (en) * 2002-12-17 2004-07-09 Allied Telesis Kabushiki Kaisha Relay apparatus with built-in power line communication modem
US20040181692A1 (en) * 2003-01-13 2004-09-16 Johanna Wild Method and apparatus for providing network service information to a mobile station by a wireless local area network
US7533158B2 (en) 2003-01-17 2009-05-12 At&T Intellectual Property I, L.P. System and method for handling digital content delivery to portable devices
DE10306453A1 (en) * 2003-02-17 2004-08-26 Deutsche Telekom Ag Wireless data exchange method in which administrator is used to automatically connect mobile terminal or terminals in optimum manner via available network connection according to required bandwidth
US7382771B2 (en) * 2003-03-13 2008-06-03 In Motion Technology, Inc. Mobile wireless hotspot system
US7570616B2 (en) * 2003-04-09 2009-08-04 Alcatel-Lucent Usa Inc. Mobile cellular communication device presentation of user notification of active communication session handoff between radio technologies that are not directly compatible
US7522731B2 (en) * 2003-04-28 2009-04-21 Firetide, Inc. Wireless service points having unique identifiers for secure communication
US7305459B2 (en) * 2003-04-28 2007-12-04 Firetide, Inc. Wireless service point networks
US7346344B2 (en) * 2003-05-30 2008-03-18 Aol Llc, A Delaware Limited Liability Company Identity-based wireless device configuration
JP2004357095A (en) * 2003-05-30 2004-12-16 Sony Corp Information processing system, information processing device and method, receiving system and method, and program
KR100629484B1 (en) * 2003-07-11 2006-09-28 삼성전자주식회사 Apparatus and method for routing path establishment in scatternet
JP4649547B2 (en) * 2003-08-06 2011-03-09 スミス マイクロ ソフトウェア インコーポレイテッド Method and apparatus for seamless roaming between wireless networks
US7787423B2 (en) * 2003-09-10 2010-08-31 Panasonic Corporation Device and program product for the same
US20050068912A1 (en) * 2003-09-16 2005-03-31 Scott Robert Paxton Method and system for wirelessly providing an update to a network appliance
JP4185853B2 (en) * 2003-11-28 2008-11-26 株式会社日立コミュニケーションテクノロジー Wireless system, server, and mobile station
US20080132207A1 (en) * 2003-10-17 2008-06-05 Gallagher Michael D Service access control interface for an unlicensed wireless communication system
US20050085187A1 (en) * 2003-10-17 2005-04-21 Magnus Jendbro Wireless user note server apparatus, methods and computer program products and wireless terminals for use therewith
US7283822B2 (en) * 2003-10-17 2007-10-16 Kineto Wireless, Inc. Service access control interface for an unlicensed wireless communication system
US7734293B2 (en) * 2003-10-29 2010-06-08 Martin Zilliacus Mapping wireless proximity identificator to subscriber identity for hotspot based wireless services for mobile terminals
PT1533943E (en) * 2003-11-24 2008-12-22 Calypso Wireless Inc System and method for hybrid wireless data communication
US7412516B1 (en) 2003-12-29 2008-08-12 Aol Llc Using a network bandwidth setting based on determining the network environment
US7440764B2 (en) * 2004-02-12 2008-10-21 Motorola, Inc. Method and apparatus for improving throughput in a wireless local area network
KR100713487B1 (en) * 2004-03-05 2007-05-02 삼성전자주식회사 A service flow management Method for active BS set in Mobile Broadband Wireless Access System
ATE468715T1 (en) * 2004-04-22 2010-06-15 Kineto Wireless Inc METHOD AND SYSTEM FOR REGISTERING AN UNLICENSED MOBILE ACCESS SUBSCRIBER WITH A NETWORK CONTROLLER
US20050250492A1 (en) * 2004-05-10 2005-11-10 Chang Han K Method for suspending roaming
BE1016096A4 (en) * 2004-06-23 2006-03-07 Delbare Wim Jozef Robert Mobile phone telecommunication network, uses internet interfaces in switching centre and mobile phone to allow phone calls between mobile phones via internet
US7450552B2 (en) * 2004-07-02 2008-11-11 Tropos Networks, Inc. Access point control of client roaming
US7471701B2 (en) * 2004-08-19 2008-12-30 International Business Machines Corporation Seamless integrated multiple wireless data connections
US20060039348A1 (en) * 2004-08-20 2006-02-23 Nokia Corporation System, device and method for data transfer
US20060045056A1 (en) * 2004-08-31 2006-03-02 O'hara Robert B Jr Border access point protocol facilitating wireless client macro-mobility
JP4402722B2 (en) * 2004-11-04 2010-01-20 サムスン エレクトロニクス カンパニー リミテッド Apparatus and method for signal transmission / reception using downlink channel information in sleep mode in broadband wireless access communication system
US20060239277A1 (en) * 2004-11-10 2006-10-26 Michael Gallagher Transmitting messages across telephony protocols
US7912973B2 (en) * 2004-12-03 2011-03-22 Microsoft Corporation Message exchange protocol extension negotiation
KR101038982B1 (en) * 2005-01-03 2011-06-03 에스케이 텔레콤주식회사 Method for Hand-over Between Asynchronous Communication Network and Synchronous Communication Network Using Radio Frequency Identification, Mobile Communication Terminal and RFID Detector therefor
US20060209799A1 (en) * 2005-02-09 2006-09-21 Gallagher Michael D Unlicensed mobile access network (UMAN) system and method
US20060209882A1 (en) * 2005-02-28 2006-09-21 Seung-Jae Han Method for vertical handoff in a hierarchical network
WO2007011861A2 (en) 2005-07-18 2007-01-25 Telecommunication Systems, Inc. Integrated services user part (isup)/session initiation protocol (sip) gateway for unlicensed mobile access (uma) emergency services call flow
EP1922842B1 (en) * 2005-09-09 2017-08-09 Panasonic Intellectual Property Corporation of America Radio communication terminal and network side communication apparatus
US7333464B2 (en) * 2006-02-01 2008-02-19 Microsoft Corporation Automated service discovery and wireless network set-up
WO2007114623A1 (en) * 2006-03-31 2007-10-11 Samsung Electronics Co., Ltd. System and method for optimizing authentication procedure during inter access system handovers
US8228897B2 (en) 2006-04-04 2012-07-24 Telecommunication Systems, Inc. SS7 ANSI-41 to SIP based call signaling conversion gateway for wireless VoIP E911
US8155109B2 (en) 2006-04-04 2012-04-10 Telecommunication Systems, Inc. SS7 ISUP to SIP based call signaling conversion gateway for wireless VoIP E911
US8208461B2 (en) 2006-04-04 2012-06-26 Telecommunication Systems, Inc. SS7 MAP/Lg+ to SIP based call signaling conversion gateway for wireless VoIP E911
US7616696B1 (en) 2006-06-14 2009-11-10 Nextel Communications, Inc. System and method to increase sector throughput in a multi-carrier operation
KR100938078B1 (en) 2006-07-07 2010-01-21 삼성전자주식회사 System and method for providing service in a communication system
US20090059848A1 (en) * 2006-07-14 2009-03-05 Amit Khetawat Method and System for Supporting Large Number of Data Paths in an Integrated Communication System
US20080076392A1 (en) * 2006-09-22 2008-03-27 Amit Khetawat Method and apparatus for securing a wireless air interface
WO2009057155A2 (en) * 2007-11-04 2009-05-07 Rajendra Kumar Khare System and method for delivery of value added services (vas) through short range wireless network
US8861502B2 (en) * 2008-03-03 2014-10-14 Qualcomm Incorporated Assisted initial network acquisition and system determination
JP4334602B1 (en) * 2008-06-17 2009-09-30 任天堂株式会社 Information processing apparatus, information processing system, and information processing program
JP4894826B2 (en) * 2008-07-14 2012-03-14 ソニー株式会社 COMMUNICATION DEVICE, COMMUNICATION SYSTEM, NOTIFICATION METHOD, AND PROGRAM
WO2010016123A1 (en) * 2008-08-06 2010-02-11 富士通株式会社 Base station device, mobile communication method and mobile communication system
US8798029B2 (en) 2008-08-06 2014-08-05 Qualcomm Incorporated Ultra wideband assisted initial acquisition
US20100041405A1 (en) * 2008-08-15 2010-02-18 Gallagher Michael D Method and apparatus for inter home node b handover in a home node b group
US20100097956A1 (en) * 2008-10-20 2010-04-22 Toshiba America Research, Inc. Multi-interface management configuration method and graphical user interface for connection manager
US9155068B2 (en) * 2009-03-03 2015-10-06 Nokia Technologies Oy Method and apparatus for delivering advertising data
TWI410151B (en) * 2009-08-28 2013-09-21 4Ipnet Inc Systems and methods for wireless node connection, and computer program products thereof
KR101679428B1 (en) * 2009-10-16 2016-11-25 삼성전자주식회사 Apparatus and method of establishing personal network for providing cpns service
CA2780064A1 (en) * 2009-11-06 2011-05-12 Research In Motion Limited Device, system and method for selecting, sharing and displaying electronic content
US9363228B2 (en) * 2009-12-15 2016-06-07 Qualcomm Innovation Center, Inc. Apparatus and method of peer-to-peer communication
DE102010000909B4 (en) * 2010-01-14 2017-06-22 Airbus Operations Gmbh Apparatus for providing radio frequency signal connections
WO2013024553A1 (en) * 2011-08-18 2013-02-21 富士通株式会社 Communication apparatus, communication method, and communication program
US9473220B2 (en) 2011-08-22 2016-10-18 Intel Corporation Device, system and method of controlling wireless communication based on an orientation-related attribute of a wireless communication device
US10129249B1 (en) * 2013-03-14 2018-11-13 EMC IP Holding Company LLC Randomizing state transitions for one-time authentication tokens
WO2013078354A1 (en) 2011-11-23 2013-05-30 Telecommunication Systems, Inc. Mobile user information selection and delivery event based upon credentials and variables
US9374696B2 (en) 2011-12-05 2016-06-21 Telecommunication Systems, Inc. Automated proximate location association mechanism for wireless emergency services
RU2651244C2 (en) 2012-05-03 2018-04-18 Интердиджитал Пэйтент Холдингз Инк. Enhanced active scanning in wireless local area networks
JP5980027B2 (en) * 2012-07-18 2016-08-31 キヤノン株式会社 COMMUNICATION DEVICE, ITS CONTROL METHOD, PROGRAM
US9179490B2 (en) * 2012-11-29 2015-11-03 Intel Corporation Apparatus, system and method of disconnecting a wireless communication link
US9583828B2 (en) 2012-12-06 2017-02-28 Intel Corporation Apparatus, system and method of controlling one or more antennas of a mobile device
US9215075B1 (en) 2013-03-15 2015-12-15 Poltorak Technologies Llc System and method for secure relayed communications from an implantable medical device
US9241355B2 (en) 2013-09-30 2016-01-19 Sonos, Inc. Media system access via cellular network
US10827417B2 (en) * 2013-12-10 2020-11-03 Beijing Zhigu Rui Tuo Tech Co., Ltd. Wireless network access method and access apparatus
EP3085056A1 (en) * 2013-12-17 2016-10-26 Sony Corporation Method and apparatus for facilitating use of services available via wireless connection
US9451438B2 (en) * 2014-05-30 2016-09-20 Apple Inc. Predefined wireless pairing
US10055567B2 (en) 2014-05-30 2018-08-21 Apple Inc. Proximity unlock and lock operations for electronic devices
US9549375B2 (en) * 2014-05-30 2017-01-17 Apple Inc. Operating-mode transitions based on advertising information
US9661497B2 (en) * 2014-08-28 2017-05-23 Cisco Technology, Inc. Control and enhancement of direct wireless service communications
US10320616B2 (en) * 2015-12-15 2019-06-11 Wipro Limited Method and a system for sideband server management
CN105916110A (en) * 2016-04-15 2016-08-31 惠州Tcl移动通信有限公司 Mobile-terminal-based automatic exchange rate display method and system, and mobile terminal
CN110476459B (en) * 2017-03-24 2022-12-06 瑞典爱立信有限公司 QoS flow inactivity counter
JP7298481B2 (en) * 2018-01-10 2023-06-27 ソニーグループ株式会社 Information processing equipment, information processing system

Citations (67)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5606617A (en) * 1994-10-14 1997-02-25 Brands; Stefanus A. Secret-key certificates
US5668878A (en) * 1994-02-28 1997-09-16 Brands; Stefanus Alfonsus Secure cryptographic methods for electronic transfer of information
US5749081A (en) * 1995-04-06 1998-05-05 Firefly Network, Inc. System and method for recommending items to a user
US5914668A (en) * 1996-08-30 1999-06-22 Lucent Technologies Inc. Wireless terminal controlled mobility operational parameters
US5987099A (en) * 1992-10-16 1999-11-16 Northern Telecom Limited Low-power wireless system for telephone services
US6006200A (en) * 1998-05-22 1999-12-21 International Business Machines Corporation Method of providing an identifier for transactions
US6023241A (en) * 1998-11-13 2000-02-08 Intel Corporation Digital multimedia navigation player/recorder
US6041311A (en) * 1995-06-30 2000-03-21 Microsoft Corporation Method and apparatus for item recommendation using automated collaborative filtering
US6049777A (en) * 1995-06-30 2000-04-11 Microsoft Corporation Computer-implemented collaborative filtering based method for recommending an item to a user
US6052467A (en) * 1995-03-27 2000-04-18 Brands; Stefanus A. System for ensuring that the blinding of secret-key certificates is restricted, even if the issuing protocol is performed in parallel mode
US6065012A (en) * 1998-02-27 2000-05-16 Microsoft Corporation System and method for displaying and manipulating user-relevant data
US6064980A (en) * 1998-03-17 2000-05-16 Amazon.Com, Inc. System and methods for collaborative recommendations
US6092049A (en) * 1995-06-30 2000-07-18 Microsoft Corporation Method and apparatus for efficiently recommending items using automated collaborative filtering and feature-guided automated collaborative filtering
US6108493A (en) * 1996-10-08 2000-08-22 Regents Of The University Of Minnesota System, method, and article of manufacture for utilizing implicit ratings in collaborative filters
US6119101A (en) * 1996-01-17 2000-09-12 Personal Agents, Inc. Intelligent agents for electronic commerce
US6138159A (en) * 1998-06-11 2000-10-24 Phaal; Peter Load direction mechanism
US6138158A (en) * 1998-04-30 2000-10-24 Phone.Com, Inc. Method and system for pushing and pulling data using wideband and narrowband transport systems
US6167278A (en) * 1986-10-22 2000-12-26 Nilssen; Ole K. Combination cordless-cellular telephone system
US6182050B1 (en) * 1998-05-28 2001-01-30 Acceleration Software International Corporation Advertisements distributed on-line using target criteria screening with method for maintaining end user privacy
US6195712B1 (en) * 1997-06-13 2001-02-27 Intel Corporation Dynamic discovery of wireless peripherals
US6195651B1 (en) * 1998-11-19 2001-02-27 Andersen Consulting Properties Bv System, method and article of manufacture for a tuned user application experience
US6195657B1 (en) * 1996-09-26 2001-02-27 Imana, Inc. Software, method and apparatus for efficient categorization and recommendation of subjects according to multidimensional semantics
US6199099B1 (en) * 1999-03-05 2001-03-06 Ac Properties B.V. System, method and article of manufacture for a mobile communication network utilizing a distributed communication network
US6205472B1 (en) * 1998-09-18 2001-03-20 Tacit Knowledge System, Inc. Method and apparatus for querying a user knowledge profile
US6236768B1 (en) * 1997-10-14 2001-05-22 Massachusetts Institute Of Technology Method and apparatus for automated, context-dependent retrieval of information
US6243584B1 (en) * 1998-03-30 2001-06-05 Verizon Laboratories Inc. System and method for increasing CDMA capacity by frequency assignment
US6243581B1 (en) * 1998-12-11 2001-06-05 Nortel Networks Limited Method and system for seamless roaming between wireless communication networks with a mobile terminal
US6253203B1 (en) * 1998-10-02 2001-06-26 Ncr Corporation Privacy-enhanced database
US6253202B1 (en) * 1998-09-18 2001-06-26 Tacit Knowledge Systems, Inc. Method, system and apparatus for authorizing access by a first user to a knowledge profile of a second user responsive to an access request from the first user
US6263447B1 (en) * 1998-05-21 2001-07-17 Equifax Inc. System and method for authentication of network users
US6275824B1 (en) * 1998-10-02 2001-08-14 Ncr Corporation System and method for managing data privacy in a database management system
US6285879B1 (en) * 1996-07-26 2001-09-04 Siemens Aktiengesellschaft Process and system for automatic routing
US20010034223A1 (en) * 1998-10-22 2001-10-25 University Of Maryland, College Park. Method and system for providing location dependent and personal identification information to a public safety answering point
US6317781B1 (en) * 1998-04-08 2001-11-13 Geoworks Corporation Wireless communication device with markup language based man-machine interface
US6321257B1 (en) * 1996-09-16 2001-11-20 Nokia Telecommunications Oy Method and apparatus for accessing internet service in a mobile communication network
US6330448B1 (en) * 1998-04-16 2001-12-11 Nec Corporation Handover arrangement for mobile station moving across the boundary of wireless cell-site stations of adjacent PBXs
US20020015042A1 (en) * 2000-08-07 2002-02-07 Robotham John S. Visual content browsing using rasterized representations
US20020019882A1 (en) * 2000-08-09 2002-02-14 Satoshi Soejima Packet-data processing apparatus
US20020052873A1 (en) * 2000-07-21 2002-05-02 Joaquin Delgado System and method for obtaining user preferences and providing user recommendations for unseen physical and information goods and services
US20020082921A1 (en) * 2000-12-27 2002-06-27 Koninklijke Philips Electronics N.V. Credit system and method
US6414955B1 (en) * 1999-03-23 2002-07-02 Innovative Technology Licensing, Llc Distributed topology learning method and apparatus for wireless networks
US6421707B1 (en) * 1998-02-13 2002-07-16 Lucent Technologies Inc. Wireless multi-media messaging communications method and apparatus
US20020094778A1 (en) * 2001-01-18 2002-07-18 Cannon Joseph M. Bluetooth connection quality indicator
US6430395B2 (en) * 2000-04-07 2002-08-06 Commil Ltd. Wireless private branch exchange (WPBX) and communicating between mobile units and base stations
US6430413B1 (en) * 1995-05-31 2002-08-06 Siemens Aktiengesellschaft Mobile radio receiver for cellular radio telecommunications systems
US6438585B2 (en) * 1998-05-29 2002-08-20 Research In Motion Limited System and method for redirecting message attachments between a host system and a mobile data communication device
US6445921B1 (en) * 1999-12-20 2002-09-03 Koninklijke Philips Electronics N.V. Call re-establishment for a dual mode telephone
US20020158917A1 (en) * 1999-09-24 2002-10-31 Sinclair Matthew Frazer Wireless system for interacting with a virtual story space
US6477373B1 (en) * 1999-08-10 2002-11-05 Research Foundation Of State University Of New York Method and apparatus to maintain connectivity for mobile terminals in wireless and cellular communications systems
US6493550B1 (en) * 1998-11-20 2002-12-10 Ericsson Inc. System proximity detection by mobile stations
US20020193073A1 (en) * 2001-05-10 2002-12-19 Susumu Fujioka Method and system for managing wireless connection between slave terminals and master terminal
US20020198882A1 (en) * 2001-03-29 2002-12-26 Linden Gregory D. Content personalization based on actions performed during a current browsing session
US6510381B2 (en) * 2000-02-11 2003-01-21 Thomas L. Grounds Vehicle mounted device and a method for transmitting vehicle position data to a network-based server
US6515974B1 (en) * 1998-06-16 2003-02-04 Kabushiki Kaisha Toshiba Mobile computer communication scheme supporting moving among networks of different address systems
US6519453B1 (en) * 1998-07-01 2003-02-11 Canon Kabushiki Kaisha Communication apparatus
US20030036350A1 (en) * 2000-12-18 2003-02-20 Annika Jonsson Method and apparatus for selective service access
US6527641B1 (en) * 1999-09-24 2003-03-04 Nokia Corporation System for profiling mobile station activity in a predictive command wireless game system
US6539225B1 (en) * 1999-06-21 2003-03-25 Lucent Technologies Inc. Seamless data network telecommunication service during mobile wireless call handoff
US6542740B1 (en) * 2000-10-24 2003-04-01 Litepoint, Corp. System, method and article of manufacture for utilizing a wireless link in an interface roaming network framework
US6554707B1 (en) * 1999-09-24 2003-04-29 Nokia Corporation Interactive voice, wireless game system using predictive command input
US6580698B1 (en) * 1998-08-27 2003-06-17 Nec Corporation Path setting method in a mobile packet communication system
US20030119446A1 (en) * 2001-12-20 2003-06-26 Fano Andrew E. Determining the context of surroundings
US20030119494A1 (en) * 2001-12-20 2003-06-26 Seppo Alanara Wireless terminal having a scanner for issuing an alert when within the range of a target wireless terminal
US6604140B1 (en) * 1999-03-31 2003-08-05 International Business Machines Corporation Service framework for computing devices
US20030177113A1 (en) * 2002-03-15 2003-09-18 Masahiko Wakita Information searching system
US20030208595A1 (en) * 2001-04-27 2003-11-06 Gouge David Wayne Adaptable wireless proximity networking
US20060195551A1 (en) * 2000-10-27 2006-08-31 Dowling Eric M Federated multiprotocol communication

Family Cites Families (9)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5892946A (en) * 1995-09-12 1999-04-06 Alcatel Usa, Inc. System and method for multi-site distributed object management environment
EP0944176A1 (en) 1998-03-20 1999-09-22 Telefonaktiebolaget Lm Ericsson Dual mode communication device and method of operation
SE0000707D0 (en) * 1999-05-04 2000-03-01 Magnus Agervald System for transmitting data via multiple communication paths
NO316627B1 (en) * 2000-01-12 2004-03-15 Ericsson Telefon Ab L M Private cordless WAP system
JP3585422B2 (en) * 2000-06-01 2004-11-04 シャープ株式会社 Access point device and authentication processing method thereof
US6834192B1 (en) * 2000-07-03 2004-12-21 Nokia Corporation Method, and associated apparatus, for effectuating handover of communications in a bluetooth, or other, radio communication system
US6744753B2 (en) * 2001-11-01 2004-06-01 Nokia Corporation Local service handover
US20030115038A1 (en) 2001-12-18 2003-06-19 Roy Want Method and device for emulating electronic apparatus
JP4124710B2 (en) * 2002-10-17 2008-07-23 松下電器産業株式会社 Wireless communication system

Patent Citations (70)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US6167278A (en) * 1986-10-22 2000-12-26 Nilssen; Ole K. Combination cordless-cellular telephone system
US5987099A (en) * 1992-10-16 1999-11-16 Northern Telecom Limited Low-power wireless system for telephone services
US5668878A (en) * 1994-02-28 1997-09-16 Brands; Stefanus Alfonsus Secure cryptographic methods for electronic transfer of information
US5696827A (en) * 1994-02-28 1997-12-09 Brands; Stefanus Alfonsus Secure cryptographic methods for electronic transfer of information
US5606617A (en) * 1994-10-14 1997-02-25 Brands; Stefanus A. Secret-key certificates
US6052467A (en) * 1995-03-27 2000-04-18 Brands; Stefanus A. System for ensuring that the blinding of secret-key certificates is restricted, even if the issuing protocol is performed in parallel mode
US5749081A (en) * 1995-04-06 1998-05-05 Firefly Network, Inc. System and method for recommending items to a user
US6430413B1 (en) * 1995-05-31 2002-08-06 Siemens Aktiengesellschaft Mobile radio receiver for cellular radio telecommunications systems
US6049777A (en) * 1995-06-30 2000-04-11 Microsoft Corporation Computer-implemented collaborative filtering based method for recommending an item to a user
US6041311A (en) * 1995-06-30 2000-03-21 Microsoft Corporation Method and apparatus for item recommendation using automated collaborative filtering
US6092049A (en) * 1995-06-30 2000-07-18 Microsoft Corporation Method and apparatus for efficiently recommending items using automated collaborative filtering and feature-guided automated collaborative filtering
US6119101A (en) * 1996-01-17 2000-09-12 Personal Agents, Inc. Intelligent agents for electronic commerce
US6285879B1 (en) * 1996-07-26 2001-09-04 Siemens Aktiengesellschaft Process and system for automatic routing
US5914668A (en) * 1996-08-30 1999-06-22 Lucent Technologies Inc. Wireless terminal controlled mobility operational parameters
US6321257B1 (en) * 1996-09-16 2001-11-20 Nokia Telecommunications Oy Method and apparatus for accessing internet service in a mobile communication network
US6195657B1 (en) * 1996-09-26 2001-02-27 Imana, Inc. Software, method and apparatus for efficient categorization and recommendation of subjects according to multidimensional semantics
US6108493A (en) * 1996-10-08 2000-08-22 Regents Of The University Of Minnesota System, method, and article of manufacture for utilizing implicit ratings in collaborative filters
US6195712B1 (en) * 1997-06-13 2001-02-27 Intel Corporation Dynamic discovery of wireless peripherals
US6236768B1 (en) * 1997-10-14 2001-05-22 Massachusetts Institute Of Technology Method and apparatus for automated, context-dependent retrieval of information
US6421707B1 (en) * 1998-02-13 2002-07-16 Lucent Technologies Inc. Wireless multi-media messaging communications method and apparatus
US6065012A (en) * 1998-02-27 2000-05-16 Microsoft Corporation System and method for displaying and manipulating user-relevant data
US6064980A (en) * 1998-03-17 2000-05-16 Amazon.Com, Inc. System and methods for collaborative recommendations
US6243584B1 (en) * 1998-03-30 2001-06-05 Verizon Laboratories Inc. System and method for increasing CDMA capacity by frequency assignment
US6317781B1 (en) * 1998-04-08 2001-11-13 Geoworks Corporation Wireless communication device with markup language based man-machine interface
US6330448B1 (en) * 1998-04-16 2001-12-11 Nec Corporation Handover arrangement for mobile station moving across the boundary of wireless cell-site stations of adjacent PBXs
US6138158A (en) * 1998-04-30 2000-10-24 Phone.Com, Inc. Method and system for pushing and pulling data using wideband and narrowband transport systems
US6263447B1 (en) * 1998-05-21 2001-07-17 Equifax Inc. System and method for authentication of network users
US6006200A (en) * 1998-05-22 1999-12-21 International Business Machines Corporation Method of providing an identifier for transactions
US6182050B1 (en) * 1998-05-28 2001-01-30 Acceleration Software International Corporation Advertisements distributed on-line using target criteria screening with method for maintaining end user privacy
US6438585B2 (en) * 1998-05-29 2002-08-20 Research In Motion Limited System and method for redirecting message attachments between a host system and a mobile data communication device
US6138159A (en) * 1998-06-11 2000-10-24 Phaal; Peter Load direction mechanism
US6515974B1 (en) * 1998-06-16 2003-02-04 Kabushiki Kaisha Toshiba Mobile computer communication scheme supporting moving among networks of different address systems
US6519453B1 (en) * 1998-07-01 2003-02-11 Canon Kabushiki Kaisha Communication apparatus
US6580698B1 (en) * 1998-08-27 2003-06-17 Nec Corporation Path setting method in a mobile packet communication system
US6253202B1 (en) * 1998-09-18 2001-06-26 Tacit Knowledge Systems, Inc. Method, system and apparatus for authorizing access by a first user to a knowledge profile of a second user responsive to an access request from the first user
US6205472B1 (en) * 1998-09-18 2001-03-20 Tacit Knowledge System, Inc. Method and apparatus for querying a user knowledge profile
US6275824B1 (en) * 1998-10-02 2001-08-14 Ncr Corporation System and method for managing data privacy in a database management system
US6253203B1 (en) * 1998-10-02 2001-06-26 Ncr Corporation Privacy-enhanced database
US20010034223A1 (en) * 1998-10-22 2001-10-25 University Of Maryland, College Park. Method and system for providing location dependent and personal identification information to a public safety answering point
US6023241A (en) * 1998-11-13 2000-02-08 Intel Corporation Digital multimedia navigation player/recorder
US6195651B1 (en) * 1998-11-19 2001-02-27 Andersen Consulting Properties Bv System, method and article of manufacture for a tuned user application experience
US6493550B1 (en) * 1998-11-20 2002-12-10 Ericsson Inc. System proximity detection by mobile stations
US6243581B1 (en) * 1998-12-11 2001-06-05 Nortel Networks Limited Method and system for seamless roaming between wireless communication networks with a mobile terminal
US6199099B1 (en) * 1999-03-05 2001-03-06 Ac Properties B.V. System, method and article of manufacture for a mobile communication network utilizing a distributed communication network
US6414955B1 (en) * 1999-03-23 2002-07-02 Innovative Technology Licensing, Llc Distributed topology learning method and apparatus for wireless networks
US6604140B1 (en) * 1999-03-31 2003-08-05 International Business Machines Corporation Service framework for computing devices
US6539225B1 (en) * 1999-06-21 2003-03-25 Lucent Technologies Inc. Seamless data network telecommunication service during mobile wireless call handoff
US6477373B1 (en) * 1999-08-10 2002-11-05 Research Foundation Of State University Of New York Method and apparatus to maintain connectivity for mobile terminals in wireless and cellular communications systems
US20020158917A1 (en) * 1999-09-24 2002-10-31 Sinclair Matthew Frazer Wireless system for interacting with a virtual story space
US6527641B1 (en) * 1999-09-24 2003-03-04 Nokia Corporation System for profiling mobile station activity in a predictive command wireless game system
US20030171147A1 (en) * 1999-09-24 2003-09-11 Sinclair Matthew Frazer Interactive voice, wireless game system using predictive command input
US20020191017A1 (en) * 1999-09-24 2002-12-19 Sinclair Matthew Frazer Wireless system for interacting with a game service
US6554707B1 (en) * 1999-09-24 2003-04-29 Nokia Corporation Interactive voice, wireless game system using predictive command input
US6445921B1 (en) * 1999-12-20 2002-09-03 Koninklijke Philips Electronics N.V. Call re-establishment for a dual mode telephone
US6510381B2 (en) * 2000-02-11 2003-01-21 Thomas L. Grounds Vehicle mounted device and a method for transmitting vehicle position data to a network-based server
US6430395B2 (en) * 2000-04-07 2002-08-06 Commil Ltd. Wireless private branch exchange (WPBX) and communicating between mobile units and base stations
US20020052873A1 (en) * 2000-07-21 2002-05-02 Joaquin Delgado System and method for obtaining user preferences and providing user recommendations for unseen physical and information goods and services
US20020015042A1 (en) * 2000-08-07 2002-02-07 Robotham John S. Visual content browsing using rasterized representations
US20020019882A1 (en) * 2000-08-09 2002-02-14 Satoshi Soejima Packet-data processing apparatus
US6542740B1 (en) * 2000-10-24 2003-04-01 Litepoint, Corp. System, method and article of manufacture for utilizing a wireless link in an interface roaming network framework
US20060195551A1 (en) * 2000-10-27 2006-08-31 Dowling Eric M Federated multiprotocol communication
US20030036350A1 (en) * 2000-12-18 2003-02-20 Annika Jonsson Method and apparatus for selective service access
US20020082921A1 (en) * 2000-12-27 2002-06-27 Koninklijke Philips Electronics N.V. Credit system and method
US20020094778A1 (en) * 2001-01-18 2002-07-18 Cannon Joseph M. Bluetooth connection quality indicator
US20020198882A1 (en) * 2001-03-29 2002-12-26 Linden Gregory D. Content personalization based on actions performed during a current browsing session
US20030208595A1 (en) * 2001-04-27 2003-11-06 Gouge David Wayne Adaptable wireless proximity networking
US20020193073A1 (en) * 2001-05-10 2002-12-19 Susumu Fujioka Method and system for managing wireless connection between slave terminals and master terminal
US20030119494A1 (en) * 2001-12-20 2003-06-26 Seppo Alanara Wireless terminal having a scanner for issuing an alert when within the range of a target wireless terminal
US20030119446A1 (en) * 2001-12-20 2003-06-26 Fano Andrew E. Determining the context of surroundings
US20030177113A1 (en) * 2002-03-15 2003-09-18 Masahiko Wakita Information searching system

Cited By (142)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US8160588B2 (en) 2001-02-26 2012-04-17 Kineto Wireless, Inc. Method and apparatus for supporting the handover of a telecommunication session between a licensed wireless system and an unlicensed wireless system
US20030119480A1 (en) * 2001-02-26 2003-06-26 Jahangir Mohammed Apparatus and method for provisioning an unlicensed wireless communications base station for operation within a licensed wireless communications system
US20030119548A1 (en) * 2001-02-26 2003-06-26 Jahangir Mohammed Method for extending the coverage area of a licensed wireless communications system using an unlicensed wireless communications system
US7720481B2 (en) 2001-02-26 2010-05-18 Kineto Wireless, Inc. Apparatus for supporting the handover of a telecommunication session between a licensed wireless system and an unlicensed wireless system
US7890099B2 (en) 2001-02-26 2011-02-15 Kineto Wireless, Inc. Method for automatic and seamless call transfers between a licensed wireless system and an unlicensed wireless system
US7996009B2 (en) 2001-02-26 2011-08-09 Kineto Wireless, Inc. Method for authenticating access to an unlicensed wireless communications system using a licensed wireless communications system authentication process
US20030108017A1 (en) * 2001-12-10 2003-06-12 David Famolari Method and apparatus utilizing bluetooth protocols for the remote setting of IP network parameters
US7042866B2 (en) * 2001-12-10 2006-05-09 Telcordia Technologies, Inc. Method and apparatus utilizing bluetooth protocols for the remote setting of IP network parameters
US20030153304A1 (en) * 2001-12-28 2003-08-14 Sk Teletech Co., Ltd. File construction for mobile communication device including machine-language-code execution segment and file execution method using the same
US7310520B2 (en) * 2001-12-28 2007-12-18 Sk Teletech Co., Ltd. File construction for mobile communication device including machine-language-code execution segment and file execution method using the same
US20030147364A1 (en) * 2002-02-06 2003-08-07 Fujio Watanabe Using subnet relations to conserve power in a wireless communication device
US7236475B2 (en) * 2002-02-06 2007-06-26 Ntt Docomo, Inc. Using subnet relations to conserve power in a wireless communication device
US8526916B2 (en) 2002-02-13 2013-09-03 Nokia Corporation Method and system for multimedia tags
US7110382B2 (en) * 2002-03-01 2006-09-19 Microsoft Corporation Method to obtain friendly names for Bluetooth devices
US20030165129A1 (en) * 2002-03-01 2003-09-04 Microsoft Corporation Method to obtain friendly names for bluetooth devices
US20060282517A1 (en) * 2002-03-01 2006-12-14 Microsoft Corporation Method to obtain friendly names for bluetooth devices
US7602758B2 (en) 2002-03-01 2009-10-13 Microsoft Corporation Method to obtain friendly names for Bluetooth devices
US20050183024A1 (en) * 2002-03-19 2005-08-18 Henrik Andersson Architecture and method for integrating and presenting medical information
US20030220105A1 (en) * 2002-05-24 2003-11-27 Alcatel Method for localizing a mobile terminal in an area under radio coverage of a cellular communication network and of a localization point, corresponding mobile terminal, server and localization point
US7295846B2 (en) * 2002-05-24 2007-11-13 Alcatel Method for localizing a mobile terminal in an area under radio coverage of a cellular communication network and of a localization point, corresponding mobile terminal, server and localization point
US20050227677A1 (en) * 2002-06-12 2005-10-13 Nokia Corporation Downloadable profiles for mobile terminals
US8655329B2 (en) * 2002-06-12 2014-02-18 Nokia Corporation Downloadable profiles for mobile terminals
US20040203824A1 (en) * 2002-07-26 2004-10-14 Mock Von A. Method and mobile station for determining a communication channel for a communication session
US20040104938A1 (en) * 2002-09-09 2004-06-03 Saraswat Vijay Anand System and method for multi-modal browsing with integrated update feature
US7275217B2 (en) * 2002-09-09 2007-09-25 Vijay Anand Saraswat System and method for multi-modal browsing with integrated update feature
US9490857B2 (en) 2002-09-20 2016-11-08 Iii Holdings 1, Llc Systems and methods for parallel signal cancellation
US9544044B2 (en) 2002-09-20 2017-01-10 Iii Holdings 1, Llc Systems and methods for parallel signal cancellation
US9647708B2 (en) 2002-09-20 2017-05-09 Iii Holdings 1, Llc Advanced signal processors for interference cancellation in baseband receivers
US8090371B2 (en) 2002-10-18 2012-01-03 Kineto Wireless, Inc. Network controller messaging for release in an unlicensed wireless communication system
US7885644B2 (en) 2002-10-18 2011-02-08 Kineto Wireless, Inc. Method and system of providing landline equivalent location information over an integrated communication system
US8165585B2 (en) 2002-10-18 2012-04-24 Kineto Wireless, Inc. Handover messaging in an unlicensed mobile access telecommunications system
US7974624B2 (en) 2002-10-18 2011-07-05 Kineto Wireless, Inc. Registration messaging in an unlicensed mobile access telecommunications system
US7953423B2 (en) 2002-10-18 2011-05-31 Kineto Wireless, Inc. Messaging in an unlicensed mobile access telecommunications system
US7949326B2 (en) 2002-10-18 2011-05-24 Kineto Wireless, Inc. Apparatus and method for extending the coverage area of a licensed wireless communication system using an unlicensed wireless communication system
US7769385B2 (en) 2002-10-18 2010-08-03 Kineto Wireless, Inc. Mobile station messaging for registration in an unlicensed wireless communication system
US7684803B2 (en) 2002-10-18 2010-03-23 Kineto Wireless, Inc. Network controller messaging for ciphering in an unlicensed wireless communication system
US7668558B2 (en) 2002-10-18 2010-02-23 Kineto Wireless, Inc. Network controller messaging for paging in an unlicensed wireless communication system
US8130703B2 (en) 2002-10-18 2012-03-06 Kineto Wireless, Inc. Apparatus and messages for interworking between unlicensed access network and GPRS network for data services
US7773993B2 (en) 2002-10-18 2010-08-10 Kineto Wireless, Inc. Network controller messaging for channel activation in an unlicensed wireless communication system
US7873015B2 (en) 2002-10-18 2011-01-18 Kineto Wireless, Inc. Method and system for registering an unlicensed mobile access subscriber with a network controller
US7818007B2 (en) 2002-10-18 2010-10-19 Kineto Wireless, Inc. Mobile station messaging for ciphering in an unlicensed wireless communication system
US8537856B2 (en) 2002-12-27 2013-09-17 Intel Corporation Communication subsystem for wireless devices or the like
US20100054224A1 (en) * 2002-12-27 2010-03-04 Hayduk Matthew A Communication subsystem for wireless devices or the like
US20100091751A1 (en) * 2002-12-27 2010-04-15 Hayduk Matthew A Communication subsystem for wireless devices or the like
US8498311B2 (en) * 2002-12-27 2013-07-30 Intel Corporation Communication subsystem for wireless devices or the like
US7529214B2 (en) * 2003-02-26 2009-05-05 Ntt Docomo, Inc. Mobile node for transmitting a request for information which specifies a transfer device to be used
US20040165565A1 (en) * 2003-02-26 2004-08-26 Ntt Docomo, Inc Communication system, mobile terminal and transfer device
US7746834B1 (en) * 2003-03-17 2010-06-29 3Com Corporation Method of dynamically locating and connecting to a wireless device
US20090232048A1 (en) * 2003-06-25 2009-09-17 Lynch Jr Jamel P Computer Program Products for Connecting Ad Hoc Piconets to Wide Area Networks
US7406313B2 (en) * 2003-06-25 2008-07-29 International Business Machines Corporation Systems, methods and computer program products for connecting ad hoc piconets to wide area networks
US8023940B2 (en) 2003-06-25 2011-09-20 International Business Machines Corporation Connecting ad hoc piconets to wide area networks and/or grid computing networks
US20040266439A1 (en) * 2003-06-25 2004-12-30 Lynch Jamel P Systems, methods and computer program products for connecting ad hoc piconets to wide area networks
US8428594B2 (en) 2003-10-16 2013-04-23 Qualcomm Incorporated Methods and apparatus of improving inter-sector and/or inter cell handoffs in a multi-carrier wireless communications system
US7720479B2 (en) * 2003-10-16 2010-05-18 Qualcomm Incorporated Methods and apparatus of improving inter-sector and/or inter-cell handoffs in a multi-carrier wireless communications system
US20060052108A1 (en) * 2003-10-16 2006-03-09 Rajiv Laroia Methods and apparatus of improving inter-sector and/or inter-cell handoffs in a multi-carrier wireless communications system
US7929977B2 (en) 2003-10-17 2011-04-19 Kineto Wireless, Inc. Method and system for determining the location of an unlicensed mobile access subscriber
US8737351B2 (en) 2004-03-03 2014-05-27 The Trustees Of Columbia University In The City Of New York Methods and systems for reducing MAC layer handoff latency in wireless networks
US7636336B2 (en) 2004-03-03 2009-12-22 The Trustees Of Columbia University In The City Of New York Methods and systems for reducing MAC layer handoff latency in wireless networks
US20060062183A1 (en) * 2004-03-03 2006-03-23 Forte Andrea G Methods and systems for reducing MAC layer handoff latency in wireless networks
US20100135252A1 (en) * 2004-03-03 2010-06-03 The Trustees Of Columbia University In The City Of New York Methods and systems for reducing mac layer handoff latency in wireless networks
US7957348B1 (en) 2004-04-21 2011-06-07 Kineto Wireless, Inc. Method and system for signaling traffic and media types within a communications network switching system
US20050249142A1 (en) * 2004-05-07 2005-11-10 Yu-Chul Kim Method for receiving broadcast service using broadcast zone identifier in a mobile communication system
US8248991B2 (en) * 2004-05-07 2012-08-21 Samsung Electronics Co., Ltd. Method for receiving broadcast service using broadcast zone identifier in a mobile communication system
US8041385B2 (en) 2004-05-14 2011-10-18 Kineto Wireless, Inc. Power management mechanism for unlicensed wireless communication systems
US20050288003A1 (en) * 2004-06-29 2005-12-29 Kabushiki Kaisha Toshiba Wireless communication system and communication terminal
US9648644B2 (en) 2004-08-24 2017-05-09 Comcast Cable Communications, Llc Determining a location of a device for calling via an access point
US10070466B2 (en) 2004-08-24 2018-09-04 Comcast Cable Communications, Llc Determining a location of a device for calling via an access point
US10517140B2 (en) 2004-08-24 2019-12-24 Comcast Cable Communications, Llc Determining a location of a device for calling via an access point
US11252779B2 (en) 2004-08-24 2022-02-15 Comcast Cable Communications, Llc Physical location management for voice over packet communication
US20110177784A1 (en) * 2004-08-31 2011-07-21 Research In Motion Limited Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US7660605B2 (en) * 2004-08-31 2010-02-09 Research In Motion Limited Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US20100167649A1 (en) * 2004-08-31 2010-07-01 Research In Motion Limited Method and system for the configuration of a mobile station basedband circuit for an acoustic accessory
US7917174B2 (en) 2004-08-31 2011-03-29 Research In Motion Limited Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US20060046651A1 (en) * 2004-08-31 2006-03-02 Research In Motion Ltd. Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US8326360B2 (en) 2004-08-31 2012-12-04 Research In Motion Limited Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US8750930B2 (en) 2004-08-31 2014-06-10 Blackberry Limited Method and system for the configuration of a mobile station baseband circuit for an acoustic accessory
US7933598B1 (en) 2005-03-14 2011-04-26 Kineto Wireless, Inc. Methods and apparatuses for effecting handover in integrated wireless systems
US7756546B1 (en) 2005-03-30 2010-07-13 Kineto Wireless, Inc. Methods and apparatuses to indicate fixed terminal capabilities
US20060262760A1 (en) * 2005-05-19 2006-11-23 Byung-Jun Bae DMB/mobile communication network linkage platform for interactive service, DMB/mobile communication network integrated receiving terminal using the same and method thereof
US8014381B2 (en) * 2005-06-02 2011-09-06 Sharp Kabushiki Kaisha Communication system and communication terminal
US20090310509A1 (en) * 2005-06-02 2009-12-17 Hisao Kumai Communication system and communication terminal
US7843900B2 (en) 2005-08-10 2010-11-30 Kineto Wireless, Inc. Mechanisms to extend UMA or GAN to inter-work with UMTS core network
US8045493B2 (en) 2005-08-10 2011-10-25 Kineto Wireless, Inc. Mechanisms to extend UMA or GAN to inter-work with UMTS core network
US7904084B2 (en) 2005-08-26 2011-03-08 Kineto Wireless, Inc. Intelligent access point scanning with self-learning capability
US20090052401A1 (en) * 2006-02-06 2009-02-26 Nec Corporation Mobile communication system, base station controller, mobile device, handover control method, and program
US20070197164A1 (en) * 2006-02-23 2007-08-23 Arnold Sheynman Method and device for automatic bluetooth pairing
US8577368B2 (en) * 2006-03-13 2013-11-05 Nokia Corporation Method for the transfer of information during handovers in a communication system
US20070211694A1 (en) * 2006-03-13 2007-09-13 Nokia Corporation Method for the transfer of information during handovers in a communication system
US8165086B2 (en) 2006-04-18 2012-04-24 Kineto Wireless, Inc. Method of providing improved integrated communication system data service
US7852817B2 (en) 2006-07-14 2010-12-14 Kineto Wireless, Inc. Generic access to the Iu interface
US7912004B2 (en) 2006-07-14 2011-03-22 Kineto Wireless, Inc. Generic access to the Iu interface
US8005076B2 (en) 2006-07-14 2011-08-23 Kineto Wireless, Inc. Method and apparatus for activating transport channels in a packet switched communication system
US8073428B2 (en) 2006-09-22 2011-12-06 Kineto Wireless, Inc. Method and apparatus for securing communication between an access point and a network controller
US8150397B2 (en) 2006-09-22 2012-04-03 Kineto Wireless, Inc. Method and apparatus for establishing transport channels for a femtocell
US8036664B2 (en) 2006-09-22 2011-10-11 Kineto Wireless, Inc. Method and apparatus for determining rove-out
US8204502B2 (en) 2006-09-22 2012-06-19 Kineto Wireless, Inc. Method and apparatus for user equipment registration
US7995994B2 (en) 2006-09-22 2011-08-09 Kineto Wireless, Inc. Method and apparatus for preventing theft of service in a communication system
US20080082555A1 (en) * 2006-10-02 2008-04-03 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US20080082586A1 (en) * 2006-10-02 2008-04-03 Salesforce.Com, Inc Method and system for selecting amongst a plurality of processes to send a message
US10691667B2 (en) 2006-10-02 2020-06-23 Salesforce.Com, Inc. Method and system for selecting amongst a plurality of processes to send a message
US9854039B2 (en) 2006-10-02 2017-12-26 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US8255374B2 (en) * 2006-10-02 2012-08-28 Salesforce.Com, Inc. Method and system for selecting amongst a plurality of processes to send a message
US8204855B2 (en) 2006-10-02 2012-06-19 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US20110004668A1 (en) * 2006-10-02 2011-01-06 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US7827138B2 (en) * 2006-10-02 2010-11-02 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
US8762329B2 (en) 2006-10-02 2014-06-24 Salesforce.Com, Inc. Method and system for synchronizing a server and an on-demand database service
AU2007319632B2 (en) * 2006-11-10 2011-11-10 Motorola Solutions, Inc. IP layer-handoff using mobility domains and IP caching
WO2008060755A1 (en) * 2006-11-10 2008-05-22 Motorola, Inc. Ip layer-handoff using mobility domains and ip caching
US20080112362A1 (en) * 2006-11-10 2008-05-15 Motorola, Inc. Ip layer-handoff using mobility domains and ip caching
US8134969B2 (en) * 2006-11-10 2012-03-13 Motorola Solutions, Inc. IP layer-handoff using mobility domains and IP caching
US20080189776A1 (en) * 2007-02-01 2008-08-07 Credit Suisse Securities (Usa) Llc Method and System for Dynamically Controlling Access to a Network
US8019331B2 (en) 2007-02-26 2011-09-13 Kineto Wireless, Inc. Femtocell integration into the macro network
US8769008B1 (en) * 2007-12-07 2014-07-01 The New York Times Company Method and system for providing preference based content to a location aware mobile device
US9743230B2 (en) 2007-12-07 2017-08-22 The New York Times Company Method and system for providing preference based content to a location aware mobile device
US20090232047A1 (en) * 2008-03-14 2009-09-17 Lynch Jr Jamel P Systems for connecting ad hoc piconets to wide area networks
US8041335B2 (en) 2008-04-18 2011-10-18 Kineto Wireless, Inc. Method and apparatus for routing of emergency services for unauthorized user equipment in a home Node B system
US8370737B2 (en) * 2008-12-27 2013-02-05 Flash Networks, Ltd Method and system for inserting data in a web page that is transmitted to a handheld device
US20100169763A1 (en) * 2008-12-27 2010-07-01 Yoram Zahavi Method and system for inserting data in a web page that is transmitted to a handheld device
US8588776B1 (en) * 2009-01-15 2013-11-19 Sprint Communications Company L.P. User controlled base station selection
US11836194B2 (en) 2009-02-20 2023-12-05 Nikon Corporation Mobile information device, image pickup device, and information acquisition system
US20100257195A1 (en) * 2009-02-20 2010-10-07 Nikon Corporation Mobile information device, image pickup device, and information acquisition system
US10430471B2 (en) * 2009-02-20 2019-10-01 Nikon Corporation Mobile information device, image pickup device, and information acquisition system
US9078199B2 (en) * 2010-12-20 2015-07-07 Telefonaktiebolaget L M Ericsson (Publ) Methods and user equipments for granting a first user equipment access to a service
US20130281064A1 (en) * 2010-12-20 2013-10-24 Telefonaktiebolaget L M Ericsson (Publ) Methods and User Equipments for Granting a First User Equipment Access to a Service
US10757226B2 (en) 2011-10-14 2020-08-25 Zoll Medical Corporation Automated delivery of medical device support software
US11509705B2 (en) 2011-10-14 2022-11-22 Zoll Medical Corporation Automated delivery of medical device support software
US10230823B2 (en) 2011-10-14 2019-03-12 Zoll Medical Corporation Automated delivery of medical device support software
US20130132465A1 (en) * 2011-10-14 2013-05-23 Zoll Medical Corporation Automated delivery of medical device support software
US9531837B2 (en) * 2011-10-14 2016-12-27 Zoll Medical Corporation Automated delivery of medical device support software
US9380411B2 (en) * 2012-06-21 2016-06-28 Broadcom Corporation Proximity detection
US10075588B2 (en) 2015-10-15 2018-09-11 Microsoft Technology Licensing, Llc Managing communication events
US10477504B2 (en) 2016-09-26 2019-11-12 Uber Technologies, Inc. Network service over limited network connectivity
WO2018058129A1 (en) * 2016-09-26 2018-03-29 Uber Technologies, Inc. Network service over limited network connectivity
US10932217B2 (en) 2016-09-26 2021-02-23 Uber Technologies, Inc. Network service over limited network connectivity
US11601511B2 (en) 2016-09-26 2023-03-07 Uber Technologies, Inc. Service information and configuration user interface
US10572563B2 (en) * 2017-04-05 2020-02-25 Toyota Research Institute, Inc. Mobile computing systems and methods for accessing data
US20180293248A1 (en) * 2017-04-05 2018-10-11 Toyota Research Institute, Inc. Mobile computing systems and methods for accessing data
US11087287B2 (en) 2017-04-28 2021-08-10 Uber Technologies, Inc. System and method for generating event invitations to specified recipients
US11582328B2 (en) 2017-08-11 2023-02-14 Uber Technologies, Inc. Dynamic scheduling system for planned service requests
US11924308B2 (en) 2017-08-11 2024-03-05 Uber Technologies, Inc. Dynamic scheduling system for planned service requests
US11954754B2 (en) 2019-06-13 2024-04-09 Uber Technologies, Inc. Computing system configuring destination accelerators based on usage patterns of users of a transport service
US11956852B2 (en) 2022-02-11 2024-04-09 Comcast Cable Communications, Llc Physical location management for voice over packet communication

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JP3962019B2 (en) 2007-08-22
EP1440516A2 (en) 2004-07-28
WO2003039009A3 (en) 2004-05-27
ATE405060T1 (en) 2008-08-15
US6744753B2 (en) 2004-06-01
US20030112789A1 (en) 2003-06-19
DE60228298D1 (en) 2008-09-25
AU2002339590A1 (en) 2003-05-12
CN100376085C (en) 2008-03-19
CN1636329A (en) 2005-07-06
EP1440516A4 (en) 2007-04-11
JP2005507600A (en) 2005-03-17
US20070263578A1 (en) 2007-11-15

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