The present invention relates generally to wireless voice and data communications, and more particularly, to a wireless system and method for providing data services to a wireless mobile in a hybrid network.
A method and system is described for providing data services to a wireless mobile in a hybrid network.
For the purposes of illustrating the method and system described in this disclosure, various acronyms are used, and the definitions of which are listed below:
The present disclosure provides several examples below, and it is understood that the examples are not necessarily limitations to the present disclosure, but are used to describe embodiments of the method and system of the present disclosure.
A typical wireless network is composed of two sub-networks: a Radio Access Network (RAN) which handles radio related issues such as assigning radio resources to a mobile terminal (or “mobile” in short) upon request for services, and a Core Network (CN) which links the mobile user to wireline networks. Current specification of wireless networks require that the RAN and CN have the same wireless technology in order to provide wireless services. These networks may be referred to as “homogeneous networks.” For instance, a GSM mobile will only operate in a wireless network which its RAN and CN are both GSM wireless technology based. A hybrid network refers to a wireless network with its CN and RAN using different technologies. For example, the RAN may be based on CDMA2000 standard, while the CN may be based on GSM technology. Detailed description of a Hybrid Network can be found in co-pending PCT patent application serial no. PCT/US02/35500 which was filed on Nov. 5, 2002 and entitled “Method and System for Providing Wireless Services in a Composite Wireless Network Comprising at Least One Access Network and One Core Network of Different Technologies.”, assigned to the same assignee and is hereby incorporated by reference.
In view of the need to provide data services in a hybrid network, the present invention illustrates a pioneering method and system for providing a wireless user data services in such a network.
The MT 108 in turn communicates with a Radio Access Network (RAN) 120 that also includes a 1x airlink 112, a MAC layer 114 and a LAC layer 116. In addition, the RAN 120 includes a PL layer 122 and a R-P layer 124.
The RAN 120 in turn communicates with a Serving General Packet Radio Service (GPRS) Serving Node (SGSN) 126. The SGSN 126 is a Hybrid SGSN that links the CDMA RAN to the GPRS Core Network. The SGSN 126 also includes a PL layer 122 and a R-P layer 124 as well as a L1 layer 127, a UDP/IP/L2 layer 130 and a GTP-U layer 132.
The SGSN 126 in turn communicates with a Gateway GPRS Serving/Support Node (GGSN) 140. The GGSN 140 also includes a L1 layer 127, a UDP/IP/L2 layer 130 and a GTP-U layer 132 as well as lower layers 136 and an IP layer 134.
The GGSN 140 in turn communicates with a Host 142 that includes lower layers 136 and an 1P layer 134. While the communications from the TE 100 through the MT 108 and the RAN 120 is based on 3GPP2 P.S0001v1.0, the remainder of the communication in this figure is based upon 3GPP TS 29.061 v. 4.0.0.
The Hybrid Atrium 804 then sends a Create PDP Context Request message 832 with QoS, APN and PCO information to the GGSN 806. The GGSN 806 then sends a Create PDP Context Response 834 with Cause=“Request Accepted” to the Hybrid Atrium 804. The Hybrid Atrium 804 then sends an A11-Registration Reply (Lifetime, Accept) message 836 to the BSC/PCF 802. The BSC/PCF 802 then sends an Assignment Complete message 838 to the Hybrid Atrium 804. A PPP connection 840 is then established between the Hybrid Atrium 804 and the MS 800 that allows User Data Transmission 842 between the two nodes 800 and 804.
Now turning to
A table is now shown below that details the mapping of the Update PDP Context Request GPRS message in the GPRS Core Network to the the A11 Registration Request CDMA message in the Radio Access Network.
While the invention has been particularly shown and described with reference to the preferred embodiment thereof, it will be understood by those skilled in the art that various changes in form and detail may be made therein without departing from the spirit and scope of the invention, as set forth in the following claims.
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/US03/09678 | 3/27/2003 | WO | 00 | 9/27/2004 |
Publishing Document | Publishing Date | Country | Kind |
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WO03/084251 | 10/9/2003 | WO | A |
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Entry |
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3GPP, Apr. 2004, ETSI TS 123 060 V3.3.0. |
The Point-to-Point Protocol (PPP), RFC 1661 IETF, Jul. 1994, p. ii. |
Number | Date | Country | |
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20050163069 A1 | Jul 2005 | US |
Number | Date | Country | |
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60368285 | Mar 2002 | US |