Architecture for web-based real-time communications (webrtc) to access internet protocol multimedia subsystem (ims)
Abstract
Embodiments for providing an architecture for WebRTC to access Internet Protocol (IP) multimedia subsystem (IMS) are generally described herein. In some embodiments, a non-IMS user equipment (UE) is provided along with an Application Signaling Interworking Function (ASIF) co-located with the non-IMS UE. The non-IMS UE is arranged to send a register message to the ASIF for registering the non-IMS UE with an IMS core. The ASIF is arranged to translate the register message from the non-IMS UE to IMS-based signaling and to register the non-IMS UE with the IMS core using the register message translated to IMS-based signaling.
Claims
exact text as granted — not AI-modified1 . (canceled)
2 . A system for a Web Real-Time Communication (WebRTC) client to access Internet Protocol (IP) multimedia subsystem (IMS), the system comprising:
a user equipment (UE) to expose a Gm interface to a Proxy-Call Session Control Function (P-CSCF) to access IMS.
3 . The system of claim 2 , wherein the UE is to access the P-CSCF to register with an IMS core.
4 . The system of claim 3 , wherein the UE is to send and receive Session Initiation Protocol (SIP) signaling packets through a SIP proxy function of the P-CSCF.
5 . A non-transitory machine-readable storage medium comprising instructions that, when executed on a user equipment (UE) provide Web Real-Time Communication (WebRTC) for the UE to access Internet Protocol (IP) multimedia subsystem (IMS), by:
sending, over a Gm interface to a Proxy-Call Session Control Function (P-CSCF), a register message to register the UE with an IMS core; and receiving a request successful message when an IMS registration procedure is successful.
6 . The non-transitory machine-readable storage medium of claim 5 further comprising instructions to cause the UE to:
send a session setup message requesting a session between the UE and the IMS core; and
receive a response to the session setup message from the IMS Core for establishing a session between the UE and the IMS core.
7 . The non-transitory machine-readable storage medium of claim 5 , wherein the UE is to register a public identity with the IMS core.
8 . The non-transitory machine-readable storage medium of claim 5 , wherein the Gm interface includes a reference point between the UE and the P-CSCF.
9 . The non-transitory machine-readable storage medium of claim 5 , wherein the instructions further cause the UE to:
send and receive Session Initiation Protocol (SIP) signaling packets through a SIP proxy function of the P-CSCF.
10 . The non-transitory machine-readable storage medium of claim 5 , wherein the Gm interface includes a reference point between the UE and the P-CSCF.
11 . The non-transitory machine-readable storage medium of claim 5 , wherein the instructions further cause the UE to register a public identity with the IMS core.
12 . The non-transitory machine-readable storage medium of claim 5 , wherein the UE is not configured for IMS and wherein the instructions further cause the UE to:
attach to an IMS UE configured for IMS; and register to the IMS core to establish an IMS session through the IMS UE instead of through the P-CSCF over the Gm interface.
13 . The non-transitory machine-readable storage medium of claim 5 , wherein the instructions further cause the UE to provide web-based signaling to the P-CSCF.
14 . The non-transitory machine-readable storage medium of claim 13 , wherein the web-based signaling is in accordance with hypertext transfer protocol (HTTP), and wherein the instructions further cause the UE to receive web-based signaling, converted from SIP signaling, from the P-CSCF.
15 . A user equipment (UE) including hardware processing circuitry to:
send, over a Gm interface to a Proxy-Call Session Control Function (P-CSCF), a register message to registering the UE with an IMS core.
16 . The UE of claim 15 , further comprising:
one or more antennas.
17 . The UE of claim 15 , wherein the hardware processing circuitry is further to:
send and receive Session Initiation Protocol (SIP) signaling packets through a SIP proxy function of the P-CSCF.
18 . The UE of claim 15 , wherein the Gm interface includes a reference point between the UE and the P-CSCF.
19 . The LIE of claim 15 , wherein the UE is not configured for IMS and wherein the hardware processing circuitry is further configured to attach to an IMS UE configured for MS and to register to the IMS core to establish an IMS session through the IMS UE instead of through the P-CSCF over the Gm interface.
20 . The UE of claim 15 , wherein the hardware processing circuitry is further to provide web-based signaling to the P-CSCF.
21 . The UE of claim 20 , wherein the web-based signaling is in accordance with hypertext transfer protocol (HTTP), and wherein the hardware processing circuitry is further configured to receive web-based signaling, converted from SIP signaling, from the P-CSCF.Join the waitlist — get patent alerts
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