CA2271761C - Broadband telecommunications system - Google Patents

Broadband telecommunications system Download PDF

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Publication number
CA2271761C
CA2271761C CA002271761A CA2271761A CA2271761C CA 2271761 C CA2271761 C CA 2271761C CA 002271761 A CA002271761 A CA 002271761A CA 2271761 A CA2271761 A CA 2271761A CA 2271761 C CA2271761 C CA 2271761C
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Canada
Prior art keywords
signaling
message
narrowband
user communications
signaling message
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Expired - Fee Related
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CA002271761A
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French (fr)
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CA2271761A1 (en
Inventor
Joseph M. Christie (Deceased)
Michael Joseph Gardner
Albert Daniel Duree
William Lyle Wiley
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Sprint Communications Co LP
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Sprint Communications Co LP
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Classifications

    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/54Store-and-forward switching systems 
    • H04L12/56Packet switching systems
    • H04L12/5601Transfer mode dependent, e.g. ATM
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L49/00Packet switching elements
    • H04L49/30Peripheral units, e.g. input or output ports
    • H04L49/3081ATM peripheral units, e.g. policing, insertion or extraction
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/04Selecting arrangements for multiplex systems for time-division multiplexing
    • H04Q11/0428Integrated services digital network, i.e. systems for transmission of different types of digitised signals, e.g. speech, data, telecentral, television signals
    • H04Q11/0478Provisions for broadband connections
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/54Store-and-forward switching systems 
    • H04L12/56Packet switching systems
    • H04L12/5601Transfer mode dependent, e.g. ATM
    • H04L2012/5629Admission control
    • H04L2012/563Signalling, e.g. protocols, reference model
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04LTRANSMISSION OF DIGITAL INFORMATION, e.g. TELEGRAPHIC COMMUNICATION
    • H04L12/00Data switching networks
    • H04L12/54Store-and-forward switching systems 
    • H04L12/56Packet switching systems
    • H04L12/5601Transfer mode dependent, e.g. ATM
    • H04L2012/5638Services, e.g. multimedia, GOS, QOS
    • H04L2012/5663Support of N-ISDN

Abstract

A telecommunication system that can integrate the capabilities of broadband components with the capabilities of conventional circuit switches. A signalling processor (140) receives and processes a first telecommunications signalling message (160) for the call to provide control and signalling messages (162, 163, 164, 165, 166) that identify the selection and transfer the control messages to the ATM internetworking multiplexers (110, 112, 114) that accepted the access connection for the call. The multiplexers (110, 112, 114) convert user information from the access connection into ATM cells for transmission over the virtual connection in accord with the control messages (162-166). An ATM cross connect system (120) operationally connected to the multiplexers (110, 112, 114) routes the ATM cells based on the virtual connection identified in the ATM cells. The narrowband switch es (130, 132) provides the service to call based on the telecommunication signaling message.

Description

- .... _:.~_ .
BROADBAND TELECOMMUNICATIONS SYSTEM

BACKGROUND OF THE INVENTION
1. FIELD OF THE INVENTION
The invention relates to broadband systems, and in particular, to broadband systems that utilize narrowband circuit switches for various call capabilities.
2. BACKGROUND OF THE PRIOR ART
Conventional circuit switches provide the backbone for many current telecommunications networks. These switches process call signaling and extend the call connection towards the destination.
They have also been developed to include sophisticated capabilities. Examples include calier validation, number screening, routing, connection control, and billing. These switches are also used to deploy various services. Examples include calling cards, "800" calling, voice messaging, and class services.
At present, Asynchronous Transfer Mode (ATM) technology is being developed to provide broadband switching capability for telecommunications calls, which are requests for telecommunications services. Some ATM systems have used ATM cross-connects to provide virtual connections, but cross-connect devices do not have the capacity to process signaling used by telecommunications networks to set-up and tear down calls. Thus, ATM cross-connects cannot make connections on a call-by-call basis.
As a result, connections through cross-connect systems must be pre-provisioned which creates a relatively rigid switching fabric. Due to this limitation, ATM cross-connect systems have been used primarily to provide dedicated connections, such as permanent virtual circuits (PVCs) and permanent virtual paths (PVPs). But, they do not provide ATM switching on a call by call basis as required to provide switched virtual circuits (SVCs) or switched virtual paths (SVPs).
Those skilled in the art are well aware of the efficiencies created by using SVPs and SVCs as opposed to PVCs and PVPs because SVCs and SVPs utilize bandwidth more efficiently.
ATM switches have also been used to provide PVCs and PVPs. Because PVCs and PVPs are not established on a call-by-call basis, the ATM switch does not need to use its call processing or signaling capacity. ATM switches require both signaling capability and call processing capability to provide SVCs and SVPs. In order to achieve virtual connection switching on a call by call basis, ATM
switches are being developed that can process calls in response to signaling to provide virtual connections for each call. These systems cause problems, however, because they must be very sophisticated to support current networks. These ATM switches must process high volumes of calls and transition legacy services from existing networks. An example would be an ATM
switch that can handle large numbers of POTS, 800, and VPN calls.
Currently, ATM multiplexers are capable of interworking traffic of other formats into the ATM
format. These are known as ATM interworking multiplexers (muxes). ATM
multiplexers are being developed that can interwork traffic into ATM cells and multiplex the cells for transport over an ATM
network. These ATM mux are not used to implement virtual connections selected on a call-by-call basis.
Unfortunately, there is a need for efficient systems that can integrate the capabilities of broadband components with the capabilities of conventional circuit switches.
Such a system would - --- ;~_ provide ATM virtual connections on a call-by-call basis, but support the numerous services currently provided by circuit switches.

SUMMARY
The present invention includes a telecommunications system and method for providing a service for a call. The invention operates as follows. A signaling processor receives and processes a first telecommunications signaling message for the call to provide a first control message, a second control message, and a second telecommunications signaling message. A first ATM
interworking multiplexer receives narrowband traffic for the call over a first narrowband connection.
It converts the narrowband traffic from the first narrowband connection into ATM cells that identify a first virtual connection based on the first control message and transmits the ATM cells over the first virtual connection. An ATM
cross-connect system receives the ATM cells from the first ATM interworking multiplexer over the first virtual connection and routes the ATM cells from the first virtual connection based on the first virtual connection identified in the ATM cells. A second ATM interworking multiplexer receives the ATM cells from the ATM cross-connect system over the first virtual connection. It converts the ATM cells from the first virtual connection into the narrowband traffic and transmits the narrowband traffic over a second narrowband connection based on the second control message. A narrowband switch receives the narrowband traffic from the second ATM multiplexer over the second narrowband connection and provides a service to the call based on the second telecommunications signaling message. In various embodiments, the service provided by the narrowband switch is: routing the call, billing the call, validating the call, a calling card service, or a voice messaging service.
In various embodiments, the signaling processor selects the narrowband switch.
The selection can be based on: available access to the narrowband switch, loading on the narrowband switch, an area served by the narrowband switch, network maintenance conditions, or the first telecommunications signaling message (including a destination point code, an origination point code, an NPA, an NPA-NXX, a caller's number, an "800", "888", or "900" number, or a network identifier in the message).
In various embodiments, the signaling processor selects the first virtual connection based on:
the selected nan=owband switch, available access to the narrowband switch, loading on the narrowband switch, an area served by the narrowband switch, network maintenance conditions, or the first telecommunications signaling message (including a destination point code, an origination point code, an NPA, an NPA-NXX, a caller's number, an "800", "888", or "900" number, or a network identifier in the message).
In various embodiments, the nan:owband switch processes the call based on the second telecommunications signaling message. It provide a third telecommunications signaling message based on the call processing and routes the nan:owband traffic for the call to the second ATM multiplexer over a third narrowband connection. The signaling processor receives and processes the third telecommunications signaling message to provide a third control message to the second ATM
multiplexer, and to provide a fourth control message. The second ATM
interworking multiplexer receives the narrowband traffic for the call from the narrowband switch over the third narrowband connection. It converts the narrowband traffic from the third narrowband connection into ATM cells that identify a second virtual connection based on the third control message and transmits the ATM cells over the second narrowband connection. The ATM cross-connect system receives the ATM cells from the second ATM interworking multiplexer over the second virtual connection and routes the ATM cells from the second virtual connection based on the second virtual connection identified in the ATM cells. A third ATM interworking multiplexer receives the ATM cells from the ATM cross-connect system over the second virtual connection. It converts the ATM cells from the second virtual connection into the narrowband traffic and transmits the narrowband traffic over a fourth narrowband connection based on the fourth control message. In various of these embodiments, the signaling processor selects the second virtual connection based on a destination point code in the third telecommunications signaling message or based on a destination network identified in the third telecommunications signaling message.

BRIEF DESCRIPTION OF THE DRAWINGS
Figure 1 is a block diagram for a version of the invention.
Fig. 2 is a logic diagram for a version of the invention.
Fig. 3-is a block diagram for a version of the invention.
DETAILED DESCRIPTION
Fig. 1 depicts a version of the invention. The term "connection" refers to the transmission media used to carry user traffic and the tenn "link" refers to the transmission media used to carry signaling or control messages. On Fig. 1, connections are shown by solid lines and links are shown by dashed lines. Users 100 and 102 are connected to broadband system 104 by connections 150 and 151 respectively. Users 100 and 102 are linked to broadband system 104 by links 160 and 161 respectively.
Users 100 and 102 could be any entity that supplies telecommunications traffic to broadband system 104 or that receives traffic from broadband system 104. Some examples would be a telecommunications switch or customer premises equipment (CPE). Connections 150 and 151 represent any connection that might be used by users 100 and 102 to access broadband system 104. Examples include: DS3, DS1, DSO, ISDN, E3, El, E0, SDH, SONET, cellular, and PCS connections. Links 160 and 161 represent any signaling link that might be used between users 100 and 102 and broadband system 104. Examples include signaling system # 7 (SS7), C7, ISDN, TCP/IP, and UDP/IP.
Broadband system 104 includes ATM interworking multiplexer (mux) I 10, mux 112, mux 114, ATM cross-connect 120, narrowband switches 130 and 132, and signaling processor 140. Broadband system 104 also includes connections 152-156 and links 162-166. Cross-connect 120 is connected to mux 110, 112, and 114 by connections 152, 153, and 154 respectively. Mux 112 is connected to switch 132 by connection 155, and mux 114 is connected to switch 130 by connection 156. Mux 112 is connected to user 100 by connection 150, and mux 112 is connected to user 102 by connection 151.
Connections 152-154 are ATM connections -- preferably carried by SONET.
Connections 155 and 156 are narrowband connections similar to connections 150 and 151. Preferably, connections 155 and 156 are DS3 or DS I connections with embedded DSOs.
Signaling processor 140 is linked to mux 110 by link 162, to mux 112 by link 163, to switch 132 by link 164, to mux 114 by link 165, and to switch 130 by link 166.
Signaling processor is linked to users 100 and 102 by links 160 and 161 respectively. One skilled in the art is aware that an STP might be used to exchange signaling instead of direct links. Links 160, 161, 164, and 166 are conventional signaling links with examples being SS7, ISDN, or C7. Links 162, 163, and 165 are any links that carry control messages, with examples being SS7 links, UDP/IP over ethernet, or a bus arrangement using a conventional bus protocol. Typicaliy the switches and muxes are connected to a network management system that is not shown for purposes of clarity.
ATM cross-connect 120 is a conventional device that provides a plurality of ATM virtual connections between the muxes. Typically, the virtual connection would use DS
1, DS3, or SONET for transport. The virtual connections are typically designated by the Virtual Path IdentifierNirtual Channel Identifier (VPINCI) in the cell headers. These VPINCIs are provisioned from mux to mux, but the cross-connect does not need to be controlled on a call-by-call basis. An example of the cross-connect is the NEC model 20. Those skilled in the art are aware that a multiple cross-connects could be used in this fashion, but for purposes of clarity, only a single cross-connect is shown. Either a single cross-connect or multiple cross-connects are referred to as a cross-connect system.
Muxes 110, 112, and 114 are operational to interwork (convert) traffic between ATM and non-ATM formats in response to control messages from signaling processor 140.
Typically, this interworking entails interworking individual DSOs with individual VPINCIs in accord with messages from by signaling processor 140. A detailed description of the muxes is provided further below.
Narrowband switches 130 and 132 are conventional circuit switches. These switches process and interconnect calls. Typically, they connect an incoming DSO to an outgoing DSO. Often, they perform numerous tasks including, validation, screening, routing, billing, and echo control. These switches can also be configured to provide special services. Examples of special services are: calling cards, class services, voice activated calling, and voice messaging, virtual private networking, hearing impaired assistance/enhancement, operator services and intelligent network call routing (local number portability, personal/terminal mobility, toll free calling) Signaling processor 140 is operational to receive and process signaling to select a narrowband switch and connections to the selected switch. This switch selection can be based on various criteria.
A few examples are: available access to the switch, current loading on the switch, the service capabilities of the switch, or the area served by the switch. Typically, the connections would be a VPl/VCI and a DSO. Signaling processor 140 is capable of providing control messages to the muxes to implement the connections. Signaling processor 140 is also capable of exchanging signaling with the switches to facilitate call processing. If required signaling processor 140 can also exchange signaling with the users to facilitate the call. A detailed description of signaling processor 140 follows further below.
In one embodiment, the invention operates as follows for a call from user 100 to user 102. In this embodiment, signaling processor 140 is transparent to the users and to the narrowband switches.
The users and narrowband switches attempt to interact as they would in a typical network scenario. In the context of the invention, signaling is "intercepted" and processed by signaling processor 140.
Connections are "intercepted" and extended by the muxes.
User 100 will seize a call connection on connection 150 to mux 110. Typically, this is a DSO
embedded within a DS3. User 100 will also forward a call set-up message to signaling processor 140.
Typically, this is an SS7 Initial Address Message (IAM). Signaling processor 140 will process the IAM
in order to select a switch to process the call, it will select the connections to that switch. For example, if switch 130 is selected, an ATM connection pre-provisioned through cross-connect 154 from mux 110 to mux 114 over connections 152 and 154 would be selected. In addition, a connection to switch 130 would be selected within connection 156. For a standard call, a VPINCI and a DSO would be selected by signaling processor 140.
- = -. = Signaling processor 140 would send an IAM to switch 130 over link 166. The IAM would contain information used to process the call, such as the dialed number and the incoming DSO. Signaling processor would send a control message to mux 110 over link 162. The control message would instruct mux 110 to interwork the DSO on connection 150 with the selected VPINCI on connection 152.
Signaling processor would send a control message to mux 114 over link 165. The control message would instruct mux 114 to interwork the selected VPINCI on connection 154 with the selected DSO on connection 156. As a result, a call path from user 100 to switch 130 would be established through mux l 10, cross-connect 120, and mux 114.
Switch 130 would process the call and select a route for the call. The switch would interconnect the incoming DSO on connection 156 with another DSO on connection 156. Switch 130 would also send an IAM indicating the destination for the call. In this example, the destination selected by switch 130 would be user 102. The IAM from switch 130 would be routed to signaling processor 140. Signaling processor 140 could read the destination point code in this IAM to determine the destination (user 102) selected by the switch for the call. Signaling processor 140 would select a VPINCI from mux 114 to the mux serving the destination -- mux 112. Signaling processor 140 would also select a DSO within connection 151 between mux 112 and user 102.
Signaling processor 140 would send a control message to mux 114 over link 165.
The control message would instruct mux 114 to interwork the DSO on connection 156 with the selected VPINCI on connection 154. Signaling processor 140 would send a control message to mux 112 over link 163. The control message would instruct mux 112 to interwork the selected VPINCI on connection 153 with the selected DSO on connection 151. Signaling processor 140 might send a signaling message to user 102 to facilitate call completion.
As a result, a call path from switch 130 to user 102 would be established through mux 114, cross-connect 120, and mux 112. Combining the two call paths, a connection from user 100 to user 102 is established through broadband system 104. Advantageously, this is accomplished over broadband ATM connections, but without the need for an ATM switch or the call-by-call control of the ATM cross-connect. The muxes and the cross-connect provide ATM connections selected by the signaling processor on a call-by-call basis. The signaling processor makes these selections based on the call processing of the narrowband switch. The narrowband switch is also able to provide special features to the call.
Advantageously, only one narrowband switch was required within system 104.
Because ATM
broadband transport is available, the location of this switch is relatively independent. Any switch in system 104 could be used to process call. The ATM system provides the connection from the origination point to the switch, and from the switch to the destination point. This means narrowband switches can be selected based on load and availability. A narrowband switch could also be taken out of service simply by instructing the signaling processor to quit selecting it.

THE SIGNALING PROCESSOR
The signaling processor would typically be separate from the muxes, but those skilled in the art appreciate that they could be housed together and coupled in a bus arrangement instead of being coupled by a data or signaling link. The signaling processor may support a single mux or a plurality of muxes.
The signaling processor is comprised of hardware and software. Those skilled in the art are aware of various hardware components which can support the requirements of the invention. One example of - _ = - ;~_ '_-.:
such hardware is the FT-Sparc provided by Integrated Micro Products PLC. The FT-Sparc could use the Solaris operating system. Any data storage requirements could be met with conventional database software systems.
Fig. 2 illustrates an example of the signaling processor, but any processor which supports the requirements stated for the invention would suffice. As shown in Fig. 2, signaling processor 240 includes functional blocks composed of SS7 interface 242, mux interface 244, and connection processor 246. These functional blocks have interrelations that are indicated and that are discussed below. SS7 interface 242 receives and transmits SS7 signaling over link 261. Mux interface 244 exchanges control messages with the muxes over link 263. Connection processor 246 exchanges network management information with network management systems over link 263.
SS7 interface 242 is operational to receive and transmit SS7 messages. SS7 interface 242 includes Message Transfer Part (MTP) functionality for MTP levels 1, 2 and 3.
MTP I defines the physical and electrical requirements for a signaling link. MTP 2 sits on top of MTP I and maintains reliable transport over a signaling link by monitoring status and performing error checks. Together, MTP
1-2 provide reliable transport over an individual link. A device would need MTP 1-2 functionality for each link it uses. MTP 3 sits on top of MTP 2 and provides messages to the proper signaling link (actually to the MTP 2 for that link). MTP 3 directs messages to applications using MTP 1-2 for access to the signaling system. MTP 3 also has a management function which monitors the status of the signaling system and can take appropriate measures to restore service through the system. MTP levels 1-3 correspond to layers 1-3 of the open systems interconnection basic reference model (OSIBRF).
SS7 interface 242 also includes Integrated Services Digital Network User Part (ISUP) functionality. This might include ISUP timers that generate release message or re-transmit message where appropriate. If B-ISUP signaling is being used, SS7 interface 242 could also be equipped with B-ISUP capability. All of these elements are known in the art. SS7 interface 242 could be constructed using commercially available SS7 software interface tools. An example of such tools would be SS7 interface software provided by either Trillium, Inc., or by Dale, Gesek, McWilliams, and Sheridan, Inc.
SS7 interface 242 forwards IAM messages from link 261 to connection processor 246. SS7 interface 242 also receives IAMs from connection processor 246 and transmits them over link 261. SS7 interface 242 will receive subsequent SS7 call-related messages from link 261.
SS7 interface 242 will alter the routing labels of these subsequent messages and re-transmit them over link 261. Examples of these subsequent messages include Address Complete Messages (ACM), Answer Messages (ANM), Release Messages (REL), and Release Complete Messages (RLC).
The routing label contains a Destination Point Code (DPC), an Originating Point Code (OPC), a Circuit Identification Code (CIC), and a Signaling Link Selection (SLS) code. The OPC and DPC
identify the orgin and intended destination for the signaling message. For example, a message sent from point A to point B would have an OPC of A and a DPC of B. A return message would reverse the two and have an OPC of B and DPC of A. The CIC identifies the originating circuit used on the call. The SLS is used to allow load sharing among the signaling links.
The following discussion refers to Fig. 1 and its associated embodiment. When subsequent call related messages are received by the SS7 interface of signaling processor 140, the OPC, DPC, and/or CIC may need to be altered. A message from originating user 100 to selected switch 130 would have its DPC and CIC altered to reflect the new DPC and CIC selected for the call by signaling processor 140.
This is because switch 130 expects its own DPC and switch 130 also needs to know the actual DSO used by mux 114 on connection 156. A message to originating user 100 from switch 130 would have its OPC
altered to reflect the DPC in the original IAM from user 100. This is because user 100 expects response messages for the call from the point where the original IAM was sent. This point code is the DPC of the original IAM. The CIC is also altered to reflect the CIC in the original IAM
from user 100. This is because user 100 expects the DSO in the message to be the DSO used in connection 150. Messages between terminating user 102 and selected switch 130 would need the CICs altered to reflect the actual DSOs used by the recipient of the message. The CIC in messages from user 102 to switch 130 would reflect the DSO in connection 156. The CIC in messages from switch 130 to user 102 would reflect the DSO in connection 151.
Referring back to Fig. 2, connection processor 246 is operational to process incoming IAMs and select connections. On calls into the network, connection processor 246 selects a narrowband switch to process the call and also selects the connections to this narrowband switch.
These connections are typically VPINCI - DSO combinations. If the call is extended beyond the selected narrowband switch, connection processor 246 identifies the required call destination in the IAM
from the narrowband switch.
Connection processor 246 also selects the connections to this destination.
These connections are typically VPINCI -- DSO combinations.
As discussed above, the signaling processor can be transparent to the users.
As a result, the users will send signaling to the narrowband switch selected by the user. The destination of this SS7 signaling message is identified by the Destination Point Code (DPC). Thus, on calls entering the network, the DPC indicates a narrowband switch selected by the user.
Connection processor 246 typically uses this DPC to select a narrowband switch. This may be the same narrowband switch selected by the user or another narrowband switch. Connection processor 246 may then check the current usage of the selected switch. This might include the available trunk access to the switch and/or the processing load of the switch. If the access to the switch is congested or if the switch CPU is heavily loaded, then an alternate switch may be selected. In addition, special network operations may require the use of an alternate switch -- for example, if a switch is inactive for maintenance or testing.
Once the switch is selected, connections to the switch are selected. The DSO
in the inbound connection is identified by the Circuit identification Code (CIC) in the IAM.
A VPI/VCI is selected that has been previously provisioned through the cross-connect from the mux connected to the incoming DSO
to the mux serving the selected switch. A DSO is selected from the latter mux to the selected switch.
Based on the selections, IAM information is provided to SS7 interface 242, and control message information is provided to mux interface 244.
As discussed above, once the narrowband switch processes the call, it will send an IAM to the destination. Connection processor 246 will receive this IAM and use the DPC to identify the destination and select the appropriate connections to this destination. The CIC in the IAM
identifies the DSO from the selected switch to the mux. A VPINCI from that mux to a destination mux and a DSO from the destination mux to the destination are selected. The selections are then implemented by the muxes in response to control messages from signaling processor 240. Connection processor 246 also tracks the usage and status of connections and connection groups for the connections under its span of control. It also receives network management information.
In some embodiments, connection processor 246 uses at least portions of the dialed number to select the narrowband switch. For example, narrowband switch "A" might be assigned to area code "X".
On calls to area code "X", switch "A" is selected. If switch "A" is unavailable, altemate switch "B"
could be used. This could also be carried out using the area code and exchange (NPA-NXX). In some embodiments, the dialed number may correspond to a special service offered by a select group of switches. For example, the number "1-800-NXX-XXXX" might correspond to a calling card service offered from only two switches. "888" and "900" numbers are also used in this fashion. Connection processor 246 could select one of these switches based on the dialed number.
In some embodiments, the caller's number (commonly referred to as ANI), may be used in a similar fashion in order to select the switch to provide services to a caller. In some embodiments, the call could be routed to a switch based on the carrier identified in the signaling. This information is found in the carrier identification parameter in the IAM.
Mux interface 244 accepts information from connection processor 246 indicating the connections that are to be made or disconnected. Mux interface 244 accepts this information and provides corresponding control messages to the appropriate muxes. Mux interface 244 may also receive acknowledgments from the muxes. As a result, signaling processor 240 can provide ATM header information to the muxes for use in configuring the headers of ATM cells so that the cells are routed to the desired destination.

Fig. 3 shows one embodiment of the mux that is suitable for the present invention, but other muxes that support the requirements of the invention are also applicable.
Shown are control interface 300, OC-3 interface 305, DS3 interface 310, DS 1 interface 315, DSO interface 320, ATM adaption Layer (AAL) 330, and OC-3 interface 335. Control interface 300 exchanges control messages with the signaling processor. Typically, these messages include DSO -- VPINCI
interworking assignments that are to be implemented by AAL 330. As such, this information is provided to AAL
3,30.
OC-3 interface 305 accepts the OC-3 format and makes the conversion to DS3.
DS3 interface 310 accepts the DS3 format and makes the conversion to DSI. DS3. interface 310 can accept DS3s from OC-3 interface 305 or from an extemal connection. DSI interface 315 accepts the DSI format and makes the conversion to DSO. DS 1 interface 315 can accept DS 1 s from DS3 interface 310 or from an external connection. DSO interface 320 accepts the DSO format and provides an interface to AAL 330.
OC-3 interface 335 is operational to accept ATM cells from AAL 330.and transmit them to the cross-connect.
AAL 330 comprises both a convergence sublayer and a segmentation and reassembly (SAR) layer. AAL 330 is operational to accept the user infomzation in DSO format from DSO interface 320 and convert the information intg ATM cells. AALs are known in the art and information about AALs is provided by International Teleconununications Union (ITU) document 1.363. An AAL for voice is also described in U.S. Patent 5,606,553 entitled "Cell Processing for Voice Transmission". AAL 330 obtains the virtual path identifier (VPI) and virtual channel identifier (VCI) for each call from control interface 300. AAL 330 also obtains the identity of the DSO for each call (or the DSOs for an Nx64 call). AAL 330 then converts user information between the identified DSO
and the identified ATM

WO 98/23065 PC1'/US97/20697 virtual connection. Acknowledgments that the assignments have been iniplemented may be sent back to the signaiing processor if desired. Calls with a bit rate that are a multiple of 64 kbit/second are known as Nx64 calls. If desired, AAL 330 can be capable of accepting control messages through control interface 300 for Nx64 calls.
As discussed above, the mux also handles calls in the opposite direction --from OC-3 interface 335 to DSO interface 320. This traffic would have been converted to ATM by another mux and routed to OC-3 335 by the cross-connect over the selected VPINCI. Control interface 300 will provide AAL
330 with the assignment of the selected VPI/VCI to the selected outbound DSO.
The mux will convert the ATM cells with the selected VPINCI in the cell headers into the DSO
fotznat and provide it to the selected outbound DSO connection. A technique for processing VPI/VCIs is disclosed in U.S. Patent 5,940,393, entitled "Telecommunications System with a Connection Processing System".
DSO connections are bi-directional and ATM connections are typically,uni-directional. As a result, two virtual connections in opposing directions will typically be required for each DSO. As discussed, this can be accomplished provisioning the cross-connect with companion VPINCIs in the opposite direction as the original VPINCIs. On each call, the muxes would be configured to automatically invoke the particular companion VPINCI to provide a bi-directional virtual connection to match the bi-directional DSO on the call.
With an understanding of the preferred embodiment, those skilled in the art will appreciate that the present invention allows the integration of high speed broadband transport with systems configured for narrowband process and control. By performing call handling functions in narrowband switches, the broadband transport capability is transparent to the users and to other existing network components configured to interact with narrowband switches. Moreover, the broadband transport is accomplished economically and efficiently without the need for broadband switches.
Those skilled in the art will appreciate that variations from the specific embodiments disclosed above are contemplated by the invention. The invention should not be restricted to the above embodiments, but should be measured by the following claims.

Claims (16)

CLAIMS:
1. A method for operating a telecommunications network to handle a call comprised of a first signaling message and narrowband user communications, the method characterized by:
receiving the first signaling message into a signaling processing system;
in the signaling processing system, processing the first signaling message to select a virtual identifier and a connection;
generating and transmitting a first control message from the signaling processing system identifying the virtual identifier;
generating and transmitting a second control message from the signaling processing system identifying the connection;
generating and transmitting a second signaling message from the signaling processing system identifying the connection;
receiving the first control message and the narrowband user communications into a first interworking multiplexer;
in the first interworking multiplexer, converting the narrowband user communications into asynchronous user communications with the virtual identifier and transmitting the asynchronous user communications based on the first control message;
receiving the second control message and the asynchronous user communications into a second interworking multiplexer;
in the second interworking multiplexer, converting the asynchronous user communications into the narrowband user communications and transmitting the narrowband user communications over the connection based on the second control message;
receiving the narrowband user communications from the connection and the second signaling message into a narrowband switch;
in the narrowband switch, processing the narrowband user communications based on the second signaling message;
generating and transmitting a third signaling message from the narrowband switch and transmitting the narrowband user communications from the narrowband switch;
receiving the third signaling message into the signaling processing system;
in the signaling processing system, processing the third signaling message to select another virtual identifier;
generating and transmitting a third control message from the signaling processing system identifying said another virtual identifier;

receiving the third control message and the narrowband user communications into the second interworking multiplexer; and in the second interworking multiplexer, converting the narrowband user communications into other asynchronous user communications with said another virtual identifier and transmitting the other asynchronous user communications based on the third control message.
2. The method of claim 1 wherein processing the third signaling message to select said another virtual identifier comprises processing a destination point code in the third signaling message.
3. The method of claim 1 wherein processing the first signaling message to select the virtual identifier comprises processing a destination point code in the first signaling message.
4. The method of claim 1 wherein processing the first signaling message to select the virtual identifier comprises selecting the virtual identifier based on access and loading information for the narrowband switch.
5. The method of claim 1 wherein the first signaling message and the second signaling message are initial address messages.
6. A telecommunications system for handling a call comprised of a first signaling message and narrowband user communications, the communications system characterized by:
a signaling processing system configured to receive the first signaling message, process the first signaling message to select a virtual identifier and a connection, generate and transmit a first control message identifying the virtual identifier, generate and transmit a second control message identifying the connection, and generate and transmit a second signaling message identifying the connection;
a first interworking multiplexer configured to receive the first control message and the narrowband user communications, convert the narrowband user communications into asynchronous user communications with the virtual identifier based on the first control message, and transmit the asynchronous user communications;

a second interworking multiplexer configured to receive the second control message and the asynchronous user communications, convert the asynchronous user communications into the narrowband user communications, and transmit the narrowband user communications over the connection based on the second control message;
a narrowband switch configured to receive the second signaling message and the narrowband user communications from the connection, and process the narrowband user communications based on the second signaling message;
wherein the narrowband switch is configured to generate and transmit a third signaling message and transmit the narrowband user communications;
wherein the signaling processing system is configured to receive the third signaling message, process the third signaling message to select another virtual identifier, and generate and transmit a third control message identifying said another virtual identifier; and wherein the second interworking multiplexer is configured to receive the third control message and the narrowband user communications, convert the narrowband user communications into other asynchronous user communications with said another virtual identifier based on the third control message, and transmit the other asynchronous user communications.
7. The telecommunications system of claim 6wherein the signaling processing system is configured to process a destination point code in the third signaling message to select said another virtual identifier.
8. The telecommunications system of claim 6 wherein the signaling processing system is configured to process a destination point code in the first signaling message to select the virtual identifier.
9. The telecommunications system of claim 6 wherein the signaling processing system is configured to process access and loading information for the narrowband switch to select the virtual identifier.
10. The telecommunications system of claim 6 wherein the first signaling message and the second signaling message are initial address messages.
11. A telecommunications signaling processing system comprising:
a first interface means for receiving a first signaling message and transmitting a second signaling message;
a second interface means for transmitting a first control message and a second control message; and a processing means for processing the first signaling message to select a virtual identifier and a connection to a narrowband switch, for generating the first control message identifying the virtual identifier, for generating the second control message identifying the connection, and for generating the second signaling message identifying the connection.
12. The signaling processing system of claim 11 wherein:
the first interface means is for receiving a third signaling message;
the second interface means is for transmitting a third control message; and the processing means is for processing the third signaling message to select another virtual identifier and for generating the third control message identifying the other virtual identifier.
13. The signaling processing system of claim 12 wherein the processing means is further for processing a destination point code in the third signaling message to select the other virtual identifier.
14. The signaling processing system of claim 11 wherein the processing means is further for processing a destination point code in the first signaling message to select the virtual identifier.
15. The signaling processing system of claim 11 wherein the processing means is further for processing access and loading information for the narrowband switch to select the virtual identifier.
16. The signaling processing system of claim 11 wherein the first signaling message and the second signaling message are initial address messages.
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Families Citing this family (23)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US5926482A (en) 1994-05-05 1999-07-20 Sprint Communications Co. L.P. Telecommunications apparatus, system, and method with an enhanced signal transfer point
US6181703B1 (en) * 1995-09-08 2001-01-30 Sprint Communications Company L. P. System for managing telecommunications
US5991301A (en) 1994-05-05 1999-11-23 Sprint Communications Co. L.P. Broadband telecommunications system
US20100208634A1 (en) 1994-10-11 2010-08-19 Arbinet Corporation System and Method For Managing Multimedia Communications Across Convergent Networks
GB2305812B (en) * 1995-09-29 1999-09-29 Northern Telecom Ltd Providing services in a telecommunications network
CA2268819A1 (en) * 1996-10-15 1998-04-23 Siemens Aktiengesellschaft Method of handling service connections in a communication network
US6115380A (en) 1996-11-22 2000-09-05 Sprint Communications Co., L.P. Broadband telecommunications system
EP0859527A1 (en) * 1997-02-17 1998-08-19 Siemens Aktiengesellschaft Node supporting links having the ability to transfer longer messages than according to current MTP level 2
US6697868B2 (en) * 2000-02-28 2004-02-24 Alacritech, Inc. Protocol processing stack for use with intelligent network interface device
US6157614A (en) * 1997-10-22 2000-12-05 Netro Corporation Wireless ATM network with high quality of service scheduling
US6470019B1 (en) 1998-02-20 2002-10-22 Sprint Communications Company L.P. System and method for treating a call for call processing
US6483837B1 (en) * 1998-02-20 2002-11-19 Sprint Communications Company L.P. System and method for connecting a call with an interworking system
US6546022B1 (en) 1998-04-03 2003-04-08 Sprint Communications Company, L.P. Method, system and apparatus for processing information in a telecommunications system
CA2255383A1 (en) * 1998-12-04 2000-06-04 Newbridge Networks Corporation Conversion of a permanent connection into a signalled permanent connection and vice versa
US6496512B1 (en) 1998-12-22 2002-12-17 Sprint Communications Company L.P. System and method for connecting calls with a time division multiplex matrix
US6993048B1 (en) * 2000-07-31 2006-01-31 Cisco Technology, Inc. ATM permanent virtual circuit and layer 3 auto-configuration for digital subscriber line customer premises equipment
US7212518B2 (en) * 1999-07-14 2007-05-01 Ericsson Inc. Combining narrowband applications with broadband transport
US6931010B2 (en) 2000-01-20 2005-08-16 Mci, Inc. Intelligent network and method for providing voice telephony over ATM and private address translation
US7106743B1 (en) 2000-10-18 2006-09-12 West Corporation Telecommunications system including live operators
EP1383353B1 (en) * 2002-07-05 2005-04-13 Alcatel Resource admission control in an access network
CN1333557C (en) * 2003-12-30 2007-08-22 华为技术有限公司 A method for implementing call control
US7778984B2 (en) * 2004-11-19 2010-08-17 Microsoft Corporation System and method for a distributed object store
US7236582B2 (en) * 2004-11-20 2007-06-26 Alcatel Lucent System and method for transparent consolidation of switches in a telecommunications network

Family Cites Families (208)

* Cited by examiner, † Cited by third party
Publication number Priority date Publication date Assignee Title
US4201889A (en) * 1978-03-17 1980-05-06 International Telephone And Telegraph Distributed control digital switching system
US4310727A (en) * 1980-02-04 1982-01-12 Bell Telephone Laboratories, Incorporated Method of processing special service telephone calls
US4348554A (en) * 1980-03-21 1982-09-07 Bell Telephone Laboratories, Incorporated Method of providing virtual private network telephone service
JPS57159192A (en) * 1981-03-27 1982-10-01 Hitachi Ltd Audio packet exchange system
DE3210439A1 (en) * 1982-03-22 1983-09-22 Siemens AG, 1000 Berlin und 8000 München METHOD AND CIRCUIT ARRANGEMENT FOR TRANSMITTING MESSAGE SIGNALS BETWEEN DIFFERENT TRANSMISSION PROCESSES WORKING CENTERS OF A FIRST SWITCHING NETWORK AND A SECOND SWITCHING NETWORK
US4565903A (en) * 1983-08-03 1986-01-21 At&T Bell Laboratories Telephone interexchange carrier selection
US4554659A (en) * 1983-12-12 1985-11-19 At&T Bell Laboratories Data communication network
JPS60169318A (en) 1984-02-14 1985-09-02 Nissan Motor Co Ltd Air conditioner for vehicle
US4683563A (en) * 1984-10-11 1987-07-28 American Telephone And Telegraph Company, At&T Bell Laboratories Data communication network
US4686701A (en) * 1985-02-07 1987-08-11 American Telephone And Telegraph Company, At&T Bell Laboratories Processing sequence calls in a distributed control switching system
US4686669A (en) * 1985-02-07 1987-08-11 American Telephone And Telegraph Company, At&T Bell Laboratories Path hunting in a distributed control switching system
US4683584A (en) * 1985-02-07 1987-07-28 American Telephone And Telegraph Company, At&T Bell Laboratories Directory number translation in a distributed control switching system
GB8526620D0 (en) 1985-10-29 1985-12-04 British Telecomm Communications network
US4763317A (en) 1985-12-13 1988-08-09 American Telephone And Telegraph Company, At&T Bell Laboratories Digital communication network architecture for providing universal information services
US4730312A (en) * 1986-02-21 1988-03-08 San/Bar Corporation Voice, data or both over one telephone line in a T-1 carrier system
US4736364A (en) * 1986-03-12 1988-04-05 American Telephone And Telegraph Company, At&T Bell Laboratories Switching system control arrangements
US4720850A (en) 1986-03-14 1988-01-19 American Telephone And Telegraph Company At&T Bell Laboratories Communication system control arrangement
US4748658A (en) * 1986-07-16 1988-05-31 Bell Communications Research, Inc. Architecture for allocating resources in a telecommunications network
BE1000512A7 (en) * 1987-05-07 1989-01-10 Bell Telephone Mfg Switching network.
US4985849A (en) * 1987-06-12 1991-01-15 Canon Kabushiki Kaisha Image processing system for forming a slantwise-mapped or rotated modified image of an original image
US4823338B1 (en) * 1987-08-03 1998-11-10 At & T Information Systems Inc Virtual local area network
DE3742939A1 (en) * 1987-12-18 1989-07-06 Standard Elektrik Lorenz Ag METHOD FOR HYBRID PACKING AND DEVICES THEREFOR
US4896319A (en) * 1988-03-31 1990-01-23 American Telephone And Telegraph Company, At&T Bell Laboratories Identification and authentication of end user systems for packet communications network services
US4853955A (en) * 1988-04-27 1989-08-01 Network Access Corporation Apparatus and method for providing existing telephone switching equipment with the capability of using the SS7 protocol
US5058104A (en) * 1988-07-26 1991-10-15 Nec Corporation Tdm demultiplexer with dedicated maintenance channels to indicate high-speed line faults to low speed circuits
US4991169A (en) * 1988-08-02 1991-02-05 International Business Machines Corporation Real-time digital signal processing relative to multiple digital communication channels
US5089954A (en) * 1988-08-08 1992-02-18 Bell Communications Research, Inc. Method for handling conversational transactions in a distributed processing environment
US5101404A (en) * 1988-08-26 1992-03-31 Hitachi, Ltd. Signalling apparatus for use in an ATM switching system
EP0363499B1 (en) 1988-09-23 1993-11-18 Siemens Aktiengesellschaft Method and circuit arrangement for the transmission of voice signals in a broadband communication network
EP0437422B1 (en) * 1988-09-30 1993-11-18 Siemens Aktiengesellschaft Communication system for forming virtual annular networks in a fast packet switching network
US5258752A (en) * 1988-11-25 1993-11-02 Sumitomo Electric Industries, Ltd. Broad band digital exchange
CA2002613C (en) * 1988-12-05 1996-02-27 Hisao Yamamoto Adaptive routing control method
DE3912660C1 (en) * 1989-04-18 1990-08-30 Wandel & Goltermann Gmbh & Co, 7412 Eningen, De
AU618897B2 (en) 1989-05-17 1992-01-09 Telstra Corporation Limited A telecommunications system and routing method
US5018191A (en) * 1989-10-23 1991-05-21 At&T Bell Laboratories Special service call routing
JP2964151B2 (en) * 1989-07-03 1999-10-18 富士通株式会社 Communication control method
DE4020775A1 (en) * 1989-08-09 1991-02-14 Standard Elektrik Lorenz Ag COUPLING NETWORK AND COUPLING NETWORK MODULE FOR AN ATM SYSTEM
US4993104A (en) * 1989-08-11 1991-02-19 Rexair, Inc. Electrical safety interlock and pulse-type reset circuit for a vacuum cleaner system
US5231631A (en) * 1989-08-15 1993-07-27 At&T Bell Laboratories Arrangement for regulating traffic in a high speed data network
JPH03104451A (en) * 1989-09-19 1991-05-01 Fujitsu Ltd Route changeover system for multi-stage link exchange system
US5434981A (en) * 1989-09-28 1995-07-18 Rockwell International Corporation Functionally programmable PCM data analyzer and transmitter for use in telecommunication equipment
US5048081A (en) * 1989-12-28 1991-09-10 At&T Bell Laboratories Arrangement for routing packetized messages
JPH03234137A (en) * 1990-02-08 1991-10-18 Fujitsu Ltd Signaling cell switching method and signaling cell switching system
JP2957223B2 (en) * 1990-03-20 1999-10-04 富士通株式会社 Load distribution control method for call processor
CA2038646C (en) * 1990-03-20 1995-02-07 Katsumi Oomuro Atm communication system with optimal traffic control by changing the allocated bandwidth
ATE127988T1 (en) * 1990-03-23 1995-09-15 Siemens Ag METHOD FOR SETTING UP VIRTUAL CONNECTIONS IN EXCHANGE FACILITIES WORKING IN AN ASYNCHRONOUS TRANSFER MODE.
US5115427A (en) * 1990-03-30 1992-05-19 At&T Bell Laboratories Arrangements for switching multiple packet types combined in a single packet stream
US5003584A (en) * 1990-04-16 1991-03-26 At&T Bell Laboratories Method and apparatus for the billing of value-added communication calls
JP2555907B2 (en) * 1990-05-23 1996-11-20 日本電気株式会社 Complex network address routing control system
US5231633A (en) * 1990-07-11 1993-07-27 Codex Corporation Method for prioritizing, selectively discarding, and multiplexing differing traffic type fast packets
EP0810806A3 (en) * 1990-07-26 2001-04-11 Nec Corporation Method of transmitting a plurality of asynchronous cells
JP2878805B2 (en) * 1990-08-20 1999-04-05 株式会社東芝 ATM switch
JPH04100342A (en) * 1990-08-20 1992-04-02 Toshiba Corp Traffic control system
US5115431A (en) * 1990-09-28 1992-05-19 Stratacom, Inc. Method and apparatus for packet communications signaling
US5193110A (en) * 1990-10-09 1993-03-09 Boston Technology, Incorporated Integrated services platform for telephone communication system
US5453981A (en) * 1990-10-16 1995-09-26 Kabushiki Kaisha Toshiba Method of controlling communication network incorporating virtual channels exchange nodes and virtual paths exchange nodes
US5255266A (en) * 1990-10-20 1993-10-19 Fujitsu Limited ATM switching unit
JP3001953B2 (en) * 1990-10-20 2000-01-24 富士通株式会社 Virtual identifier conversion device
US5268995A (en) * 1990-11-21 1993-12-07 Motorola, Inc. Method for executing graphics Z-compare and pixel merge instructions in a data processor
FR2669798B1 (en) * 1990-11-23 1994-09-16 Lmt Radio Professionelle DEVICE FOR TRANSMITTING SYNCHRONOUS INFORMATION OVER AN ASYNCHRONOUS NETWORK, ESPECIALLY AN ATM NETWORK.
JP2890348B2 (en) 1990-11-30 1999-05-10 富士通株式会社 Telephone subscriber accommodation in broadband networks.
WO1992016066A1 (en) * 1991-02-28 1992-09-17 Stratacom, Inc. Method and apparatus for routing cell messages using delay
JPH04276942A (en) 1991-03-05 1992-10-02 Fujitsu Ltd Setting system for logic channel in atm network
US5218602A (en) * 1991-04-04 1993-06-08 Dsc Communications Corporation Interprocessor switching network
US5168492A (en) * 1991-04-11 1992-12-01 Northern Telecom Limited Rotating-access ATM-STM packet switch
US5251255A (en) * 1991-04-17 1993-10-05 At&T Bell Laboratories Processing interactions among telecommunications call features
JPH05122391A (en) * 1991-05-08 1993-05-18 Fujitsu Ltd Information collection service system
US5282244A (en) * 1991-06-24 1994-01-25 At&T Bell Laboratories Virtual signaling network method
US5291479A (en) * 1991-07-16 1994-03-01 Digital Technics, Inc. Modular user programmable telecommunications system with distributed processing
US5327433A (en) * 1991-08-30 1994-07-05 Adtran Corporation Digital tandem channel unit interface for telecommunications network
FR2681164A1 (en) * 1991-09-06 1993-03-12 Thomson Csf Process for routing a data packet within a digital transmission network
HUT62831A (en) * 1991-09-12 1993-06-28 Gen Electric Method for producing covered cubed leather-nitride abrasive grain, abrasive grain and grinding tool by using the same
DE69129851T2 (en) * 1991-09-13 1999-03-25 Ibm Configurable gigabit / s switch adapter
JPH05122240A (en) * 1991-10-24 1993-05-18 Fujitsu Ltd Vpi vci allocation system in atm transmission
US5291492A (en) * 1991-12-18 1994-03-01 Unifi Communications Corporation Externally controlled call processing system
JPH05168073A (en) * 1991-12-19 1993-07-02 Mitsubishi Electric Corp Device for inserting and extracting common line signal
US5367566A (en) * 1991-12-27 1994-11-22 At&T Corp. Common channel signaling message intercept system
US5295137A (en) * 1992-02-12 1994-03-15 Sprint International Communications Corp. Connection establishment in a flat distributed packet switch architecture
US5357510A (en) * 1992-02-19 1994-10-18 Fujitsu Limited Apparatus and a method for supervising and controlling ATM traffic
US5375124A (en) * 1992-02-20 1994-12-20 At&T Corp. Method and apparatus for providing ISDN access
JPH05236138A (en) * 1992-02-20 1993-09-10 Nec Corp Electronic exchange
US5285441A (en) * 1992-03-17 1994-02-08 At&T Bell Laboratories Errorless line protection switching in asynchronous transer mode (ATM) communications systems
JPH05292114A (en) * 1992-04-09 1993-11-05 Fujitsu Ltd Communication path setting device and its method
US5345443A (en) * 1992-04-30 1994-09-06 At&T Bell Laboratories Network-based digital bandwidth-on-demand
US5329308A (en) * 1992-07-29 1994-07-12 At&T Bell Laboratories Bidirectional video telephony between cable television and switched telephone systems
US5278889A (en) * 1992-07-29 1994-01-11 At&T Bell Laboratories Video telephony dialing
US5323389A (en) * 1992-08-14 1994-06-21 Fore Systems, Inc. ATM cell interface and method for dispatching an ATM cell
JP2839714B2 (en) 1992-08-25 1998-12-16 シーメンス アクチエンゲゼルシヤフト Switching system with call processing system for connection control
DE9300562U1 (en) 1992-08-27 1993-03-04 Siemens Ag, 8000 Muenchen, De
ATE162034T1 (en) * 1992-08-28 1998-01-15 Siemens Ag METHOD AND CIRCUIT ARRANGEMENT FOR TRANSMITTING MESSAGE CELLS WITHIN AN ATM NETWORK
US5550820A (en) 1992-09-29 1996-08-27 Com 21, Inc. Multiple protocol personal communications network system
JPH06169320A (en) 1992-10-02 1994-06-14 Toshiba Corp Atm cell making device
US5384840A (en) * 1992-10-09 1995-01-24 At&T Corp. Telecommunications system SS7 signaling interface with signal transfer capability
US5519707A (en) 1992-10-13 1996-05-21 Synoptics Communications, Inc. Multiplexing of communications services on a virtual service path in an ATM network or the like
JPH06132972A (en) 1992-10-20 1994-05-13 Fujitsu Ltd Broad band isdn remote multiplexer
CA2104753C (en) * 1992-10-29 1999-02-16 Kotikalapudi Sriram Bandwidth allocation, transmission scheduling, and congestion avoidance in broadband atm networks
US5365524A (en) * 1992-11-06 1994-11-15 At&T Bell Laboratories Establishing telecommunications call paths between clustered switching entities
US5345445A (en) * 1992-11-06 1994-09-06 At&T Bell Laboratories Establishing telecommunications calls in a broadband network
US5327421A (en) * 1992-11-06 1994-07-05 At&T Bell Laboratories Apparatus for interfacing between telecommunications call signals and broadband signals
US5345446A (en) * 1992-11-06 1994-09-06 At&T Bell Laboratories Establishing telecommunications call paths in broadband communication networks
KR960003505B1 (en) * 1992-12-29 1996-03-14 재단법인 한국전자통신연구소 Atm multiplexing processor
JPH06276214A (en) * 1993-03-18 1994-09-30 Hitachi Ltd Stm/atm signal mixture processing method and switching system
FR2703540A1 (en) 1993-03-31 1994-10-07 Trt Telecom Radio Electr Information multiplexing device for network A.T.M ..
JPH077524A (en) * 1993-04-06 1995-01-10 Siemens Ag Method for accessing of communication subscriber to address identifier
US5420858A (en) * 1993-05-05 1995-05-30 Synoptics Communications, Inc. Method and apparatus for communications from a non-ATM communication medium to an ATM communication medium
JPH06335079A (en) 1993-05-19 1994-12-02 Fujitsu Ltd Cell multiplexer in atm network
US5539884A (en) 1993-05-20 1996-07-23 Bell Communications Research, Inc. Intelligent broadband communication system and method employing fast-packet switches
JP2518515B2 (en) * 1993-05-27 1996-07-24 日本電気株式会社 High-speed connection setup packet switch
US5673262A (en) 1993-06-03 1997-09-30 Nec Corporation Communication network comprising transit switches without asynchronous transfer mode switching capability
US5473677A (en) * 1993-06-23 1995-12-05 At&T Corp. Telecommunications network architecture and system
US5509010A (en) 1993-06-25 1996-04-16 At&T Corp. Communications signaling protocols
ES2137960T3 (en) 1993-06-25 2000-01-01 Siemens Ag PROCEDURE FOR ESTABLISHING VIRTUAL COMMUNICATIONS IN PACKET SWITCHING NETWORKS.
CA2124379C (en) * 1993-06-25 1998-10-27 Thomas F. La Porta Distributed processing architecture for control of broadband and narrowband communications networks
US5392402A (en) * 1993-06-29 1995-02-21 Bell Communications Research, Inc. Broadband intelligent telecommunications network and method employing a resource system to support network services
US5377186A (en) * 1993-07-21 1994-12-27 Telefonaktiebolaget L M Ericsson System for providing enhanced subscriber services using ISUP call-setup protocol
US5384771A (en) * 1993-08-27 1995-01-24 At&T Corp. Multimedia call configuration system
US5444713A (en) * 1993-09-14 1995-08-22 At&T Corp. Telephone information service system using digital and out-of-band signaling
GB9319449D0 (en) 1993-09-21 1993-11-03 Plessey Telecomm Telecommunications switching
US5600643A (en) 1993-09-23 1997-02-04 Bell Communications Research, Inc. Broadband intelligent telecommunications network and method providing enhanced capabilities for customer premises equipment
US5479495A (en) 1993-10-01 1995-12-26 U S West Advanced Technologies, Inc. Method and system for automatically accessing and invoking switch-based services in an advanced intelligent network
US5495484A (en) 1993-10-12 1996-02-27 Dsc Communications Corporation Distributed telecommunications switching system
US5440563A (en) * 1993-10-12 1995-08-08 At&T Corp. Service circuit allocation in large networks
EP0649234B1 (en) 1993-10-14 2001-09-19 International Business Machines Corporation Method and apparatus of transferring data in an ATM network
US5590181A (en) 1993-10-15 1996-12-31 Link Usa Corporation Call-processing system and method
US5454034A (en) * 1993-11-23 1995-09-26 At&T Corp. Arrangement for sharing a telephone office code
CA2110643C (en) 1993-12-03 1997-07-08 Deborah L. Pinard Method of telephone signalling via data link
US5425090A (en) * 1993-12-07 1995-06-13 Bell Communications Research, Inc. System and method for providing advanced intelligent network services
DE4341888C1 (en) 1993-12-08 1995-04-06 Siemens Ag Method for controlling components of a communications system
US5473679A (en) * 1993-12-09 1995-12-05 At&T Corp. Signaling system for broadband communications networks
US5563939A (en) 1993-12-09 1996-10-08 At&T Method and system for delivering a communication service
US5426636A (en) * 1993-12-20 1995-06-20 At&T Corp. ATM distribution networks for narrow band communications
US5428607A (en) * 1993-12-20 1995-06-27 At&T Corp. Intra-switch communications in narrow band ATM networks
US5422882A (en) * 1993-12-20 1995-06-06 At&T Corp. ATM networks for narrow band communications
US5452297A (en) * 1993-12-20 1995-09-19 At&T Corp. Access switches for large ATM networks
US5457684A (en) * 1993-12-21 1995-10-10 At&T Ipm Corp. Delay-less signal processing arrangement for use in an ATM network
US5428609A (en) * 1994-01-03 1995-06-27 At&T Corp. STM-to-ATM converters
JP3386547B2 (en) 1994-01-26 2003-03-17 株式会社東芝 Redundancy circuit device
US5522042A (en) 1994-01-28 1996-05-28 Cabletron Systems, Inc. Distributed chassis agent for distributed network management
US5485455A (en) 1994-01-28 1996-01-16 Cabletron Systems, Inc. Network having secure fast packet switching and guaranteed quality of service
DE69530534T2 (en) 1994-02-25 2004-03-18 Hewlett-Packard Co. (N.D.Ges.D.Staates Delaware), Palo Alto Message receiving circuit for a signaling network
RU2054807C1 (en) 1994-03-04 1996-02-20 Сергей Васильевич Ягольников Device for jamming radars
US5497373A (en) 1994-03-22 1996-03-05 Ericsson Messaging Systems Inc. Multi-media interface
US5509123A (en) 1994-03-22 1996-04-16 Cabletron Systems, Inc. Distributed autonomous object architectures for network layer routing
CA2145017C (en) 1994-03-31 2000-02-15 Masaru Murakami Cell multiplexer having cell delineation function
JPH07297830A (en) 1994-04-21 1995-11-10 Mitsubishi Electric Corp Multiplexer, non-multiplexer, switching device, and network adapter
US5703876A (en) 1994-05-05 1997-12-30 Christie; Joseph Michael ATM transport system
US6031840A (en) 1995-12-07 2000-02-29 Sprint Communications Co. L.P. Telecommunications system
US5991301A (en) * 1994-05-05 1999-11-23 Sprint Communications Co. L.P. Broadband telecommunications system
US6181703B1 (en) * 1995-09-08 2001-01-30 Sprint Communications Company L. P. System for managing telecommunications
DE69533831T2 (en) * 1994-05-05 2005-04-21 Sprint Communications Co METHOD, SYSTEM AND TRANSMISSION CONTROL DEVICE
FI98683C (en) * 1994-05-09 1997-07-25 Helsingin Puhelin Oy Procedure for control of telephone exchange centers
US5506844A (en) 1994-05-20 1996-04-09 Compression Labs, Inc. Method for configuring a statistical multiplexer to dynamically allocate communication channel bandwidth
US5608447A (en) 1994-05-27 1997-03-04 Bell Atlantic Full service network
US5533106A (en) 1994-06-27 1996-07-02 Us West Technologies, Inc. Method and system for processing calls wherein the display of calling party ID information has been inhibited
US5459722A (en) 1994-06-30 1995-10-17 At&T Ipm Corp. Asynchronous transfer mode (ATM) transport of voice-band signals
CA2127521C (en) 1994-07-06 2002-02-05 Kenneth M. Buckland Method and apparatus for recovering a variable bit rate service clock
US5414701A (en) * 1994-07-22 1995-05-09 Motorola, Inc. Method and data structure for performing address compression in an asynchronous transfer mode (ATM) system
US5793845A (en) 1994-08-01 1998-08-11 British Telecommunications Public Limited Company Service node for a telephony network
JP2812205B2 (en) 1994-08-12 1998-10-22 日本電気株式会社 D channel packet communication system
US5586177A (en) * 1995-09-06 1996-12-17 Bell Atlantic Network Services, Inc. Intelligent signal transfer point (ISTP)
US5592477A (en) 1994-09-12 1997-01-07 Bell Atlantic Network Services, Inc. Video and TELCO network control functionality
US5566173A (en) 1994-10-12 1996-10-15 Steinbrecher Corporation Communication system
US5526414A (en) 1994-10-26 1996-06-11 Northern Telecom Limited Dynamically controlled routing using virtual nodes
US5684867A (en) * 1994-11-03 1997-11-04 Lucent Technologies Inc. Remote data access for operator assistance calls
FI99187C (en) 1994-11-24 1997-10-10 Tecnomen Oy A method and apparatus for adding intelligent functions to a telecommunications network
CA2159392C (en) * 1994-12-07 1999-09-07 David B. Smith Notification of toll free call charging status
US5568475A (en) 1994-12-21 1996-10-22 Lucent Technologies Inc. ATM network architecture employing an out-of-band signaling network
US6324179B1 (en) * 1994-12-21 2001-11-27 Lucent Technologies Inc. ATM network arranged to interface with STM in-band signaling
US5483527A (en) 1994-12-21 1996-01-09 At&T Corp. Terminal adapter for interfacing an ATM network with a STM network
JP2921424B2 (en) * 1995-01-13 1999-07-19 日本電気株式会社 ATM electronic exchange network system and electronic exchange used in the system
DE19502414C1 (en) 1995-01-26 1996-02-08 Siemens Ag Rapid through switching of virtual connections in ATM communication system
US5541918A (en) 1995-01-31 1996-07-30 Fore Systems, Inc. Method and apparatus for manipulating an ATM cell
US5627836A (en) 1995-01-31 1997-05-06 Bell Atlantic Network Services, Inc. VPI/VCI administration
US5539815A (en) 1995-02-24 1996-07-23 At&T Corp. Network call routing controlled by a management node
US5623491A (en) * 1995-03-21 1997-04-22 Dsc Communications Corporation Device for adapting narrowband voice traffic of a local access network to allow transmission over a broadband asynchronous transfer mode network
US5544161A (en) 1995-03-28 1996-08-06 Bell Atlantic Network Services, Inc. ATM packet demultiplexer for use in full service network having distributed architecture
US5635980A (en) 1995-04-04 1997-06-03 Bell Communications Research, Inc. System and method for customer premises broadband interface with on-hook alerting
US5640446A (en) 1995-05-01 1997-06-17 Mci Corporation System and method of validating special service calls having different signaling protocols
US5680390A (en) 1995-06-06 1997-10-21 Bell Communications Research, Inc. Broadband telecommunications network and method of having operations systems support
US5577039A (en) 1995-06-07 1996-11-19 Samsung Electronics, Inc. System and method of signal transmission within a plesiochronous digital hierarchy unit using ATM adaptation layers
AU6501496A (en) 1995-07-19 1997-02-18 Ascom Nexion Inc. Point-to-multipoint transmission using subqueues
US5708702A (en) 1995-07-28 1998-01-13 Bell Atlantic Network Services, Inc. Dynamic STP routing in response to triggering
US5636210A (en) 1995-08-02 1997-06-03 Agrawal; Jagannath P. Asynchronous transfer mode packet switch
US5661725A (en) 1995-09-12 1997-08-26 At&T Trunk-conditioning for reconfigurable T1 access to nodal services
DE19534754C1 (en) * 1995-09-19 1996-11-07 Siemens Ag Narrowband cable bundle exchange method
US6546442B1 (en) * 1995-10-30 2003-04-08 International Business Machines Corporation Communications adapter having analog and digital interfaces for communications with remote systems
US5629930A (en) 1995-10-31 1997-05-13 Northern Telecom Limited Call routing in an ATM switching network
US6072798A (en) 1995-11-01 2000-06-06 Whittaker Corporation Network access communication switch
US5771234A (en) 1995-12-06 1998-06-23 Industrial Technology Research Institute Method and system for ATM cell multiplexing under constant bit rate, variable bit rate and best-effort traffic
AU2257097A (en) * 1996-02-02 1997-08-22 Sprint Communications Company, L.P. Atm gateway system
EP0792074A3 (en) * 1996-02-20 1998-11-11 Hewlett-Packard Company A method of providing a service in a switched telecommunications system and a message interceptor suitable for use in such method
US5710769A (en) 1996-02-29 1998-01-20 Lucent Technologies Inc. Merging the functions of switching and cross connect in telecommunications networks
US5940491A (en) * 1996-02-29 1999-08-17 Lucent Technologies Inc. Control of telecommunications networks
US6178167B1 (en) * 1996-04-04 2001-01-23 Lucent Technologies, Inc. Customer telecommunication interface device having a unique identifier
US6487200B1 (en) * 1996-04-04 2002-11-26 At&T Corp. Packet telephone system
US6069890A (en) * 1996-06-26 2000-05-30 Bell Atlantic Network Services, Inc. Internet telephone service
US5802045A (en) * 1996-04-30 1998-09-01 Lucent Technologies Inc. Method of using a narrowband server to provide service features to broadband subscribers
US5940393A (en) * 1996-05-28 1999-08-17 Sprint Communications Co. L.P. Telecommunications system with a connection processing system
US5751706A (en) 1996-06-05 1998-05-12 Cignal Global Communications, Inc. System and method for establishing a call telecommunications path
US5793771A (en) * 1996-06-27 1998-08-11 Mci Communications Corporation Communication gateway
EP0827319A3 (en) * 1996-07-30 2000-05-17 Hewlett-Packard Company Global title translation in a telecommunications signalling network supporting number portability
US5850391A (en) * 1996-10-17 1998-12-15 Telefonaktiebolaget L M Ericsson Shared interworking function within a mobile telecommunications network
US6546003B1 (en) * 1996-11-21 2003-04-08 Verizon Services Corp. Telecommunications system
US6115380A (en) 1996-11-22 2000-09-05 Sprint Communications Co., L.P. Broadband telecommunications system
US6014378A (en) * 1996-11-22 2000-01-11 Sprint Communications Company, L.P. Telecommunications tandem system for circuit-based traffic
US5956334A (en) * 1997-02-10 1999-09-21 At & T Corporation Method for interfacing a telephony and an ATM network to establish voice communication
US6137800A (en) * 1997-05-09 2000-10-24 Sprint Communications Company, L. P. System and method for connecting a call
US6061364A (en) 1997-12-16 2000-05-09 Alcatel Usa Sourcing, L.P. System and method for transporting SS7 signaling over broadband asynchronous transfer mode links

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