The present invention relates to the field of communication technology, and more particularly, to a Synchronous Digital Hierarchy (SDH) tributary module and an SDH equipment node using this module.
A Multiple Service Transport Platform (MSTP) node based on Synchronous Digital Hierarchy (SDH) refers to a multiple service node that implements, based on an SDH platform, access, processing and transport of services for Time Division Multiplex (TDM) mode, Asynchronous Transfer Mode (ATM), Ethernet, Resilient Packet Ring (RPR), etc., and provides unified network management.
SDH divides a physical channel into several time slots of different levels by time division multiplexing, each of the time slots transporting a different service. As shown in
Different tributary module processes different service, the main reason for which lies in different characteristics, different interfaces and different implementing methods for various services. For example, an ATM tributary module needs to resolve an ATM cell of 52 bytes out of SDH time slot to send to an ATM interface; while an Ethernet tributary module needs to resolve an Ethernet traffic of indefinite length out of an SDH time slot to send to an Ethernet interface.
When a service flow is to be carried by a plurality of different service signals, a plurality of different tributary modules have to be used to implement mapping and unmapping between SDH signals and service signals, and it needs to incorporate a network line or other equipment to implement.
As can be seen from the above, the existing SDH tributary module has poor signal processing capability, which leads to the following shortcomings of the SDH equipment node.
1. When two or more different service signals are required to carry one service flow, two or more tributary modules (usually two separate circuit boards) are required to be incorporated, thus the cost of network is increased.
2. When more than two services are to be interconnected, extra network line and other equipment or device to connect different tributary modules are required to be incorporated, thus the difficulty in network maintenance is increased and the reliability of network is lowered.
The technique problem to be solved by this invention is to provide a SDH tributary unit supporting multiple service processing; the present invention further provides an SDH equipment node using the SDH tributary module, so as to reduce the cost of SDH equipment, facilitate the maintenance, and improve the reliability of network.
A synchronous digital hierarchy tributary module supporting multiple service processing provided by this invention includes a Synchronous Digital Hierarchy (SDH) tributary processing unit and service processing units; there are at least two service processing units connected with the SDH tributary processing unit respectively, for mapping and unmapping corresponding service signals; the SDH tributary processing unit is for multiplexing and demultiplexing multiple service signals in an SDH signal.
Each of the service processing units is connected directly to a corresponding local interface respectively.
The tributary module further includes a multiple service cross processing unit which is used to implement interconnection among different services, each service processing unit being connected to a local interface through the multiple service cross processing unit.
Furthermore, the SDH tributary processing unit separates out the service signals corresponding to different service processing units, according to different time slots corresponding to the SDH signals of different services.
A cross module of the SDH equipment node time-division multiplexes multiple service SDH signals into one SDH signal.
The services to be sent from the local to the SDH side are mapped by the service processing units respectively and sent to the SDH tributary processing unit for multiplexing, different services being multiplexed in different time slots, and the cross module of the SDH equipment node transmits the signals of different time slots to the corresponding line modules or other tributary modules.
An SDH equipment node using the synchronous digital hierarchy tributary module provided by the invention includes a plurality of local interfaces, a plurality of line modules, a cross module connected with the line modules respectively and a plurality of SDH tributary modules connected with the cross module respectively; the SDH tributary module includes an SDH tributary processing unit and at least two service processing units connected with the SDH tributary processing unit respectively, the service processing unit being for mapping and unmapping corresponding service signal, and the SDH tributary processing unit being for multiplexing and demultiplexing multiple service signals in an SDH signal, each of the service processing units being directly connected with a corresponding local interface respectively.
For the above-mentioned SDH equipment node, the SDH tributary processing unit separates out the service signals corresponding to different service processing units, according to different time slots corresponding to the SDH signals of different services.
The cross module of the SDH equipment node time-division multiplexes multiple service SDH signals into one SDH signal.
The services to be sent from the local to the SDH side are mapped by the service processing units respectively and sent to the SDH tributary processing unit for multiplexing, different services being multiplexed in different time slots, and the cross module of the SDH equipment node transmits the signals of different time slots to the corresponding line modules or other tributary modules.
The beneficial effect of the invention is: one tributary module generally uses one circuit board, while by using this invention, one tributary module can support two or more services and meet various service needs, thus remarkably decreasing the number of boards, and interconnection between two services can be implemented directly without using external network line or equipment. For an SDH node device employing the SDH tributary module, it improves the signal processing capability as a whole. Compared to the prior art, the SDH equipment has a lower cost with the same service processing capability, facilitates the maintenance of the SDH equipment and improves the reliability of the SDH equipment itself and the entire network. By using this invention, it only needs a single board to support, without external network line, interconnection among various services, for example, convergence of an Ethernet service onto a RPR.
The present invention will be described below in further detail with reference to the drawings and embodiments.
The invention provides a Synchronous Digital Hierarchy (SDH) tributary module supporting multiple service processing, wherein when a service flow is to be carried by a plurality of different service signals, one and the same tributary module can be used to implement two kinds of different service processing, thus avoiding using a plurality of different tributary modules to implement mapping and unmapping between SDH signals and service signals, and the problem of incorporating network line or other equipment.
As shown in
Taking the processing of the service from the SDH side to a local interface as an example, the present invention is further described as the following.
1. At the SDH side, the equipment is configured to send two or more different services to the cross module via the line modules, the cross module performs time division multiplexing on the SDH signals of the individual services, that is to say, in the SDH cross module, the SDH signals of the individual services are time-division multiplexed into one SDH signal which is sent to the tributary module for processing.
2. In the tributary module, the SDH tributary processing unit demultiplexes the received SDH signal, and separates out different services according to different time slots corresponding to the SDH signals of two or more services.
3. After being demultiplexed, different services are sent to different service processing units for processing, unmapping of each signal being performed by the corresponding service processing unit.
4. Different services can be interconnected via the multiple service cross processing unit of the tributary module through the unmapped signals. For example, A service and B service shown in
Contrary to the above-mentioned procedure, various services sent from a local interface or the multiple service cross processing unit to the SDH side are mapped by the corresponding service processing units respectively and sent to the SDH tributary processing unit for multiplexing, different services being multiplexed in different time slots, and the cross module transmits the different time slots to the corresponding line modules or other tributary modules.
As shown in
In this invention, one tributary module can implement mapping and unmapping of multiple different services according to different time slots; one tributary module uses one circuit board, which can thus support various services simultaneously and can also implement interconnection among various services, it can therefore remarkably decrease the number of boards, and avoid using external network line or equipment.
Number | Date | Country | Kind |
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200320127259.X | May 2003 | CN | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/CN04/01379 | 11/30/2004 | WO | 6/2/2006 |