CN110649987B - Optical transmission system apparatus, conversion unit, conversion method, and storage medium - Google Patents

Optical transmission system apparatus, conversion unit, conversion method, and storage medium Download PDF

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CN110649987B
CN110649987B CN201810705935.8A CN201810705935A CN110649987B CN 110649987 B CN110649987 B CN 110649987B CN 201810705935 A CN201810705935 A CN 201810705935A CN 110649987 B CN110649987 B CN 110649987B
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otn
unit
scheduling
cross
sdh
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CN110649987A (en
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孙玉洁
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ZTE Corp
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ZTE Corp
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Priority to PCT/CN2019/093098 priority patent/WO2020001497A1/en
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    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/16Time-division multiplex systems in which the time allocation to individual channels within a transmission cycle is variable, e.g. to accommodate varying complexity of signals, to vary number of channels transmitted
    • H04J3/1605Fixed allocated frame structures
    • H04J3/1652Optical Transport Network [OTN]
    • H04J3/1664Optical Transport Network [OTN] carrying hybrid payloads, e.g. different types of packets or carrying frames and packets in the paylaod
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/16Time-division multiplex systems in which the time allocation to individual channels within a transmission cycle is variable, e.g. to accommodate varying complexity of signals, to vary number of channels transmitted
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04JMULTIPLEX COMMUNICATION
    • H04J3/00Time-division multiplex systems
    • H04J3/16Time-division multiplex systems in which the time allocation to individual channels within a transmission cycle is variable, e.g. to accommodate varying complexity of signals, to vary number of channels transmitted
    • H04J3/1605Fixed allocated frame structures
    • H04J3/1611Synchronous digital hierarchy [SDH] or SONET
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • HELECTRICITY
    • H04ELECTRIC COMMUNICATION TECHNIQUE
    • H04QSELECTING
    • H04Q11/00Selecting arrangements for multiplex systems
    • H04Q11/0001Selecting arrangements for multiplex systems using optical switching
    • H04Q11/0062Network aspects

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  • Engineering & Computer Science (AREA)
  • Computer Networks & Wireless Communication (AREA)
  • Signal Processing (AREA)
  • Time-Division Multiplex Systems (AREA)
  • Data Exchanges In Wide-Area Networks (AREA)

Abstract

The invention discloses an optical transmission system device, a conversion unit, a conversion method and a storage medium, wherein the conversion unit is used for converting an SDH (synchronous digital hierarchy) scheduling unit of a client side service mapped with an SDH format into an optical transport network OTN (optical transport network) scheduling unit in the cross scheduling process of the client side service to a line side; and in the process of cross scheduling of the line side service to the client side, converting the OTN scheduling units for mapping the OTN format line side service into SDH scheduling units. The invention realizes the cross scheduling function of the SDH scheduling unit on the OTN optical transmission system, effectively reduces the development types and difficulty of hardware, omits the middle optical fiber transmission, effectively reduces the network level and simultaneously effectively promotes the flexibility of the cross scheduling of the system.

Description

Optical transmission system apparatus, conversion unit, conversion method, and storage medium
Technical Field
The present invention relates to the field of communications technologies, and in particular, to an optical transmission system device, a conversion unit, a conversion method, and a storage medium.
Background
In the Optical Transport Network system, an OTN (Optical Transport Network) Optical Transport system and an SDH (Synchronous Digital Hierarchy) Optical Transport system are two independent Optical Transport systems.
The optical transport system equipment mainly handles ethernet traffic. The scheduling unit of the SDH optical transmission system equipment is a VC (Virtual Container), and as the rate of the ethernet traffic becomes higher and higher, the VC becomes difficult to accommodate the high-speed ethernet traffic, so that the use of the SDH optical transmission system equipment is severely limited. The OTN optical transport system device scheduling unit is an ODUn, which is very suitable for accommodating various high-speed ethernet services, so that the optical transport system devices are all OTN optical transport system devices at present. However, part of users still want to realize the functions of part of SDH optical transport system equipment on OTN optical transport system equipment, and SDH optical transport system equipment still has obvious advantages in processing low-speed ethernet traffic, so that there is a need for OTN/SDH hybrid optical transport system equipment on which the functions of both OTN and SDH optical transport equipment can be simultaneously supported. Wherein, ODU is an abbreviation of Optical Channel Data Unit, which represents an Optical Channel Data Unit, and n represents a rate level.
The implementation scheme of the existing OTN/SDH mixed optical transmission system equipment comprises the following steps: the scheme of SDH optical transmission equipment and OTN optical transmission equipment mixed networking and the scheme of configuring an OTUk mixed circuit board in the OTN optical transmission equipment. According to the scheme of hybrid networking of the SDH optical transmission equipment and the OTN optical transmission equipment, a plurality of board cards are required in the equipment, and optical fiber transmission is required in the middle of the board cards; according to the scheme of the hybrid circuit board, various bandwidth special for supporting VC cross scheduling OTUk hybrid circuit boards need to be developed, the developed hardware is various, and the hardware development difficulty is increased compared with that of a common OTUk circuit board. Wherein, OTU is an abbreviation of Optical Transform Unit, which indicates an Optical channel transmission Unit, and k indicates a rate level. Therefore, for the above problems of the OTN/SDH hybrid optical transport system apparatus, a simple and efficient solution has not been proposed at present.
Disclosure of Invention
In order to overcome the above-mentioned drawbacks, the present invention provides an optical transmission system device, a conversion unit, a conversion method and a storage medium, which are used to solve the problems of multiple types of hardware and difficulty in hardware development in the OTN/SDH hybrid optical transmission system device.
In order to solve the above technical problem, a conversion unit of an optical transport system device in an embodiment of the present invention is configured to convert an SDH scheduling unit that maps a synchronous digital sequence SDH format client side service into an optical transport network OTN scheduling unit in a cross scheduling process from the client side service to a line side; and in the process of cross scheduling of the line side service to the client side, converting the OTN scheduling units for mapping the OTN format line side service into SDH scheduling units.
To solve the above technical problem, an optical transmission system apparatus according to an embodiment of the present invention includes: a crossover unit and a conversion unit as described above;
the cross unit is used for cross-dispatching the OTN dispatching unit converted by the conversion unit to the OTN line side unit in the cross dispatching process of the client side service to the line side; and in the process of cross scheduling of the line side service to the client side, the SDH scheduling units converted by the conversion unit are cross scheduled to the SDH client side unit.
To solve the above technical problem, a method for switching an optical transmission system device in an embodiment of the present invention includes:
in the cross scheduling process from the client side service to the line side, the SDH scheduling unit of the client side service in the SDH format mapped synchronous digital sequence is converted into an optical transport network OTN scheduling unit;
and in the process of cross scheduling of the line side service to the client side, converting the OTN scheduling units for mapping the OTN format line side service into SDH scheduling units.
In order to solve the above technical problem, an optical transmission system device in an embodiment of the present invention includes a memory storing a conversion program and a processor executing the conversion program to implement the steps of the method described above.
To solve the above technical problem, a readable storage medium in an embodiment of the present invention stores a conversion program, which is executable by at least one processor to implement the steps of the method as described above.
The invention has the following beneficial effects:
the embodiments of the invention realize the cross scheduling function with the SDH scheduling unit on the OTN optical transmission system, effectively reduce the hardware development types and difficulty, save the middle optical fiber transmission, effectively reduce the network level, and simultaneously effectively improve the flexibility of the system cross scheduling.
Drawings
Fig. 1 is a hybrid networking diagram of an existing OTN optical transport system device and an SDH optical transport system device;
fig. 2 is a system block diagram of an existing OTN device configured with a hybrid circuit board to implement a VC crossover function;
FIG. 3 is a schematic diagram of an optical transmission system device according to an embodiment of the present invention;
FIG. 4 is a schematic block diagram of an alternative optical transmission system apparatus in accordance with an embodiment of the present invention;
FIG. 5 is a schematic diagram of an alternative embodiment of the optical transmission system apparatus of the present invention;
FIG. 6 is a schematic diagram of an alternative embodiment of an optical transmission system apparatus;
fig. 7 is a traffic flow diagram when the conversion unit does not need to support VC-12 cross scheduling in the embodiment of the present invention;
fig. 8 is a traffic flow diagram when the conversion unit needs to support VC-12 cross scheduling in the embodiment of the present invention;
fig. 9 is a flowchart of a conversion method of an optical transmission system apparatus according to an embodiment of the present invention;
fig. 10 is a schematic structural diagram of another optical transmission system apparatus according to an embodiment of the present invention.
Detailed Description
The SDH optical transmission system equipment is composed of an STM (Synchronous transport Module) -N (N =1,4, 16, 64, 256) access board, a VC cross board, and a line STM-M (M =16, 64, 256) board, where N and M denote rate levels. The service processing mode is that the customer STM-N service is accessed through a customer STM-N access board and is sent to a VC cross board by taking VC-4/VC-12 as a scheduling unit, the VC cross board realizes high-order VC cross (by taking VC-4 as the scheduling unit) and low-order VC cross (by taking VC-12 as the scheduling unit), the VC after cross scheduling is sent to a line STM-M board to form line STM-M transmission, the processing path from the customer STM-N service to the line STM-M service is formed above, and the SDH optical transmission system equipment can also complete the processing from the line STM-M service to the customer STM-N service at the same time.
The service processing mode is that a client STM-N service is accessed through the client STM-N access board, mapped into an ODUn (N =0,1,2,3, 4), sent to the ODU cross board in an ODUn mode for cross scheduling, and finally sent to a line OTUk board for forming a line OTUk transmission. The mapping from STM-N to ODUn is a one-to-one relationship, that is, an STM-N is converted into an ODUn. The above is a processing path from the client STM-N service to the line OTUk service, and the OTN optical transmission system device can also complete the processing from the OTUk service to the client STM-N service.
In summary, although both the SDH optical transport system device and the OTN optical transport system device process the access of the STM-N service, the processing manners are very different, and the main difference is that the service formats of cross scheduling are different, the service cross scheduled by the SDH optical transport system device is VC, and the signal format of cross scheduling by the OTN optical transport system device is ODUn, and since the ODUn and the STM-N are in a one-to-one relationship, and what is installed in the ODUn is the STM-N, the cross scheduling of the SDH service by the OTN optical transport system device is actually the cross scheduling of the STM-N.
The service mainly processed by the present optical transport system equipment is ethernet service, while the scheduling unit of the SDH optical transport system equipment is VC, and with the increasing rate of ethernet service, VC becomes difficult to install high-speed ethernet service, so the use of SDH optical transport system equipment is severely limited, while the scheduling unit of the OTN optical transport system equipment is ODUn, which is very suitable for installing various ethernet services, so the present optical transport system equipment is basically OTN optical transport system equipment, but some users want to realize the function of some SDH optical transport system equipment on the OTN optical transport system equipment, and the SDH optical transport system equipment still has its obvious advantage in processing low-speed ethernet service, so there is a need for OTN/SDH hybrid optical transport system equipment, and the equipment can support the functions of both OTN and SDH optical transport equipment.
For a typical OTN/SDH hybrid optical transport system device as shown in fig. 1, the device has two service scheduling functions of VC and ODUn at the same time, and the system has an SDH STM-N client access board, an SDH STM-M circuit board, an OTN STM-N access board, and an OTN OTUk circuit board at the same time. STM-N business is accessed through SDH STM-N access board, sends SDH STM-M circuit board after realizing VC cross scheduling through SDH cross board, and then STM-M signal that SDH STM-M circuit board output passes through optical fiber access OTN STM-N access board, then exports OTN OTUk circuit board after realizing the dispatch of ODUn through the OTN cross board.
In the OTN/SDH hybrid optical transport system apparatus, in order to implement conversion from an SDH STM-N service to an OTUk service, 4 boards are required to pass through, and optical fiber transmission is also required in the middle, and in order to reduce the boards that pass through and to omit the optical fiber transmission in the middle, a system implementation scheme that an OTUk hybrid circuit board is configured is adopted, as shown in fig. 2.
The OTUk mixed circuit board can be configured to carry out cross scheduling through a back board under ODUn, and also can be configured to carry out cross scheduling through a back board under VC-4/VC-12, an SDH STM-N access board can be installed in the system, and an OTN STM-N access board can also be installed in the system, wherein the SDH STM-N access board is the back board under VC, the scheduling is realized through a cross board, the cross scheduling of VC can be realized through the cross board with the OTUk mixed circuit board, the OTN STM-N access board is the back board under ODUn, the cross scheduling of ODUn can be realized through the cross board with the OTUk mixed circuit board through the cross board, thus, all functions of STM-N to OTUk through VC cross scheduling can be realized only through the cooperation of the SDH STM-N access board and the OTUk mixed circuit board, and the ODUn cross scheduling function can also be realized through the cooperation of the OTN STM-N access board and the OTUk mixed circuit board.
Although the OTUk hybrid circuit board realizes the functions of SDH STM-N access and VC cross scheduling on OTN equipment, and reduces the number of required board cards compared with the SDH service path in the traditional mode, and removes the optical fiber connection between the SDH STM-M circuit board and the OTN STM-N client board, compared with the common OTUk circuit board, the OTUk hybrid circuit board increases the difficulty of realization compared with the common OTUk circuit board due to the addition of the VC scheduling function, thereby needing to specially develop special board cards and increasing the difficulty of development, and simultaneously leading the bandwidth of the OTUk hybrid circuit board to be limited compared with the common OTUk circuit board, and the OTUk hybrid circuit board takes different values according to the k of the OTUk and needs to develop a plurality of OTUk hybrid circuit boards according to the difference of the line transmission distances.
In order to solve the technical problem, the present invention provides an optical transport system device, a conversion unit, a conversion method and a storage medium, and realizes a flexible VC cross-scheduling function between an SDH STM-N access board and a common OTUk circuit board in an OTN optical transport system by developing a VC/ODU conversion unit. Compared with the scheme of configuring the OTUk mixed circuit board, the embodiment of the invention reduces the variety of the developed single board, and the VC/ODU adapter board has relatively low complexity, thereby reducing the development difficulty, and simultaneously easily realizing wider VC bandwidth of the lower back board relative to the mixed board. The present invention will be described in further detail below with reference to the drawings and examples. It should be understood that the specific embodiments described herein are merely illustrative of the invention and do not limit the invention.
In the following description, suffixes such as "module", "component", or "unit" used to denote elements are used only for facilitating the explanation of the present invention, and have no specific meaning in itself. Thus, "module", "component" or "unit" may be used mixedly.
The use of prefixes such as "first," "second," etc. to distinguish between elements is merely intended to facilitate the description of the invention and has no particular meaning in and of themselves.
Example one
An embodiment of the present invention provides a conversion unit of an optical transport system device, as shown in fig. 3 to fig. 6, where the conversion unit 5 is configured to convert an SDH scheduling unit, which maps a SDH format client side service, into an OTN scheduling unit of an optical transport network in a cross scheduling process from the client side service to a line side; and in the process of cross scheduling of the line side service to the client side, converting the OTN scheduling unit mapped with the OTN format line side service into an SDH scheduling unit.
The SDH scheduling unit comprises one of the following components: virtual containers VC, VC cells and VC of each order; the OTN scheduling unit includes one of: an optical channel data unit ODU and an ODU cell. The conversion unit may be in the form of a conversion board.
In the embodiment of the invention, through the use of the conversion unit 5, the service of the SDH client side is transmitted from the access to the upper OTUk line, thereby reducing the number of the passing board cards, omitting the middle optical fiber transmission and reducing the network level; compared with the OTN/SDH hybrid optical transmission system device configured with an OTUk hybrid circuit board shown in fig. 2, it is realized that a client side SDH STM-N access board can cooperate with an arbitrary line side ordinary OTUk circuit board to realize a VC cross scheduling function, and is no longer limited to cross scheduling with only a dedicated hybrid circuit board, which improves the flexibility of system cross scheduling, and overcomes the problem that the bandwidth of an OTUk optical port of a hybrid line side single board and the bandwidth of a backplane ODUk and a VC in the system shown in fig. 2 are limited; meanwhile, various mixed circuit boards are not required to be developed according to actual requirements, and the development types and difficulty of hardware are reduced.
In some embodiments, when the SDH scheduling unit is a virtual container VC and the OTN scheduling unit is an ODU, the conversion unit 5 is specifically configured to convert the VC mapped with the SDH format client side service into an ODU in a cross scheduling process from the client side service to the line side; and in the process of cross-dispatching the line side service to the client side, converting the ODU mapped with the OTN format line side service into VC.
In some embodiments, when the SDH scheduling unit is a VC cell and the OTN scheduling unit is an ODU cell, the conversion unit 5 is specifically configured to convert, in a cross scheduling process from a client side service to a line side, the VC cell mapped with an SDH format client side service into VC, convert the converted VC into an ODU, and convert the converted ODU into an ODU cell; in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into the ODU, the converted ODU is converted into the VC, and the converted VC is converted into the VC cell.
In some embodiments, when the SDH scheduling unit is a first-order VC and a second-order VC, and the OTN scheduling unit is an ODU, the conversion unit 5 is specifically configured to demap, in a cross scheduling process from a client side service to a line side, a first-order VC to which an SDH format client side service is mapped to a second-order VC, demap the first-order VC to which the SDH format client side service is mapped to the second-order VC, perform VC crossing on the demapped second-order VC, map the second-order VC after VC crossing to the first-order VC, and convert the mapped first-order VC to the ODU; in the process of cross-dispatching line side service to client side, ODU mapped with OTN format line side service is converted into first-order VC, the converted first-order VC is de-mapped into second-order VC, VC cross is carried out on the de-mapped second-order VC, the second-order VC after VC cross is mapped to the first-order VC, and the mapped first-order VC is converted into ODU. Where the first order VC may be considered a high order VC, such as VC-4, and the second order VC may be considered a low order VC, such as VC-12. That is to say, the ODU mapping the OTN line side service is converted into a third higher-order VC, the higher-order VC is demapped into a lower-order VC, and the lower-order VC is cross-mapped into the higher-order VC after being crossed by the VC, thereby implementing the higher-order VC cross scheduling and the lower-order VC cross scheduling, the lower-order VC (in the conversion unit) is cross-mapped into the higher-order VC after being crossed by the VC, and the higher-order VC is reconverted into the ODU.
Example two
An embodiment of the present invention provides an optical transmission system apparatus, as shown in fig. 3, the apparatus includes a crossing unit 3 and a converting unit 5;
the conversion unit 5 is configured to convert an SDH scheduling unit that maps a synchronous digital sequence SDH format client side service into an optical transport network OTN scheduling unit in a cross scheduling process from the client side service to the line side; and in the process of cross scheduling of the line side service to the client side, converting the OTN scheduling unit mapped with the OTN format line side service into an SDH scheduling unit.
The cross unit 3 is configured to cross-schedule the OTN scheduling units converted by the conversion unit to an OTN line-side unit in a cross-scheduling process from a client-side service to a line-side service; and in the process of cross scheduling of the line side service to the client side, the SDH scheduling units converted by the conversion unit are cross scheduled to an SDH client side unit.
The SDH scheduling unit comprises one of the following components: virtual containers VC, VC cells and VC of each order; the OTN scheduling unit includes one of: an optical channel data unit ODU and an ODU cell; the SDH format is synchronous transmission module SDH STM-N with different rate grades, and the OTN format is optical channel transmission unit OTN OTUk with different rate grades. The conversion unit may adopt a conversion single board form, and the crossing unit may adopt a crossing board form.
The embodiment of the invention realizes the VC cross scheduling function between the SDH STM-N access board and the common OTUk circuit board, so that all the OTUk circuit boards can realize the VC cross scheduling function, thereby avoiding developing various OTUk mixed circuit boards special for supporting VC cross scheduling, reducing the developed hardware types, enabling the network structure of the system to be more flat, enabling the transmission and cross scheduling to be more efficient and flexible, and effectively reducing the hardware purchasing cost and the network maintenance cost of the system.
In some embodiments, the crossing unit 3 is further configured to cross-schedule the OTN scheduling unit, which maps the client-side OTN service, to the OTN line-side unit in the cross-scheduling process from the client-side service to the line-side; and in the process of cross-dispatching the line side service to the client side, cross-dispatching the OTN dispatching units for mapping the OTN format line side service to an OTN client side unit.
In some embodiments, the apparatus further comprises the SDH client side unit 2, the OTN client side unit 1, and the OTN line side unit 4;
the said SDH customer side unit 2, is used in the business of customer side to the cross scheduling process of line side, demapping SDH format customer side business to SDH deployment unit; in the process of cross scheduling of line side services to a client side, mapping SDH scheduling units which are cross scheduled to SDH format client side services;
the OTN client side unit 1 is configured to map client side OTN services to an OTN scheduling unit in a process of cross-scheduling client side services to a line side; in the process of cross-dispatching the line side service to the client side, the cross-dispatched OTN dispatching units are demapped to obtain the client side service in the OTN format;
the OTN line side unit 4 is configured to multiplex the cross-scheduled OTN scheduling units to the line side service in the OTN format in the cross-scheduling process from the client side service to the line side; in the process of cross-dispatching road side service to client side, the OTN format line side service is demultiplexed to obtain OTN dispatching units containing client side service.
In some embodiments, when the SDH scheduling unit is a VC cell and the OTN scheduling unit is an ODU cell, the conversion unit 5 is specifically configured to convert, in a cross scheduling process from a client side service to a line side, the VC cell mapped with an SDH format client side service into VC, convert the converted VC into an ODU, and convert the converted ODU into an ODU cell; in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into the ODU, the converted ODU is converted into the VC, and the converted VC is converted into the VC cell.
In detail, as shown in fig. 3, the optical transport system device in the embodiment of the present invention may implement a VC cross function on an OTN optical transmission system, and the device includes an OTN client side unit 1, an SDH client side unit 2, a cross unit 3, an OTN line side unit 4, and a conversion unit 5; the cross unit 3 is connected to each of the other units. Wherein the cross unit 3 can realize cross scheduling based on ODUk (k =0,1,2,3,4) and VC (VC-4, VC-3, and VC-12), and the switching unit 5 can realize switching of ODUk (k =0,1,2,3,4) and VC (VC-4, VC-3, and VC-12). As can be seen from the figure, after the SDH STM-N (N =1,4, 16, 64, 256) traffic accessed by an SDH client side unit completes VC interleaving via the interleaving unit 3, VC (VC-4, VC-3, and VC-12) is converted into ODUk (k =0,1,2,3, 4) via the conversion unit 601 (for example, VC is mapped to STM-N, STM-N is mapped to ODUk (k =0,1,2,3, 4), and then is interleaved and scheduled to the OTN line side unit by the interleaving unit 3. The opposite direction can complete the interleaved and scheduled traffic of the line side unit OTUk traffic to the client unit SDH-N traffic, and for the opposite direction, the conversion unit 5 converts ODUk (k =0,1,2,3, 4) into VC (VC-4, VC-3, and VC-12) (for example, maps the ODUk out of STM-N, and then maps the STM-N out of VC).
The conversion unit 5 in the embodiment of the present invention includes, but is not limited to, conversion from VC to ODUk, for example, may support a cross function of a lower-order VC-12, so as to implement cross of the lower-order VC-12 in an OTN system that only supports cross of a higher-order VC.
Each unit may adopt a form of a single board, that is, OTN client side unit 1, SDH client side unit 2, cross unit 3, OTN line side unit 4, and conversion unit 5 may be expressed as OTN client side single board, SDH client side single board, cross single board, OTN line side single board, and conversion single board, respectively. The SDH format client side service may also be expressed as a client side SDH service, and the OTN format service side service and the OTN format client side service may also be expressed as a service side OTN service and a client side OTN service, respectively.
Compared with the OTN/SDH hybrid optical transport system apparatus shown in fig. 1, in the apparatus in the embodiment of the present invention, due to the use of the conversion unit 5, the service at the SDH client side is transmitted from the access to the upper OTUk line, which reduces the number of passed board cards, and omits the intermediate optical fiber transmission, thereby reducing the network level; compared with the OTN/SDH hybrid optical transport system device configured with an OTUk hybrid circuit board in fig. 2, it is realized that a client side SDH STM-N access board can be matched with an arbitrary line side ordinary OTUk circuit board to realize a VC cross scheduling function, and is no longer limited to cross scheduling with only a dedicated hybrid circuit board, which improves the flexibility of system cross scheduling, and overcomes the problem that the bandwidth of an optical port of a hybrid line side single board OTUk and the bandwidth of a backplane ODUk and a VC in the system in fig. 2 are limited; meanwhile, various mixed circuit boards do not need to be developed according to actual requirements, and the variety and difficulty of hardware development are reduced.
EXAMPLE III
An embodiment of the present invention provides an optical transmission system device, as shown in fig. 4, the device includes an OTN client side unit 1, an SDH client side unit 2, a cross unit 3, an OTN line side unit 4, and a conversion unit 5; wherein, the cross unit 3 is a bi-plane cross unit, when the SDH scheduling unit is a virtual container VC and the OTN scheduling unit is an ODU, the conversion unit 5 is specifically configured to convert the VC mapped with the SDH format client side service into the ODU in a cross scheduling process from the client side service to the line side; and in the process of cross-dispatching the line side service to the client side, converting the ODU mapped with the OTN format line side service into VC.
In detail, the OTN client side unit 1 completes access of OTN services, such as access of OTUk (k =1,2,3, 4) services of different rate classes, mapping/demapping functions of OTUk (k =1,2,3, 4) to ODUk (k =0,1,2,3, 4), access of OTN STM-N (N =1,4, 16, 64, 256) services, and mapping/demapping functions of STM-N to ODUn; the SDH client side unit 2 performs a mapping/demapping function of SDH STM-N (N =1,4, 16, 64, 256) and VC (VC-4, VC-3, and VC-12); the centralized crossing unit 3 is a biplane centralized crossing unit; the conversion unit 5 realizes conversion of ODUk (k =0,1,2,3,4) and VC (VC-4, VC-3, and VC-12). After the SDH STM-N (N =1,4, 16, 64, 256) service accessed by the SDH client side unit 201 completes VC crossing by the bi-plane centralized crossing unit 302, VC (VC-4, VC-3, and VC-12) is converted into ODUk (k =0,1,2,3, 4) by the conversion unit 5, and then is cross-scheduled to the OTN line side unit 4 by the bi-plane centralized crossing unit 3, thereby realizing VC cross-scheduling between the SDH STM-N service of the client unit and any OTUk line unit on the line side. And VC cross scheduling from the OTUk single board at the line side to the SDH STM-N service board at the client side can be completed in the opposite direction.
Example four
An embodiment of the present invention provides an optical transmission system device, as shown in fig. 5, the device includes an OTN client side unit 1, an SDH client side unit 2, a cross unit 3, an OTN line side unit 4, and a conversion unit 5; the cross unit may be expressed as a centralized cell cross unit, the conversion unit may be expressed as a cell conversion unit, and when the SDH scheduling unit is a VC cell and the OTN scheduling unit is an ODU cell, the conversion unit 5 is specifically configured to convert, in a cross scheduling process from a client side service to a line side, the VC cell mapped with an SDH format client side service into VC, convert the converted VC into an ODU, and convert the converted ODU into an ODU cell; in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into the ODU, the converted ODU is converted into the VC, and the converted VC is converted into the VC cell.
In detail, the OTN client-side unit 1 completes access of OTN services, such as access of OTUk (k =1,2,3, 4) services of different rate classes, mapping/demapping of OTUk (k =1,2,3, 4) and ODUk (k =0,1,2,3, 4), conversion of ODUk and CELL (ODU)), and access of OTN STM-N (N =1,4, 16, 64, 256) services, mapping/demapping of STM-N to ODUn, conversion of ODUn and CELL (ODU)); SDH client side unit 2 completes mapping/demapping of STM-N and VC (VC-4, VC-3 and VC-12) and mapping/demapping of VC-4 and CELL CELLs; the centralized CELL cross unit 3 simultaneously completes the switching function of the CELL CELL (ODU) based on ODUk (k =0,1,2,3, 4) and the CELL CELL (VC) based on VC (VC-4, VC-3 and VC-12); the cross scheduling unit of the line side unit 4 is an ODUk cell; the CELL conversion unit 5 realizes conversion between CELL CELLs CELL (ODU) based on ODUk (k =0,1,2,3, 4) and CELL CELLs CELL (VC) based on VC (VC-4, VC-3 and VC-12), and realizes VC cross scheduling from SDH STM-N (N =1,4, 16, 64, 256) service at the client side to any OTUk line single board of the line side unit in cooperation with the centralized CELL cross unit 3.
EXAMPLE five
An embodiment of the present invention provides an optical transmission system device, as shown in fig. 5, where the device includes an OTN client side unit 1, an SDH client side unit 2, a cross unit 3, an OTN line side unit 4, and a conversion unit 5; in some embodiments, when the SDH scheduling unit is a first-order VC and a second-order VC, and the OTN scheduling unit is an ODU, the conversion unit 5 is specifically configured to, in a cross scheduling process from a client side service to a line side, demap a first-order VC that maps a client side service in an SDH format to a second-order VC, perform VC crossing on the demapped second-order VC, map the second-order VC after VC crossing to the first-order VC, and convert the mapped first-order VC into the ODU; in the process of cross-dispatching of line side services to client sides, ODUs mapped with OTN format line side services are converted into first-order VCs, the converted first-order VCs are de-mapped into second-order VCs, VC crossing is carried out on the de-mapped second-order VCs, the second-order VCs after VC crossing are mapped into the first-order VCs, and the mapped first-order VCs are converted into ODUs. Where the first order VC may be VC-4 and the second order VC may be VC-12.
For example, the conversion unit 5 in the embodiment of the present invention supports cross scheduling of VC-12, and is suitable for a system where only VC-4 is supported by a backplane under an SDH client side unit 2 and only VC-4 is supported by a centralized cross unit 3, to implement the function of cross scheduling of VC-12. If the device does not need to perform cross-dispatching of VC-12, and the service flow is as shown in fig. 7, the conversion unit 5 in the embodiment of the present invention converts VC-4 from the cross unit 3 into an ODUK by directly dispatching the conversion module 603 from VC-4 to ODUK by the VC-4 dispatching module 601, and then sends the ODUK to the cross-dispatching unit 3; if the device needs to perform cross-dispatching of VC-12, the service flow is as shown in fig. 8, VC-4 from the cross unit 3 is dispatched to the VC-12 cross-dispatching module 602 by the VC-4 cross-dispatching module 601 to implement cross-dispatching of VC-12, and the VC-4 cross-dispatched by VC-12 is sent back to the VC-4 dispatching module 601 and dispatched to the VC-4-to-ODUk conversion module 603 to be converted into an ODUk, and then sent to the cross unit 301.
EXAMPLE six
An embodiment of the present invention provides a conversion method for an optical transmission system device, as shown in fig. 9, the method includes:
s101, in the cross dispatching process of the client side service to the line side, converting an SDH dispatching unit of the client side service with a mapping synchronous digital sequence SDH format into an optical transport network OTN dispatching unit;
s102, in the process of cross-dispatching the line side service to the client side, the OTN dispatching unit mapping the OTN format line side service is converted into an SDH dispatching unit.
It should be noted that, in the embodiment of the present invention, the sequence of S101 and S102 may be adjusted according to an actual application scenario when the method is executed. The optical transmission system device in the embodiment of the present invention is any one of the optical transmission system devices described in the first to fifth embodiments.
In some embodiments, when the SDH scheduling unit is a virtual container VC and the OTN scheduling unit is an ODU, the converting the SDH scheduling unit that maps a synchronous digital sequence SDH format client side service into an optical transport network OTN scheduling unit in a cross scheduling process of the client side service to a line side includes:
in the cross dispatching process of the client side service to the line side, converting VC mapped with SDH format client side service into ODU;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching units for mapping the OTN format line side service into SDH dispatching units comprises the following steps:
and in the process of cross-dispatching the line side service to the client side, converting the ODU mapped with the OTN format line side service into VC.
In some embodiments, when the SDH scheduling unit is a VC cell and the OTN scheduling unit is an ODU cell, the converting the SDH scheduling unit that maps a synchronous digital sequence SDH format client side service into an optical transport network OTN scheduling unit in a cross scheduling process of the client side service to a line side includes:
in the cross scheduling process from the client side service to the line side, converting VC cells mapping the SDH format client side service into VC, converting the converted VC into ODU, and converting the converted ODU into ODU cells;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching unit mapped with the OTN format line side service into the SDH dispatching unit comprises the following steps:
in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into the ODU, the converted ODU is converted into the VC, and the converted VC is converted into the VC cell.
In some embodiments, when the SDH scheduling unit is a first-order VC and a second-order VC, and the OTN scheduling unit is an ODU, the converting the SDH scheduling unit that maps a synchronous digital sequence SDH format client side traffic into an optical transport network OTN scheduling unit in a cross scheduling process from the client side traffic to a line side includes:
in the cross scheduling process of the client side service to the line side, demapping a first-order VC for mapping the SDH format client side service to a second-order VC, performing VC crossing on the demapped second-order VC, and mapping the crossed second-order VC to the first-order VC; converting the mapped first-order VC into an ODU;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching units for mapping the OTN format line side service into SDH dispatching units comprises the following steps:
and in the process of cross scheduling of the line side service to the client side, converting the ODU mapped with the OTN format line side service into first-order VC, demapping the converted first-order VC into second-order VC, and mapping the demapped second-order VC into first-order VC.
EXAMPLE seven
An optical transmission system apparatus is provided in an embodiment of the present invention, as shown in fig. 10, the apparatus includes a memory 10 and a processor 12, the memory 10 stores a conversion program, and the processor 12 executes the conversion program to implement the steps of any one of the methods described in the sixth embodiment.
Example eight
The invention provides a readable storage medium, which stores a conversion program, wherein the conversion program can be executed by at least one processor to realize the steps of any one of the methods described in the sixth embodiment.
Embodiments of the present invention may be a RAM memory, a flash memory, a ROM memory, an EPROM memory, an EEPROM memory, registers, a hard disk, a removable disk, a CD-ROM, or any other form of storage medium known in the art. A storage medium may be coupled to the processor such that the processor can read information from, and write information to, the storage medium; or the storage medium may be integral to the processor. The processor and the storage medium may reside in an application specific integrated circuit.
In the specific implementation process of the sixth embodiment to the eighth embodiment, reference may be made to the first embodiment to the fifth embodiment, and corresponding technical effects are achieved.
The above-mentioned embodiments are intended to illustrate the objects, technical solutions and advantages of the present invention in further detail, and it should be understood that the above-mentioned embodiments are merely exemplary embodiments of the present invention, and are not intended to limit the scope of the present invention, and any modifications, equivalent substitutions, improvements and the like made within the spirit and principle of the present invention should be included in the scope of the present invention.

Claims (14)

1. A conversion unit of an optical transmission system device, which is characterized in that the conversion unit is used for converting an SDH scheduling unit mapping a synchronous digital sequence SDH format client side service into an optical transport network OTN scheduling unit in a cross scheduling process from the client side service to a line side; in the process of cross scheduling of line side service to client side, converting OTN scheduling units mapping OTN format line side service into SDH scheduling units;
when the SDH scheduling unit is a first-order virtual container VC and a second-order virtual container VC, and the OTN scheduling unit is an optical channel data unit ODU, the conversion unit is specifically configured to demap the first-order VC that maps the customer-side service in SDH format to the second-order VC, perform VC crossing on the demapped second-order VC, map the second-order VC after VC crossing to the first-order VC, and convert the mapped first-order VC into the ODU; and in the process of cross scheduling of the line side service to the client side, converting the ODU mapped with the OTN format line side service into a first-order VC, demapping the converted first-order VC into a second-order VC, performing VC crossing on the demapped second-order VC, and mapping the second-order VC after VC crossing into the first-order VC.
2. The conversion unit according to claim 1, wherein when the SDH scheduling unit is a virtual container VC and the OTN scheduling unit is an optical channel data unit ODU, the conversion unit is specifically configured to convert the VC mapped with an SDH format client side service into an ODU in a cross-scheduling process from the client side service to a line side; and in the process of cross-dispatching the line side service to the client side, converting the ODU mapped with the OTN format line side service into VC.
3. The conversion unit according to claim 1, wherein when the SDH scheduling unit is a VC cell in a virtual container and the OTN scheduling unit is an ODU cell in an optical channel data unit, the conversion unit is specifically configured to convert a VC cell mapped with a customer side service in an SDH format into a VC, convert the converted VC into an ODU, and convert the converted ODU into an ODU cell in a cross-scheduling process from the customer side service to a line side; in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into an ODU, the converted ODU is converted into VC, and the converted VC is converted into a VC cell.
4. An optical transmission system apparatus, characterized in that the apparatus comprises a conversion unit according to any one of claims 1-3 and a cross-over unit;
the cross unit is used for cross-dispatching the OTN dispatching unit converted by the conversion unit to the OTN line side unit in the cross dispatching process of the client side service to the line side; and in the process of cross scheduling of the line side service to the client side, the SDH scheduling units converted by the conversion unit are cross scheduled to an SDH client side unit.
5. The apparatus of claim 4, wherein the cross unit is further configured to cross-schedule the OTN scheduling units mapping the client-side OTN traffic to the OTN line-side unit in a cross-scheduling process from the client-side traffic to the line-side; and in the process of cross-dispatching the line side service to the client side, cross-dispatching the OTN dispatching units for mapping the OTN format line side service to the OTN client side unit.
6. The apparatus according to claim 4, wherein said apparatus further comprises said SDH client side unit;
the SDH client side unit is used for demapping the SDH format client side service into an SDH scheduling unit in the cross scheduling process of the client side service to the line side; and in the process of cross-dispatching the line side service to the client side, mapping the cross-dispatched SDH dispatching units into SDH format client side service.
7. The apparatus of claim 5, wherein the apparatus further comprises the OTN client-side unit;
the OTN client side unit is used for mapping the client side OTN service to the OTN scheduling unit in the cross scheduling process of the client side service to the line side; and in the process of cross-dispatching the line side service to the client side, the OTN format client side service is demapped from the OTN dispatching unit which is cross-dispatched.
8. The device of claim 4, wherein the device further comprises the OTN line-side unit;
the OTN line side unit is used for multiplexing the OTN scheduling unit which is subjected to cross scheduling to the line side service in an OTN format in the cross scheduling process from the client side service to the line side; and in the process of cross scheduling of the line side service to the client side, demultiplexing the OTN scheduling unit from the OTN format line side service.
9. The apparatus according to claim 4 or 5, wherein the SDH format is synchronous transport modules of different rate classes, and the OTN format is an optical channel transport unit of different rate classes.
10. A method of converting an optical transmission system device, the method comprising:
in the cross scheduling process from the client side service to the line side, the SDH scheduling unit of the client side service in the SDH format mapped synchronous digital sequence is converted into an optical transport network OTN scheduling unit;
in the process of cross scheduling of line side service to client side, converting OTN scheduling units mapping OTN format line side service into SDH scheduling units;
when the SDH scheduling unit is a first-order virtual container VC and a second-order virtual container VC, and the OTN scheduling unit is an optical channel data unit ODU, the SDH scheduling unit that maps a synchronous digital sequence SDH format client side service is converted into an optical transport network OTN scheduling unit in a cross scheduling process of the client side service to a line side, including:
in the cross dispatching process of the client side service to the line side, demapping the first-order VC mapped with the SDH format client side service to a second-order VC, performing VC crossing on the demapped second-order VC, and mapping the crossed second-order VC to the first-order VC; converting the mapped first-order VC into an ODU;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching unit mapped with the OTN format line side service into the SDH dispatching unit comprises the following steps:
and in the process of cross scheduling of the line side service to the client side, converting the ODU mapped with the OTN format line side service into a first-order VC, demapping the converted first-order VC to a second-order VC, and mapping the demapped second-order VC to the first-order VC.
11. The method according to claim 10, wherein when said SDH scheduling unit is a virtual container VC and said OTN scheduling unit is an optical channel data unit ODU, said converting the SDH scheduling unit mapping SDH format client side traffic into an optical transport network OTN scheduling unit in a cross-scheduling process of client side traffic to line side, comprises:
in the cross dispatching process of the client side service to the line side, converting VC mapped with SDH format client side service into ODU;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching unit mapped with the OTN format line side service into the SDH dispatching unit comprises the following steps:
and in the process of cross-dispatching the line side service to the client side, converting the ODU mapped with the OTN format line side service into VC.
12. The method according to claim 10, wherein when the SDH scheduling unit is a virtual container VC cell and the OTN scheduling unit is an optical channel data unit ODU cell, the converting SDH scheduling unit that maps SDH format client side traffic into an optical transport network OTN scheduling unit in a cross-scheduling process of client side traffic to a line side includes:
in the cross scheduling process from the client side service to the line side, converting VC cells mapping the SDH format client side service into VC, converting the converted VC into ODU, and converting the converted ODU into ODU cells;
in the process of cross-dispatching the line side service to the client side, the method for converting the OTN dispatching units for mapping the OTN format line side service into SDH dispatching units comprises the following steps:
in the process of cross-dispatching the line side service to the client side, the ODU cell mapped with the OTN format line side service is converted into an ODU, the converted ODU is converted into VC, and the converted VC is converted into a VC cell.
13. An optical transmission system apparatus, characterized in that the apparatus comprises a memory storing a conversion program and a processor executing the conversion program to implement the steps of the method according to any one of claims 10-12.
14. A readable storage medium, characterized in that the storage medium stores a conversion program executable by at least one processor to implement the steps of the method according to any one of claims 10-12.
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