Embodiments of the present invention relate to the field of communication technologies, and particularly, to a mapping technique in an optical transport network.
With the quick development of communication technology, the Optical Transport Network (OTN) with advantages of flexible scheduling and management of large capacity services is increasingly becoming a major technology of the backbone transport network. In the OTN, the client data is encapsulated into an Optical Channel Payload Unit (OPU), some overhead (OH) is added to the OPU to constitute an Optical Channel Data Unit (ODU), some OH and Forward Error Correction (FEC) is added into the ODU to constitute an Optical Channel Transport Unit (OTU), and is finally transmitted in the form of OTU.
With the rapid development of data service, more and more clients adopt Ethernet technology as the physical interface at the client side. It is foreseeable that in the coming years, the Ethernet service will keep a continuous high-speed growth. However, the current OTN technology is designed based on speech service such as synchronous digital hierarchy (SDH), and cannot well support the development trend of data service like Ethernet, thus studies are gradually carried out on the next generation of OTN network (NG OTN). The NG OTN is required to not only meet the requirements of services newly appear, but also bear the current OTN. Thus how to map a Lower Order Optical Channel Data Unit (LO ODU) to a Higher Order Optical Channel Data Unit (HO ODU) is a focus being discussed in the industry. The LO ODU may be ODUk (k=0, 1, 2, 2e, 3, 3e) existing in the current OTN, and herein represented as LO ODUk (k=0, 1, 2, 2e, 3, 3e); the HO ODU may be regarded as a data transmission unit of higher rate, which belongs to the category of the NG OTN and is used for bearing the LO ODU, the corresponding OPU is represented as HO OPUk (k=1, 2, 3, 3e, 4).
The conventional technical solution maps the standard ODUj (j=1, 2) (for 20 ppm bit tolerance) into the OPUk (k=2, 3) in an asynchronous manner. The asynchronous method maps the ODUj signal into the OPUk through an adjustment policy of −1/0/+1/+2. With the asynchronous manner, a maximum bit error tolerance between ODU1 and OPU2 is −113 to +83 ppm, a maximum bit error tolerance between ODUland OPU3 is −96 to +101 ppm, and a maximum bit error tolerance between ODU2 and OPU3 is −95 to +101 ppm.
However, the conventional method is not suitable for mapping the LO ODU into the HO ODU, e.g. for ODU2e (100 ppm bit tolerance), etc. ODUflex of higher bit tolerance may occur, and the adjustment policy of −1/0/+1/+2 does not meet the requirement for mapping the LO ODU into the HO ODU.
The embodiments of the present invention provide method and apparatus for mapping and de-mapping in an Optical Transport Network (OTN), so as to map a Low Order Optical Channel Data Unit (LO ODU) signal into a High Order Optical Channel Payload Unit (HO ODU) universally and efficiently.
The embodiments of the present invention provide a mapping method in an OTN.
First, a Low Order Optical Channel Data Unit (LO ODU) signal is mapped into a payload area of an Optical Channel Data Tributary Unit (ODTU) signal in units of M bytes, wherein M is equal to the number of time slots of a High Order Optical Channel Payload Unit (HO OPU) that are to be occupied by the ODTU signal, and M is an integer larger than 1.
And, overhead information is encapsulated to an overhead area of the ODTU signal.
Finally, the ODTU signal is multiplexed into the HO OPU.
The embodiment of the present invention also provides an apparatus for processing data in an OTN.
The apparatus comprises a processor and a computer readable medium having a plurality of computer executable instructions stored thereon. The instructions when executed by the processor, would cause the processor to perform the steps of above mapping method.
The embodiments of the present invention also provide a de-mapping method in an OTN.
In the de-mapping method, first parse a HO OPU to obtain an ODTU signal.
Then, de-map in units of M bytes to obtain a Low Order Optical Channel Data Unit (LO ODU) signal from a payload area of the ODTU signal, wherein M is equal to the number of time slots of the HO OPU that are occupied by the ODTU, and M is an integer larger than 1.
The embodiments of the present invention further provide a de-mapping apparatus in an OTN.
The de-mapping apparatus comprises a processor and a computer readable medium having a plurality of computer executable instructions stored thereon. The instructions when executed by the processor, would cause the processor to perform the steps of above de-mapping method.
The embodiments of the present invention further provide a mapping apparatus in an OTN. The mapping apparatus comprises a mapping unit, a encapsulating unit and a multiplexing unit. The mapping unit is configured to map a Low Order Optical Channel Data Unit (LO ODU) signal into a payload area of an Optical Channel Data Tributary Unit (ODTU) signal in units of M bytes, wherein M is equal to the number of time slots of a High Order Optical Channel Payload Unit (HO OPU) that are to be occupied by the ODTU signal, and M is an integer larger than 1. The encapsulating unit is configured to encapsulate overhead information to an overhead area of the ODTU signal. The multiplexing unit is configured to multiplexing the ODTU signal into the HO OPU.
The embodiments of the present invention further provide a de-mapping apparatus in an OTN. The de-mapping apparatus comprises a paring unit, a de-mapping unit. The parsing unit is configured to parse a High Order Optical Channel Payload Unit (HO OPU) to obtain an Optical Channel Data Tributary Unit (ODTU) signal. The de-mapping unit is configured to de-map in units of M bytes to obtain a Low Order Optical Channel Data Unit (LO ODU) signal from a payload area of the ODTU signal, wherein M is equal to the number of time slots of the HO OPU that are occupied by the ODTU, and M is an integer larger than 1.
In the above embodiments, optionally, the encapsulated overhead information may comprises information indicating the number of M-byte data units of the LO ODU signal that are mapped during a multi-frame period
According to at least some of the embodiments of the present invention a high-efficient and universal mode for mapping LO ODU to HO OPU is achieved.
In order to describe the technical solutions of the embodiments of the present invention more clearly, the drawings needed for describing the embodiments are introduced briefly as follows. It is apparent that the following drawings are just some embodiments of the present invention, and a person skilled in the art can obtain other drawings based on these drawings without paying a creative effort.
The technical solutions of the embodiments of the present invention are clearly described as follows in conjunction with the drawings of the embodiments. It is apparent that the described embodiments are just a part of embodiments of the present invention, instead of all embodiments thereof. Based on the embodiments of the present invention, other embodiments, which are obtained by a person skilled in the art without paying a creative effort, all fall within the protection scope of the present invention.
At the data transmitting side, as shown in
For the convenience of understanding the embodiments of the present invention, the implementation processes of those embodiments during specific applications are described in detail as follows.
The mapping method in an OTN according to an embodiment of the present invention includes:
The step includes:
Specifically, the amount M of the time slots of the HO OPU to be occupied by the LO ODU may be determined according to the rate of the LO ODU and the rate of a single time slot of the HO OPU, i.e. M=upper rounding of (the rate of the LO ODU/the rate of a single time slot of the HO OPU). For example, HO OPU2 is divided into eight 1.25 G time slots, and eight frames of HO OPU2 forms a large multi-frame, as shown in
Of course, other methods may also be adopted to determine M and allocate the time slots to be occupied. Meanwhile, they are not limited by the embodiments of the present invention, and fall within the protection scope of the embodiments of the present invention.
The ODTU includes M time slots, and further includes Justification Control Overhead (JC OH) corresponding to JC OH position of the HO OPU. As shown in
The step includes:
In which, the method for acquiring X is existing, and hence is not described in the embodiments of the present invention.
Specifically, the embodiment of the present invention may use the following method to determine “C8M+C8-delta”:
C8M,MAX=(LO ODU rate*LO ODU maximum frequency deviation)/(M*TS rate*TS minimum frequency deviation)*15232
C8M,MIN=(LO ODU rate*LO ODU minimum frequency deviation)/(M*TS rate*TS maximum frequency deviation)*15232
Where C8M is an integer value with a range of [C8M, MIN lower rounding, C8M, MAX upper rounding]. C8-delta is X−M*C8M, indicating the clock information, where X is C8, and C8 is an integer value with a range of [C8, MIN lower rounding, C8, MAX upper rounding].
C8,MAX=(LO ODU rate*LO ODU maximum frequency deviation)/(TS rate*TS minimum frequency deviation)*15232
C8,MIN=(LO ODU rate*LO ODU minimum frequency deviation)/(TS rate*TS maximum frequency deviation)*15232
Assuming a certain LO ODU has its X=76111 and occupies M=5 time slots, then C8M=(X/M) lower rounding=15222, C8-delta=X−M*C8M=1. Or C8M=(X/M) lower rounding+1=15223, C8-delta=X−M*C8M=−4. The mapped data information and clock information can be completely reflected by transmitting the information “C8M+C8-delta”, i.e. (15222, 1) or (15223, −4). The receiving side may perceive, according to (15222, 1) or (15223, −4), that the transmitting side needs to transmit client data of 76111 bytes during one multi-frame period, so as to accurately recover the client clock at the receiving side.
The present invention may also use other methods to determine “C8M+C8-delta”. Meanwhile, they are not limited by the embodiments of the present invention, and all fall within the protection scope of those embodiments.
S22: mapping the amount of the LO ODU(s) of M-byte to the payload area of the ODTU in the M-byte granularity.
Mapping in the M-byte granularity means performing one time of mapping operation of M bytes of client data as a whole; as the above example, mapping the amount of the LO ODU(s) of M-byte to the payload area of the ODTU in the M-byte granularity means mapping 15222 or 15223 LO ODUs of 5-byte to the payload area of the ODTU, performing the mapping operation every 5 bytes of LO ODU, and totally mapping for 15,222 or 15,223 times.
Specifically, the sigma-delta algorithm or other Generic Mapping Procedure (GMP) mapping methods may be used to map the LO ODU(s) to the payload area of the ODTU, the other GMP mapping methods meet the following characteristics:
The characteristic information of the GMP mapping method in the embodiments of the present invention is further described with the following two mapping modes, but is not limited by the two mapping modes.
Mapping mode 1: evenly distributing filling data and mapping signal data to the payload area through the sigma-delta algorithm. Information such as positions of the filling and mapping signals is carried and transported by the overhead of the target container; the effect after the mapping is shown in
Mapping mode 2: concentratedly placing the filling data in a fixed position of the payload area, and determining which portions in the payload area are for the filling data and which portions in the payload area are for the mapping signal data according to the filling amount. Information such as positions of the filling and mapping signals is carried and transported by the overhead of the target container; the effect after the mapping is shown in
S3: encapsulating overhead information to the payload area of the ODTU;
In an embodiment of the present invention, the overhead information includes the amount information of the LO ODU(s) of M-byte, and encapsulating the overhead information to the payload area of the ODTU includes:
Specifically, encapsulating the amount information of the LO ODU(s) of M-byte to the overhead area of the ODTU includes:
In another embodiment of the invention, the overhead information includes the amount information of the LO ODU(s) of M-byte and the clock information,
Specifically, encapsulating the amount information of the LO ODU(s) of M-byte and the clock information to the overhead area of the ODTU includes:
Encapsulating the overhead information to the overhead area of the ODTU includes:
The overhead information indicates clock information and an amount of the LO ODU(s) of M-byte mapped to the ODTU in next n multi-frames, or indicates clock information and an amount of the LO ODU(s) of M-byte mapped to the ODTU in next n frames, where n is a natural number.
In an embodiment of the present invention, the “C8M+C8-delta” information indicates conditions of the clock information and an amount of M-bytes in the LO ODU(s) mapped to the ODTU in the next multi-frame.
If the “C8M+C8-delta” information is encapsulated to the JC OH corresponding to the first time slot in the ODTU, i.e. the JC OH position of the 2nd frame of HO OPU corresponding to the time slot 2 in the current multi-frame, then the mapping process is shown in
In another one embodiment of the invention, the “C8M-base+C8M-delta+C8-delta” information indicates conditions of the clock information and an amount of M-bytes in the LO ODU(s) mapped to the ODTU in the next frame of HO OPU.
Also taking HO OPU2 as an example, in the embodiment, as shown in
In the embodiment of the present invention, the information “C8M-base+C8M-delta+C8-delta” may be encapsulated in the following mode, but not limited thereby, as shown in
In which, C8M-base occupies 13 bits, C8M-delta occupies 3 bits, C8-delta occupies 8 bits, and FEC occupies 8 bits; herein the FEC error correcting function is added, and an encoding mode of BCH (16, 12) may be used to achieve an effect of correcting an error of lbit, and improve the reliability of the information “C8M-base+C8M-delta+C8-delta” during transportation. In addition, the FEC may also be replaced by CRC, and the information “C8M-base+C8M-delta+C8-delta” received at the receiving side is ensured as correct through a CRC verification.
S4: multiplexing the ODTU, which has been mapped the LO ODU and encapsulated with the overhead information, to the HO OPU.
The mapping method in an OTN according to the embodiment of the present invention not only provides a high-efficient and universal mode for mapping the LO ODU to the HO OPU, compatible with processes of mapping LO ODU to HO OPU in different granularities for the convenience of interconnection, but also separates the data information from the clock information to mapping in a large granularity, and carries the clock information with the byte granularity to solve the problem of poor performance of clock recovered at the receiving side caused by mapping only with large granularity.
Correspondingly, at the data receiving side, as shown in
De-mapping the LO ODU from the payload area of the ODTU in the M-byte granularity includes:
De-mapping the LO ODU of M-byte from the payload area of the ODTU in the M-byte granularity further includes:
As shown in
As shown in
In another embodiment of the present invention, the determining module is further adopted for determining clock information according to the amount X of the LO ODU to be transmitted during each multi-frame period; and
As shown in
The detailed contents about signal processing and executions among the components of the above apparatuses are based on the same concept of the method embodiments of the present invention, please refer to the descriptions of the method embodiments of the present invention, and herein are not described.
The above descriptions are just some exemplary embodiments of the present invention, and the protection scope of the present invention is not limited thereby. Any modification or substitution that can be easily conceived by a person skilled in the art within the technical scope disclosed by the present invention shall be covered by the protection scope of the present invention. Therefore, the protection scope of the present invention shall be subject to that of the claims.
Number | Date | Country | Kind |
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200910106028.2 | Mar 2009 | CN | national |
This application is a continuation of U.S. patent application Ser. No. 15/859,092, filed on Dec. 29, 2017, which is a continuation of U.S. patent application Ser. No. 15/073,439, filed on Mar. 17, 2016, now U.S. Pat. No. 9,882,672, which is a continuation of U.S. patent application Ser. No. 14/566,478, filed on Dec. 10, 2014, now U.S. Pat. No. 9,312,982, which is a continuation application of U.S. patent application Ser. No. 12/712,675, filed on Feb. 25, 2010, now U.S. Pat. No. 8,948,205, which claims the benefit of priority to Chinese Patent Application No. 200910106028.2, filed on Mar. 9, 2009. All of the afore-mentioned patent applications are hereby incorporated by reference in their entireties.
Number | Name | Date | Kind |
---|---|---|---|
7894482 | Wu et al. | Feb 2011 | B1 |
8948205 | Vissers | Feb 2015 | B2 |
9312982 | Vissers | Apr 2016 | B2 |
9882672 | Vissers | Jan 2018 | B2 |
10505662 | Vissers | Dec 2019 | B2 |
20020142757 | Leung et al. | Oct 2002 | A1 |
20030048813 | Lahav et al. | Mar 2003 | A1 |
20050068995 | Lahav et al. | Mar 2005 | A1 |
20050163162 | Lanzone et al. | Jul 2005 | A1 |
20050286521 | Chiang et al. | Dec 2005 | A1 |
20060104309 | Vissers et al. | May 2006 | A1 |
20070071443 | Fukumitsu et al. | Mar 2007 | A1 |
20070076769 | Zou | Apr 2007 | A1 |
20070104485 | Zhang | May 2007 | A1 |
20070189336 | Zou | Aug 2007 | A1 |
20070248121 | Zou | Oct 2007 | A1 |
20090074410 | Zou et al. | Mar 2009 | A1 |
20090086767 | Li | Apr 2009 | A1 |
20100014857 | Haas | Jan 2010 | A1 |
20100074624 | Miller et al. | Mar 2010 | A1 |
20100221005 | Zhao | Sep 2010 | A1 |
20100226652 | Vissers et al. | Sep 2010 | A1 |
20110044686 | Wu et al. | Feb 2011 | A1 |
20120002671 | Xiao et al. | Jan 2012 | A1 |
20120281895 | Chono et al. | Nov 2012 | A1 |
20120281985 | Honma et al. | Nov 2012 | A1 |
Number | Date | Country |
---|---|---|
1790993 | Jun 2006 | CN |
101051879 | Oct 2007 | CN |
101800614 | Aug 2010 | CN |
101800912 | Aug 2010 | CN |
101834688 | Aug 2010 | CN |
1826926 | Aug 2007 | EP |
2120380 | Nov 2009 | EP |
2148476 | Jan 2010 | EP |
2007096822 | Apr 2007 | JP |
2008092414 | Apr 2008 | JP |
2008258785 | Oct 2008 | JP |
2009243809 | Oct 2009 | JP |
2005135117 | May 2007 | RU |
2345494 | Jan 2009 | RU |
2008122218 | Oct 2008 | WO |
2008125060 | Oct 2008 | WO |
2010088856 | Aug 2010 | WO |
2010091604 | Aug 2010 | WO |
Entry |
---|
“G.709 amendment 3 (for consent),” Study Group 15 TD 24R1 (PLEN/15), Study Period 2009-2012, ITU-T Recommendation G.709/Y.1331, pp. 1-65, International Telecommunication Union, Geneva, Switzerland (Dec. 1-12, 2008). |
“Series G: Transmission Systems and Media, Digital Systems and Networks; Digital terminal equipments—General; Series Y: Global Information Infrastructure, Internet Protocol Aspects and Next Generation Networks; Internet protocol aspects—Transport; Interfaces for the Optical Transport Network (OTN),” ITU-T Rec. G.709/Y.1331, pp. 1-118, XP017400848, International Telecommunications Union, Geneva, Switzerland (Mar. 2003). |
“Series G: Transmission Systems and Media, Digital Systems and Networks; Digital terminal equipments—General; Series Y: Global Information Infrastructure, Internet Protocol ˜Spects and Next-Generation Networks Internet protocol aspects—Transport; Interfaces for the Optical Transport Network (OTN) Corrigendum 2,” Recommendation G.709/Y.1331 Corrigendum 2, pp. 1-8, International Telecommunication Union, Geneva, Switzerland (Jan. 2009). |
“Series G: Transmission Systems and Media, Digital Systems and Networks; Digital terminal equipments—General; Series Y: Global Information Infrastructure, Internet Protocol Aspects and Next-Generation Networks; Internet protocol aspects—Transport, Interface for the Optical Transport Network (OTN),” ITU-T Rec. G.709/Y1331, XP002618904, pp. 1-173, International Telecommunications Union, Geneva, Switzerland (Dec. 2009). |
Number | Date | Country | |
---|---|---|---|
20200092029 A1 | Mar 2020 | US |
Number | Date | Country | |
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Parent | 15859092 | Dec 2017 | US |
Child | 16691273 | US | |
Parent | 15073439 | Mar 2016 | US |
Child | 15859092 | US | |
Parent | 14566478 | Dec 2014 | US |
Child | 15073439 | US | |
Parent | 12712675 | Feb 2010 | US |
Child | 14566478 | US |