The present invention relates to a method of assessing a failure in a transmission path optical fiber and an apparatus for the same. More particularly, the present invention relates to a method of assessing a failure in a transmission path optical fiber and an apparatus for the same, which assess the failure in the transmission path optical fiber in a short time in a WDM apparatus by transmitting a SV signal in which wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station are carried from the WDM apparatus of its own station in an OADM system and also collecting wavelength reception discontinuity information and SV wavelength reception discontinuity of other stations in the WDM apparatus.
Conventionally, an apparatus for assessing a failure in a transmission path optical fiber in an OADM (optical add/drop multiplexer) system assesses only a discontinuity failure of a wavelength input to its own station in an optical wavelength inserting/branching apparatus, that is, a WDM (wavelength division multiplex) apparatus, as shown in
A WDM apparatus 200 shown in
A WDM apparatus 300 shown in
As a method of checking a failure in a transmission path optical fiber in the OADM system, an OTDR (optical time delay refrectometer) method using an SV signal of a plurality of wavelengths or a single wavelength has been proposed in Patent Documents 1 and 2.
However, the following problems arise if the assessment of a discontinuity failure of a wavelength input to its own station in a WDM apparatus of the related art is applied to the OADM system although a failure in a transmission path optical fiber can be assessed in a one-to-one facing state.
The first problem is that wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station are not periodically transmitted to other stations because the WDM apparatus does not have a function of transmitting wavelength discontinuity information of a signal wavelength and an SV wavelength by the SV wavelength.
The second problem is that wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations are not periodically collected because the WDM apparatus does not have a function of receiving different SV wavelengths.
The third problem is that a process of collecting failure information of each station by an external supervisory apparatus or the like and manually analyzing a plurality of pieces of failure information is time-consuming because the WDM apparatus does not have means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station and means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations and the WDM apparatus does not have a management table for a failure in a transmission path optical fiber.
The OTDR method in Patent Document 1 or 2 is an effective and necessary means for measuring a loss fluctuation or failure distance of a transmission path optical fiber determined to have a failure. However, because this method has a limitation in that all signal outputs of a measurement path are stopped or a measurement time of several tens of minutes to several hours is necessary, there is a problem in that a communication system in service cannot constantly supervise the failure in the transmission path optical fiber.
The present invention has been made to solve the above-described problems. An object of the present invention is to provide a method of assessing a failure in a transmission path optical fiber and an apparatus for the same, which assess the failure in the transmission path optical fiber in a short time in a WDM apparatus of its own station by transmitting an SV signal in which wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station are carried in the WDM apparatus of its own station and also collecting wavelength reception discontinuity information and SV wavelength reception discontinuity of other stations in the WDM apparatus of its own station.
In order to achieve the above-described object, a method for assessing a failure in a transmission path optical fiber according to the present invention includes: detecting information on wavelength discontinuity of a signal wavelength and wavelength discontinuity of a SV wavelength of an own station, periodically transmitting the detected information to other stations, and periodically collecting, in the own station, information on wavelength discontinuity and wavelength discontinuity of an SV wavelength detected by other stations; and assessing a failure in a transmission path optical fiber based on the detected information and the collected information.
In the method for assessing a failure in a transmission path optical fiber, a failure in the transmission path optical fiber may be assessed by comparing the detected information and the collected information with a pre-stored management table for a failure in the transmission path optical fiber.
In order to achieve the above-described object, an apparatus for assessing a failure in a transmission path optical fiber according to the present invention includes: a detection unit which detects information on wavelength discontinuity of a signal wavelength and wavelength discontinuity of an SV wavelength of an own station; a transmission unit which periodically transmits the information detected by the detection unit to other stations; a collection unit which periodically receives and collects, in the own station, information on wavelength discontinuity and wavelength discontinuity of an SV wavelength detected by other stations; and an assessment unit which assesses a failure in a transmission path optical fiber based on the information detected by the detection unit and the information collected by the collection unit.
In the apparatus for assessing a failure in a transmission path optical fiber, the assessment unit may assess a failure in the transmission path optical fiber by comparing the information detected by the detection unit and the information collected by the collection unit with a pre-stored management table for a failure in the transmission path optical fiber.
In a method for assessing a failure in a transmission path optical fiber according to an exemplary embodiment of the present invention, a WDM apparatus transmits an SV signal in which wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station are carried and collects wavelength reception discontinuity information and SV wavelength reception discontinuity of other stations. Thus, the WDM apparatus can assess the failure in the transmission path optical fiber in a short time.
An apparatus for assessing a failure in a transmission path optical fiber according to an exemplary embodiment of the present invention has a function of detecting wavelength discontinuity of a signal wavelength and an SV wavelength and a function of transmitting wavelength discontinuity information thereof by the SV wavelength in an SV circuit of the WDM apparatus. Consequently, it is possible to periodically transmit wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station to other stations. In addition, the assessing apparatus has a function of receiving different SV wavelengths in the SV circuit of the WDM apparatus. Consequently, it is possible to periodically collect wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations. Furthermore, the assessing apparatus has means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station and means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations in the WDM apparatus. Consequently, the assessing apparatus can assess a failure in a transmission path optical fiber in a short time without manual intervention by making a comparison with a management table for the failure in the transmission path optical fiber pre-stored in the WDM apparatus.
Hereinafter, an exemplary embodiment for carrying out the present invention will be described with reference to the drawings.
In
The branch station C of the branch stations C and D is connected to a transmission path via a branch unit 5BU. That is, the branch unit 5BU is connected to the up direction Ud of the transmission direction via the add/drop circuit 51, and is also connected to the down direction Dd via the add/drop circuit 52. The branch station D is connected to the up direction Ud of the transmission direction via the add/drop circuit 61, and is also connected to the down direction Dd via the add/drop circuit 62.
In
From
The WDM apparatus 2 of the trunk station B can transmit the wavelength groups WG4, WG5, and WG6 and the SV wavelength b to the down direction Dd (see
The WDM apparatus 3 of the branch station C can transmit the wavelength group WG1 and the SV wavelength c1 to the up direction Ud, and receive the wavelength group WG1 and the SV wavelength a from the up direction Ud (see
The WDM apparatus 4 of the branch station D can transmit the wavelength group WG2 and the SV wavelength d1 to the up direction Ud, and receive the wavelength group WG2 and the SV wavelengths a and c1 from the up direction Ud (see
By the add/drop circuit 51, the above-described branch unit 5BU outputs (or drops) the wavelength group WG1 and the SV wavelength a from the WDM apparatus 1 to the WDM apparatus 3, and multiplexes (or adds) the wavelength group WG1 and the SV wavelength c1 from the WDM apparatus 3 and the wavelength groups WG2 and WG3 and the SV wavelength a after the removal of the wavelength group WG1 from the WDM apparatus 1, and outputs them to the branch unit 6BU.
Also, by the add/drop circuit 52, the branch unit 5BU outputs (or drops) the wavelength group WG4 and the SV wavelengths b and d2 from the branch unit 6BU to the WDM apparatus 3, and multiplexes (or adds) the wavelength group WG4 and the SV wavelength c2 from the WDM apparatus 3 and the wavelength groups WG5 and WG6 and the SV wavelengths b and d2 after the removal of the wavelength group WG4 from the branch unit 6BU, and outputs them to the WDM apparatus 1.
By the add/drop circuit 61, the branch unit 6BU outputs (or drops) the wavelength group WG2 and the SV wavelengths a and c1 from the branch unit 5BU to the WDM apparatus 4, and multiplexes (or adds) the wavelength group WG2 and the SV wavelength d1 from the WDM apparatus 4 and the wavelength groups WG1 and WG3 and the SV wavelengths a and c1 after the removal of the wavelength group WG2 from the branch unit 5BU, and outputs them to the WDM apparatus 2.
Also, by the add/drop circuit 62, the branch unit 6BU outputs (or drops) the wavelength group WG5 and the SV wavelength b from the WDM apparatus 2 to the WDM apparatus 4, and multiplexes (or adds) the wavelength group WG5 and the SV wavelength d2 from the WDM apparatus 4 and the wavelength groups WG4 and WG6 and the SV wavelength b after the removal of the wavelength group WG5 from the WDM apparatus 2, and outputs them to the branch unit 5BU.
As shown in
As shown in
Furthermore, the WDM apparatus 3 has a wavelength multiplexing/demultiplexing unit 34, an SV circuit 35, and branching units 36 and 37. The wavelength multiplexing/demultiplexing unit 34 wavelength-multiplexes the wavelength group WG4 and wavelength-demultiplexes the wavelength group WG1. The branching unit 36 outputs the wavelength-multiplexed WG4 to other apparatuses, and also branches it to the SV circuit 35. The branching unit 37 branches an input wavelength group and SV wavelength into the wavelength multiplexing/demultiplexing unit 34 and the SV circuit 35.
In
The filter 112-1 extracts only the SV wavelength b. An O/E 113-1 performs optical/electrical conversion on the SV wavelength b. A CODEC 114-1 decodes encoded data. A framer 115-1 extracts, from the decoded data, wavelength reception discontinuity information b-r1 and SV wavelength reception discontinuity information b-r2 of the WDM apparatus 2 (the trunk station B) transmitted by the SV wavelength b.
The filter 112-2 extracts only the SV wavelength c2. An O/E 113-2 performs optical/electrical conversion on the SV wavelength c2. A CODEC 114-2 decodes encoded data. A framer 115-2 extracts, from the decoded data, wavelength reception discontinuity information c2-r1 and SV wavelength reception discontinuity information c2-r2 of the WDM apparatus 3 (the branch station C) transmitted by the SV wavelength c2.
The filter 112-3 extracts only the SV wavelength d2. An O/E 113-3 performs optical/electrical conversion on the SV wavelength d2. A CODEC 114-3 decodes encoded data. A framer 115-3 extracts, from the decoded data, wavelength reception discontinuity information d2-r1 and SV wavelength reception discontinuity information d2-r2 of the WDM apparatus 4 (the branch station D) transmitted by the SV wavelength d2.
The wavelength discontinuity detector 116 detects the presence/absence of wavelengths of the wavelength groups WG4, WG5, and WG6 and the SV wavelengths b, c2, and d2 input to its own station, and extracts wavelength reception discontinuity information a2-r1 and SV wavelength reception discontinuity information a2-r2.
A CPU 117 assesses a failure by comparing extracted wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station and other stations with a pre-stored management table for a failure in a transmission path optical fiber.
A framer 118 generates a frame in which the wavelength reception discontinuity information a2-r1 and the SV wavelength reception discontinuity information a2-r2 are transmitted to other stations. A CODEC 119 encodes data. An E/O 120 performs electrical/optical conversion on the SV wavelength a.
Hereinafter, a failure assessment operation of this exemplary embodiment will be described using
If the failure in the transmission path optical fiber has occurred as described above, the WDM apparatus 1 detects a disconnection of the wavelength group WG4 and a disconnection of the SV wavelength c2 by the SV circuit 11 of its own station. Also, the WDM apparatus 1 transmits, by the SV wavelength a, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 1 to the WDM apparatuses 2 and 4. The information is not transmitted to the WDM apparatus 3 due to the failure in the transmission path optical fiber.
The WDM apparatus 2 detects a disconnection of the wavelength group WG1 and a disconnection of the SV wavelength c1 by the SV circuit 11 of its own apparatus. Also, the WDM apparatus 2 transmits, by the SV wavelength b, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 2 to the WDM apparatuses 1 and 4. The information is not transmitted to the WDM apparatus 3 due to the failure in the transmission path optical fiber.
The WDM apparatus 3 detects disconnections of the wavelength groups WG1 and WG4 and disconnections of the SV wavelengths a, b, and d2 by the SV circuit of its own apparatus. The information is not transmitted to the WDM apparatuses 1, 2, and 4 due to the failure in the transmission path optical fiber.
The WDM apparatus 4 detects a disconnection of the SV wavelength c1 by the SV circuit of its own apparatus. Also, the WDM apparatus 4 transmits, by the SV wavelengths d1 and d2, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 4 to the WDM apparatuses 1 and 2 by the SV wavelengths d1 and d2. The information is not transmitted to the WDM apparatus 3 due to the failure in the transmission path optical fiber.
States of the above-described reception discontinuity information are summarized in Table 1.
As described above, because the WDM apparatuses 1, 2, and 4 can collect wavelength reception discontinuity information and SV wavelength reception discontinuity information other than those of the WDM apparatus 3 of Table 1, it is possible to assess that the failure has occurred in the transmission path optical fiber between the branch unit 5BU and the branch station C by pre-inputting a management table of wavelength reception discontinuity information and SV wavelength reception discontinuity information during each failure to the CPU within the SV circuit and by comparing the table with acquired data. It is possible to assess a failure in a transmission path optical fiber if, like the WDM apparatus 3, a condition in which all wavelength groups and SV wavelengths to be received from other stations are discontinuous is input to the management table of the CPU within the SV circuit as a failure in a transmission path optical fiber between the branch unit 5BU and the branch station C.
If the failure in the transmission path optical fiber has occurred as described above, the WDM apparatus 1 does not detect wavelength reception discontinuity and SV wavelength reception discontinuity. Also, the WDM apparatus 1 transmits, by the SV wavelength a, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 1 to the WDM apparatuses 2 and 4. The information is not transmitted to the WDM apparatus 3 due to the failure in the fiber.
The WDM apparatus 2 detects a disconnection of the wavelength group WG1 and a disconnection of the SV wavelength c1 by the SV circuit of its own apparatus. Also, the WDM apparatus 2 transmits, by the SV wavelength b, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 2 to the WDM apparatuses 1, 3, and 4.
The WDM apparatus 3 detects a disconnection of the wavelength group WG1 and a disconnection of the SV wavelength a by the SV circuit of its own apparatus. Also, the WDM apparatus 3 transmits, by the SV wavelength c2 wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 3 to the WDM apparatus 1. The information is not transmitted to the WDM apparatuses 2 and 4 due to the failure in the fiber.
The WDM apparatus 4 detects a disconnection of the SV wavelength c1 by the SV circuit of its own apparatus. Also, the WDM apparatus 4 transmits, by the SV wavelengths d1 and d2, wavelength reception discontinuity information and SV wavelength reception discontinuity information of the WDM apparatus 4 to the WDM apparatuses 1, 2, and 3.
States of the above-described reception discontinuity information are summarized in Table 2.
As described above, the WDM apparatus 1 can collect wavelength reception discontinuity information and SV wavelength reception discontinuity information of all the apparatuses of Table 2. The WDM apparatus 2 can collect wavelength reception discontinuity information and SV wavelength reception discontinuity information other than those of the WDM apparatus 3 of Table 2. The WDM apparatus 3 can collect wavelength reception discontinuity information and SV wavelength reception discontinuity information other than those of the WDM apparatus 1 of Table 2. The WDM apparatus 4 can collect wavelength reception discontinuity information and SV wavelength reception discontinuity information other than those of the WDM apparatus 3 of Table 2. Therefore, it is possible to assess that the failure has occurred in the fibers F1 and F2 between the branch unit SBU and the branch station C by pre-inputting a management table of wavelength reception discontinuity information and SV wavelength reception discontinuity information during each failure to the CPU within the SV circuit and comparing the table with acquired data.
As described above, because wavelength reception discontinuity information or SV wavelength reception discontinuity information collected by each apparatus is different according to a failure position of the transmission path optical fiber, the WDM apparatus of each station can assess a failure in the transmission path optical fiber.
The apparatus for assessing a failure in a transmission path optical fiber configured as described above has a function of detecting wavelength discontinuity of a signal wavelength and an SV wavelength and a function of transmitting wavelength discontinuity information thereof by the SV wavelength in an SV circuit of the WDM apparatus, thereby periodically transmitting wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station to other stations. Also, the apparatus for assessing the failure in the transmission path optical fiber has a function of receiving different SV wavelengths in the SV circuit of the WDM apparatus, thereby periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations. Furthermore, the apparatus for assessing the failure in the transmission path optical fiber has means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station and means for periodically collecting wavelength reception discontinuity information and SV wavelength reception discontinuity information of other stations in the WDM apparatus, thereby assessing the failure in the transmission path optical fiber in a short time without manual intervention by making a comparison with a management table for the failure in the transmission path optical fiber pre-stored in the WDM apparatus.
Although the exemplary embodiment of the present invention have been described above with reference to the drawings, specific configurations are not limited to the above-described exemplary embodiment and various design changes may be made without departing from the scope of the present invention.
For example, although the two branch stations C and D are provided between the two trunk stations A and B in the above-described example, the number of branch stations may be one, or three or more.
This application is based upon and claims the benefit of priority from Japanese Patent Application No. 2009-050861, filed Mar. 4, 2009, the disclosure of which is incorporated in its entirety by reference.
The present invention is applicable to a method of assessing a failure in a transmission path optical fiber and an apparatus for the same. According to the method of assessing the failure in the transmission path optical fiber, it is possible to assess the failure in the transmission path optical fiber in a short time in a WDM apparatus of its own station by transmitting an SV signal in which wavelength reception discontinuity information and SV wavelength reception discontinuity information of its own station are carried in the WDM apparatus of its own station and also collecting wavelength reception discontinuity information and SV wavelength reception discontinuity of other stations in the WDM apparatus of its own station.
Number | Date | Country | Kind |
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2009050861 | Mar 2009 | JP | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/JP2010/001420 | 3/2/2010 | WO | 00 | 9/1/2011 |