TRANSMISSION DEVICE, RESTORATION METHOD, PROGRAM, AND TRANSMISSION SYSTEM
20220239369 · 2022-07-28
Inventors
- Kentaro Honda (Musashino-shi, Tokyo, JP)
- Hideki Maeda (Musashino-shi, Tokyo, JP)
- Masaaki INAMI (Musashino-shi, Tokyo, JP)
Cpc classification
International classification
Abstract
A transmission device (1) to replace a failed transmission device is provided with a search unit (12) that searches for an opposite transmission device, a path establishment unit (13) that establishes a communication path passing through the transmission device (1) and the opposite transmission device, an NW construction unit (14) that constructs, by using the established communication path, an individual NW in which at least the transmission device (1) and the opposite transmission device are arranged. In addition, the transmission device (1) is further provided with a restoration support unit (15) for applying setting by an OpS (Operation System) to the transmission device (1).
Claims
1. A transmission device to replace a failed transmission device, comprising: a search unit, including one or more processors, configured to search for an opposite transmission device; a path establishment unit, including one or more processors, configured to establish a communication path passing through the transmission device and the opposite transmission device; a network (NW) construction unit, including one or more processors, configured to construct, by using the established communication path, an individual network in which at least the transmission device and the opposite transmission device are arranged.
2. The transmission device according to claim 1, further comprising a restoration support unit, including one or more processors, configured to apply setting by an OpS (Operation System) to the transmission device.
3. The transmission device according to claim 1, wherein the NW construction unit is configured to form a management port in the constructed individual network for an external device to be connected to the individual network.
4. A restoration method executed by a transmission device to replace a failed transmission device, the restoration method comprising: a step of searching for an opposite transmission device; a step of establishing a communication path passing through the transmission device and the opposite transmission device; and a step of constructing, by using the established communication path, an individual network in which at least the transmission device and the opposite transmission device are arranged.
5. The restoration method according to claim 4, further comprising a step of applying setting by an OpS to the transmission device.
6. The restoration method according to claim 4, wherein further comprising a step of forming a management port in the constructed individual network for an external device to be connected to the individual network in the step of constructing the individual network.
7. A non-transitory computer readable medium storing a program to cause a transmission device to execute a restoration method comprising: a step of searching for an opposite transmission device; a step of establishing a communication path passing through the transmission device and the opposite transmission device; and a step of constructing, by using the established communication path, an individual network in which at least the transmission device and the opposite transmission device are arranged.
8. A transmission system comprising the transmission device according to claim 1.
9. The non-transitory computer readable medium according to claim 7, wherein the restoration program further comprises: a step of applying setting by an OpS to the transmission device.
10. The non-transitory computer readable medium according to claim 7, wherein the restoration program further comprises: a step of forming a management port in the constructed individual network for an external device to be connected to the individual network in the step of constructing the individual network
Description
BRIEF DESCRIPTION OF DRAWINGS
[0010]
[0011]
[0012]
[0013]
[0014]
[0015]
[0016]
DESCRIPTION OF EMBODIMENTS
[0017] Hereinafter, with reference to the drawings, an embodiment to implement the present invention (hereinafter, referred to as “the present embodiment”) will be described.
[0018] <Configuration>
[0019] The transmission device of the present embodiment is a device to be arranged in exchange for a transmission device that has failed due to a disaster or the like (hereinafter, may be referred to as a “failed transmission device”), and is a device in charge of optical transmission between stations. A transmission device 1 is for replacement, in which a setting by an OpS does not exist.
[0020] As shown in
[0021] The startup unit 11 executes processing according to the restoration mode when power is applied to the transmission device 1 that is arranged at a predetermined location in exchange for the failed transmission device and is connected to a predetermined transmission path or a predetermined transmission cable. The restoration mode is one of the processing aspects of the transmission device 1, and is the processing aspect that starts after power is applied. The restoration mode can cause the search unit 12, the path establishment unit 13, the NW construction unit 14, and the restoration support unit 15 to operate. In addition, “a predetermined location” can be, for example, a location where the failed transmission device has been arranged, but it is not be limited to this. For example, the predetermined location may be in the vicinity of the location where the failed transmission device has been arranged.
[0022] When the transmission path to which the transmission device 1 is to be connected is disconnected due to a disaster or the like, the transmission path is replaced with a transmission path that does not have disconnection or the like, to which the transmission device 1 is connected. In the present embodiment, the disconnection or the like of the transmission path to which the transmission device 1 is to be connected is considered as one aspect of the failures of the failed transmission device.
[0023] The search unit 12 searches for a transmission device with which the transmission device 1 can communicate (hereinafter, may be referred to as “an opposite transmission device”). If the opposite transmission device is a transmission device within the station, the search unit 12 is able to detect the opposite station with which the transmission device 1 can communicate. The search by the search unit 12 includes, for example, a colorless wavelength scanning, a directionless route scanning, a long-distance modulation technique of a plurality of kinds of modulation techniques to a transponder, but it is not limited to these.
[0024] The colorless wavelength scanning is a function to identify a communication wavelength that enables communication with the opposite transmission device by changing the communication wavelength used for transmission from the transmission device 1. The opposite transmission device without a failure performs transmission using a specific wavelength. However, as the setting by the OpS does not exist in the transmission device 1, it is unknown which wavelength should be used for reception. The colorless wavelength scanning can clarify at which wavelength the transmission device 1 should perform reception.
[0025] The directionless route scanning is a function to identify a transmission path to the opposite transmission device by switching the transmission path (route) from the transmission device 1. The failed transmission device is connected to a plurality of transmission paths, but these transmission paths include a transmission path in which communication setting is not practically performed. The directionless route scanning can identify a transmission path that is connected the opposite transmission device and in which the communication setting is performed.
[0026] The transmission device supports a plurality of kinds of techniques as modulation techniques of the transponder such as QPSK (Quadrature Phase Shift Keying) or 16QAM (Quadrature Amplitude Modulation). As a modulation technique used for the search of the search unit 12, it is preferable to adopt a modulation technique that implements optical transmission over a transmission range of a predetermined distance or more, from among the modulation techniques supported by the transponder.
[0027] The path establishment unit 13 establishes a communication path passing through the transmission device 1 and the opposite transmission device detected by the search of the search unit 12. For example, the established communication path includes an OSC (Optical Supervisory Channel) path and a GCCO (General Communication Channel 0) path, but it is not limited to these.
[0028] The NW construction unit 14 constructs an NW in which the transmission device 1 and the detected one or more opposite transmission devices are arranged (hereinafter, may be referred to as an “individual NW”) by using the communication path established by the path establishment unit 13. For example, the NW construction unit 14 can execute automatic IP allocation based on IPv6 (Internet Protocol Version 6) and automatic route selection (routing) by RIP (Routing Information Protocol) when the individual NW is constructed. For this reason, the individual NW can be a low loaded network that does not require presetting.
[0029] The restoration support unit 15 executes restoration support processing that is the processing required for restoration by using the individual NW constructed by the NW construction unit 14. Specifically, the restoration support processing includes a process related to a connection of the OpS by way of the individual NW, a process in which the setting by the OpS to the transmission device 1 is received, a process in which the setting by the OpS is applied to the transmission device 1, a process related to a connection to an external device via a management port that is prepared in the individual NW, and a process in which a remote chat and a telephone conference by the external device is received, but it is not limited to these.
[0030] <Processing>
[0031] Next, with reference to
[0032] The transmission system of
[0033] The transmission devices 1a to 1c are devices in charge of optical transmission between stations. Transmission intervals of the optical transmission are formed among the transmission devices 1a to 1c. The service nodes 2a and 2b provide a predetermined service by optical communication.
[0034] The OpS 3 is a software group that controls and manages the transmission system. The DCN devices 4a to 4d relay information exchanged between the OpS 3 and each of the transmission devices 1a to 1c. The information relayed by the DCN devices 4a to 4d includes a control monitoring signal for the OpS 3 to monitor the transmission devices 1a to 1c, the service nodes 2a and 2b, and the DCN devices 4a to 4d, but it is not limited to these.
[0035] At the normal time (the non-failure time), the service nodes 2a and 2b pass through the transmission devices 1a and 1b to establish a communication path P1.
[0036] As shown in
[0037] Then, as shown in
[0038] In the restoration processing of
[0039] Next, the transmission device 1 causes the search unit 12 to search for the opposite station without the setting by the OpS 3 (Step S2). The search unit 12 identifies the opposite transmission device, for example, by changing a communication wavelength through trial and error with the colorless wavelength scanning, and by changing the transmission path through trial and error with the directionless route scanning. In addition, the search unit 12 may identify the opposite transmission device, for example, by the long-distance modulation technique. In the restoration processing of
[0040] Next, the transmission device 1 causes the path establishment unit 13 to establish a communication path P2 without the setting by the OpS 3 (Step S3). The communication path P2 connects the service nodes 2a and 2b that pass through the replacing transmission device 1 and the transmission device 1b identified by the search unit 12.
[0041] Next, the transmission device 1 causes the NW construction unit 14 to constructs an individual NW 6 by using the communication path P2 without the setting by the OpS 3 (Step S4). The individual NW 6 is a low loaded network that does not require presetting, in which the replacing transmission device 1, the transmission device 1b identified by the search unit 12 as the opposite transmission device, and the transmission device 1c searched by the search unit 12 are arranged as shown in
[0042] Next, the transmission device 1 is connected to the OpS 3 via the individual NW 6 by the restoration support unit 15 (Step S5). The OpS 3 can select the replacing transmission device 1 as a target of the restoration. The OpS 3 performs setting for optical transmission to the selected transmission device 1. For example, the setting by the OpS 3 to the transmission device 1 can be the same as the setting performed to the transmission device 1a before the disaster, but it is not limited to this. Note that the content of the setting by the OpS 3 is well-known, and the explanation of the content itself will be omitted.
[0043] Note that, as shown in
[0044] Next, the transmission device 1 causes the restoration support unit 15 to apply the setting by the OpS 3 to the replacing transmission device 1 (Step S6). As shown in
[0045] With the above processes, the restoration processing of the transmission device 1 is completed. According to the restoration processing of the transmission device 1 (
[0046] <Hardware Configuration>
[0047] In addition, the transmission device 1 that has been described above is implemented by a computer z that is shown, for example, in a hardware configuration as shown in
[0048] The CPU 1z operates based on a program stored in the ROM 3z or the HDD 4z to control the respective units (including the startup unit 11, the search unit 12, the path establishment unit 13, the NW construction unit 14, and the restoration support unit 15). The ROM 3z stores a boot program executed by the CPU 1z when the computer z is started up, and a program dependent on a hardware of the computer z.
[0049] The HDD 4z stores a program executed by the CPU 1z, and data and the like used by the program. The communication I/F 5z receives data from another equipment via a communication network 9z and sends the data to the CPU 1z, and sends data generated by the CPU 1z to another equipment via the communication network 9z.
[0050] The CPU 1z controls, via the input and output IF 6z, output devices such as a display and a printer, and input devices such as a keyboard and mouse. The CPU 1z acquires data from the input device via the input and output I/F 6z. In addition, the CPU 1z outputs generated data to the output device via the input and output I/F 6z.
[0051] The media I/F 7z reads a program or data stored in a recording medium 8z, and provide the program or the data to the CPU 1z via the RAM 2z. The CPU 1z loads the program from the recording medium 8z to the RAM 2z via the media I/F 7z, and executes the loaded program. For example, the recording medium 8z is an optical recording medium such as a DVD (Digital Versatile Disc) or a PD (Phase change rewritable Disk), a magnetooptical recording medium such as an MO (Magneto Optical disk), a tape media, a magnetic recording media, a semiconductor memory, or the like.
[0052] For example, when the computer z functions as the transmission device 1, the CPU 1z of the computer z implements functions of the respective units by executing the programs loaded on the RAM 2z. When the programs are executed, the data or the like stored by the HDD 4z is used. The CPU 1z of the computer z executes these programs by reading these programs from the recording medium 8z. However, as an alternative example, the CPU 1z may obtain these programs from another equipment via the communication network 9z.
[0053] <Effects>
[0054] As has been described above, the transmission device 1 of the present embodiment is the transmission device 1 to replace the failed transmission device (the transmission device 1a), including the search unit 12 that searches for the opposite transmission device (the transmission device 1b), the path establishment unit 13 that establishes the communication path P2 passing through the transmission device 1 and the opposite transmission device, the NW construction unit 14 that constructs, by using the established communication path P2, the individual NW 6 in which at least the transmission device 1 and the opposite transmission device are arranged.
[0055] Thereby, the individual NW 6 is automatically constructed even if the transmission device 1 is arranged at the site in exchange for the failed transmission device by a maintenance worker who is not highly skilled. For this reason, the station 1 that is isolated by the failed transmission device is made communicable with the opposite station (the station 2s) in which the opposite transmission device is arranged, which temporarily eliminate the isolation of the station 1s.
[0056] As a result, it is possible to implement quick restoration from a disaster with respect to the transmission system.
[0057] In addition, the transmission device 1 of the present embodiment is further provided with the restoration support unit 15 for applying the setting by the OpS (Operation System) to the transmission device 1.
[0058] Thereby, completion of the restoration with respect to the transmission system can be implemented because the setting by the OpS 3 is performed in the transmission device 1 in which the setting has not been made by the OpS 3.
[0059] In addition, in the transmission device 1 of the present embodiment, the NW construction unit 14 forms the management port m in the constructed individual NW for the external device 5 to be connected to the individual NW.
[0060] Thereby, communication by the external device 5 is implemented, which can accelerate the temporal elimination of the isolation of the station 1s.
[0061] <Others>
[0062] A technique in which various kinds of techniques described in the present embodiment are appropriately combined can also be implemented.
REFERENCE SIGNS LIST
[0063] 1, 1a to 1c Transmission devices
[0064] 11 Startup unit
[0065] 12 Search unit
[0066] 13 Path establishment unit
[0067] 14 NW construction unit
[0068] 15 Restoration support unit
[0069] 2a, 2b Service nodes
[0070] 3 OpS
[0071] 4a to 4d DCN devices
[0072] 5 External device
[0073] 6 individual NW