The present application claims priority from Japanese application JP2009-243980 filed on Oct. 23, 2009, the content of which is hereby incorporated by reference into this application.
This invention relates to a method of controlling a transmission device having the auto negotiation function based on the Ethernet (registered trademark) standard, or in particular, to a method of repairing a line disconnection which may occur between network devices through the transmission device at the time of a fault in a redundant optical transmission system using an optical switch.
In the optical transmission system, a method of switching two optical signal paths by an optical switch upon occurrence of a fault finds practical application as a means to minimize the adverse effect of a communication failure between the network devices due to a fault which may occur on an optical signal path.
As an actual example using an optical switch, JP-A-2003-338788 has been proposed. In the example of the method described in JP-A-2003-338788, the optical signal output from an optical transmission circuit of a primary device is rendered to diverge into two optical transmission paths by an optical multiplexer/demultiplexer, and one of the optical signals is selected by the optical switch of a secondary device. In the case where the optical transmission path selected by the optical switch develops a fault, a light receiving circuit detects the disconnection of the optical signal, and by instructing a switch control circuit to switch the optical switches, the remaining optical transmission path is selected.
As a configuration similar to that of JP-A-2003-338788, the configuration shown in
In an optical transmission system for transmitting the Gigabit Ethernet signal and having the configuration shown in
In the configuration shown in
According to an example of this invention, there is provided an optical transmission system comprising:
a first network including a first network device, a first transponder, a second transponder and a first controller arranged between the first network device and the first and second transponders; and
a second network including a second network device, a third transponder, a fourth transponder and a second controller arranged between the second network device and the third and fourth transponders, the second network being connected to the first transmission device through an optical transmission path;
wherein the first network device, the second network device, the first transponder, the second transponder, the third transponder and the fourth transponder each have the auto negotiation function based on the Ethernet standard;
wherein the first transponder, upon reception of a line fault notification from the third transponder, transmits an auto negotiation request signal to the first network device through the first controller; and
wherein the second transponder, upon transmission of the auto negotiation request signal from the first transponder, receives the auto negotiation request signal from the first network device through the first controller thereby to set a link with the first network device.
An optical transmission system forming a redundant system using an optical switch can use a network device having the auto negotiation function and a transponder having the auto negotiation function based on the Ethernet standard. Then, the line disconnection between the network devices upon occurrence of a fault on the optical signal path can be positively repaired.
Other objects, features and advantages of the invention will become apparent from the following description of the embodiments of the invention taken in conjunction with the accompanying drawings.
The maintenance signal controller 4, upon detection of a line fault (such as the disconnection of the optical signal) input from a network device by the first optical transmitter/receiver 2, controls the maintenance signal insertion unit 5 in such a manner as to transmit the first maintenance signal containing the information on the line fault to a corresponding transponder as a notice. The light transmission/reception controller 7 controls the first light transmitter/receiver 2 to stop the output of the optical signal to the network device at the time of receiving the first maintenance signal transferred thereto through the optical transmission path by the maintenance signal receiver 6.
The maintenance signal controller 4, upon detection of the disconnection of the link with the network device by the link information controller 3, controls the maintenance signal insertion unit 5 to transmit the second maintenance signal having the link disconnection information to the corresponding transponder.
The link information controller 3, upon reception of the second maintenance signal transferred thereto through the optical transmission path by the maintenance signal receiver 6, carries out the auto negotiation with the network device by outputting an auto negotiation restart signal to the network device.
The maintenance signal controller 4, upon detection of the link establishment through the auto negotiation by the link information controller 3, controls the maintenance signal insertion unit 5 in such a manner as to transmit a third maintenance signal indicating the response to the second maintenance signal to the corresponding transponder. The maintenance signal controller 4, upon reception of the third maintenance signal by the maintenance signal receiver 6 through the optical transmission path, controls the maintenance signal insertion unit 5 to stop the output of the second maintenance signal. As a result, the optical signal from the network device is passed to the optical transmission path.
The active transponder 105, on the other hand, upon detection of the link disconnection with the network device 101 due to the disconnection of the optical line in step 1, transfers the link disconnection information to the active transponder 107 of the station B to notify the link disconnection as a line fault using the first maintenance signal (step 2-b). The data pattern of the first maintenance signal is not used in the normal signal transmission. Although the 8B10B code is used in the Ethernet, for example, there exists a data pattern not generated by the 8B10B code rule, and by using such a data pattern for the maintenance signal, the discrimination from the normal data signal is made possible.
The active transponder 107 of the station B that has received the link disconnection information as the first maintenance signal requests the network device 102 to restart the auto negotiation, so that the active transponder 107 and the network device 102 are transferred to the initial state of auto negotiation.
On the other hand, the spare transponder 108 connected to the network device 102 through the optical coupler 113 in the light diverging switch 104 is also transferred to the initial state by receiving the signal output from the network device 102 in the initial state of auto negotiation. Next, the active transponder 107 carries out the auto negotiation by communicating with the network device 102 (step 3-b) and establishes the link. In the process, the spare transponder 108 receives the optical signal output from the network device 102 during the auto negotiation, and by returning a signal as a response to the optical signal, behaves in the same manner as if the auto negotiation is carried out with the network device 102 in harmony with the auto negotiation between the active transponder 107 and the network device 102 (step 3-b). As a result, the spare transponder 108 establishes the link with the network device 102 in an auxiliary manner.
The active transponder 107, after establishing the link with the network device 102, transfers the link establishment information to the active transponder 105 of the station A using the second maintenance signal (step 4-b). The data pattern of the second maintenance signal can be discriminated from that of the first maintenance signal by using a data pattern different from that of the first maintenance signal for transfer of the link disconnection information described above. The active transponder 105 that has received the link establishment information stops the transfer of the first maintenance signal and outputs the optical signal from the network device 101 of the station A to the optical transmission path 109 (step 5-b).
The active transponder 105 of the station A, upon detection of a link disconnection (201), transfers the link disconnection information to the active transponder of the station B through the first maintenance signal (202). The active transponder 107 of the station B that has received the link disconnection information transmits an auto negotiation start request signal to the network device 102 through a switch 114 in the light diverging switch 104 (203). The network device 102 that has received the auto negotiation start request signal transmits one part of a first auto negotiation request signal diverged through the optical coupler 113 in the light diverging switch 104 to the active transponder 107, and the other part thereof to the spare transponder 108 (204). The active transponder 107 that has received the first auto negotiation request signal transmits a first auto negotiation response signal to the network device 102 through the optical switch 114 in the light diverging switch 104 (205). The spare transponder 108 that has received the first auto negotiation request signal, like the active transponder 107, transmits the first auto negotiation response signal to the light diverging switch 104 (206). The network device 102 that has received the first auto negotiation response signal from the active transponder 107 then transmits, through the optical coupler 113 in the light diverging switch 104, one part of a second auto negotiation request signal to the active transponder 107, and the other part thereof to the spare transponder 108 (207). The active transponder 107 that has received the second auto negotiation request signal, transmits through the optical switch 114 in the light diverging switch 104, the second auto negotiation response signal to the network device 102 (208), so that the auto negotiation is completed and the link established (210). The spare transponder 108 that has received the second auto negotiation request signal, like the active transponder 107, transmits the second auto negotiation response signal to the light diverging switch 104 (209) so that the auto negotiation is completed and the link established (211). The network device 102 that has received the second auto negotiation response signal from the active transponder 107 completes the auto negotiation and establishes the link (212). As described above, even in the case where the optical switch 114 in the light diverging switch 104 selects the active system, the spare transponder 108 can carry out the auto negotiation with the network device 102 and establish the link by receiving the request signal from the network device 102 for the response signal of the active transponder 107.
Next, the active transponder 107 that has established the link transfers the link establishment information by the second maintenance signal to the active transponder 105 of the station A (213). The active transponder 105 that has received the link establishment information stops the transmission of the first maintenance signal (214).
According to the embodiment shown in
In the redundant optical transmission system using the transponders according to the embodiment of the invention shown in
On the other hand, the active transponder 105 of the station A, upon detection of the disconnection of the optical signal as the result of disconnection of the optical line in step 1, transfers the optical line disconnection information to notify the optical line disconnection as a line fault to the active transponder 107 of the station B using the third maintenance signal (step 2-b). The data pattern not used in the normal signal transmission is used for the third maintenance signal. Although Ethernet uses the 8B10B code, for example, a data pattern not generated according to the 8B10B code rule exists, and by using this data pattern for the maintenance signal, the maintenance signal can be discriminated from the normal data signal.
The active transponder 107 of the station B that has received the optical line disconnection information by the third maintenance signal stops the optical output of the network device 102 (step 3-b). As a result, the link between the active transponder 107 and the network device 102 is disconnected, and the light diverging switch 104, by detecting the disconnection of the optical signal, turns the switch to the spare system (step 4-b). Next, the spare transponder 108 carries out the auto negotiation in communication with the network device 102 thereby to establish the link (step 5-b).
According to the embodiment shown in
In the redundant optical transmission system using the transponders according to the embodiment of the invention shown in
It should be further understood by those skilled in the art that although the foregoing description has been made on embodiments of the invention, the invention is not limited thereto and various changes and modifications may be made without departing from the spirit of the invention and the scope of the appended claims.
Number | Date | Country | Kind |
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2009-243980 | Oct 2009 | JP | national |