Optical transmission line connectivity verification system
The optical transmission line connectivity confirmation system addresses the challenge of core number alignment in SDM systems by determining connectivity through optical power measurement, reducing construction time and cost in MCF optical transmission lines.
Patent Information
- Application Number
- JP2022150362
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2022-09-21
- Publication Date
- 2025-09-05
- Estimated Expiration
- 2042-09-21
AI Technical Summary
In SDM systems using multi-core fibers (MCFs), the alignment of core numbers during fusion splicing is challenging due to the absence of markers, leading to increased labor costs and time, and existing methods do not address the unique connectivity issues in MCF-based optical transmission lines.
An optical transmission line connectivity confirmation system that includes an optical transmitter, receiver, input and output devices, and a controller to determine connectivity by measuring optical power and managing connection information, allowing fusion splicing without relying on core number alignment.
The system clarifies core number and connection relationships, reducing the difficulty and cost of constructing MCF optical transmission lines by enabling efficient fusion splicing.
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Abstract
Description
[Technical Field]
[0001] The present invention relates to an optical transmission line connectivity confirmation system. [Background technology]
[0002] In recent years, space-division multiplexing (SDM) technology using multi-core fiber (MCF), which has multiple cores through which light propagates, has been the subject of vigorous research and development as a technology to overcome the physical limitations of transmission capacity in single-mode fiber (SMF).
[0003] When constructing an SDM system, it is necessary to construct an optical transmission line using MCF (hereafter referred to as an MCF optical transmission line) to connect the transmitting and receiving ends of the SDM system. To construct an MCF optical transmission line, it is necessary to fusion-splice MCFs of a certain length. From the perspective of system operation, it is ideal to connect MCFs with the same core number when fusion-splicing them. This is because doing so uniquely determines the MCF core numbers and connection relationships at the transmitting and receiving ends of the SMD system, thereby avoiding complex operation and management of the optical transmission line.
[0004] However, some MCFs have markers for identifying core numbers, while others do not. When an MCF has markers, the core numbers can be identified, making it possible to align the core numbers during fusion splicing. However, providing markers on an MCF increases the cost of the fiber. Furthermore, the procedure for aligning the core numbers during fusion splicing takes time, which has the disadvantage of increasing labor costs. Furthermore, when an MCF does not have markers, it is difficult to identify the core numbers, making it difficult to align the core numbers during fusion splicing. Thus, when fusion splicing MCFs, it is difficult to align the core numbers. For these reasons, if fusion splicing without regard to the MCF core numbers were permitted in the construction of optical transmission lines, the difficulty of constructing MCF optical transmission lines would be reduced, leading to a reduction in the time and cost required for constructing transmission lines.
[0005] Patent Document 1 discloses a technique relating to a link connectivity confirmation method for confirming the connectivity of a physical link between a cross-connect device and a transmission device. [Prior art documents] [Patent documents]
[0006] [Patent Document 1] Patent Publication No. 2008-022446 Summary of the Invention
[0007] However, in Patent Document 1, since an optical transmission line based on SMF is used, it is assumed that the relationship between the input and output ports of the optical transmission line for checking connectivity is uniquely determined, and it is not necessary to specify how the input and output ports for checking connectivity are connected. Therefore, it does not take into consideration the phenomenon that may occur in an SDM system, in which the core numbers of the MCFs at the transmitting and receiving ends and the connection relationship cannot be uniquely determined.
[0008] On the other hand, in an SDM system, for example, if the core numbers of the MCFs are not aligned when fusion splicing, an incident may occur in which the signal light is input to core 1 (core number 1) of the MCF at the transmitting end, but output light is obtained from core 3 (core number 3) of the MCF at the receiving end. In such a case, if the signal light is set based on the core number in an SDM system, the signal light will not reach the desired path (transmitting end: MCF core 1 - receiving end: MCF core 1).
[0009] The present invention has been made in view of the above circumstances, and aims to provide an optical transmission line connectivity confirmation system that clarifies how input and output ports are connected, and the core numbers and connection relationships of MCFs at the transmitting and receiving ends of the system. [Problem to be solved by the invention]
[0010] (1) In order to achieve the above object, the present invention provides the following means: That is, the optical transmission line connectivity checking system of the present invention is an optical transmission line connectivity checking system for checking the connectivity of an optical transmission line in a multicore fiber fusion-spliced at at least one location, and is characterized by including at least an optical transmitter that transmits signal light emitted from a light source to the optical transmission line, an optical receiver that receives the signal light from the optical transmission line, an input device and an output device having a plurality of ports and connected to both ends of each core of the optical transmission line, a control and management information giving and receiving function unit that acquires, via a separate network, connection information of a first port that is any port connected to the optical transmitter and a second port that is any port connected to the optical receiver, and a connectivity determination function unit that measures optical power in the optical transmission line and determines the connectivity between the first port and the second port.
[0011] (2) Furthermore, in the optical transmission path connectivity confirmation system of the present invention, the controller is characterized by further including a setting storage function unit that stores the correspondence between the port numbers of the first port and the second port whose connectivity has been confirmed in the connectivity determination function unit.
[0012] (3) Furthermore, in the optical transmission path connectivity confirmation system of the present invention, the connectivity determination function unit is characterized in that, when the optical power in the optical receiver is less than a threshold, it determines that the correspondence between the first port and the second port is inappropriate, whereas, when the optical power in the optical receiver is equal to or greater than the threshold, it determines that the correspondence between the input port and the output port is appropriate.
[0013] (4) In the optical transmission line connectivity confirmation system of the present invention, the optical transmitter and the optical receiver are respectively arranged at both ends of the optical transmission line, The connectivity determination function unit The optical signal input from the optical transmitter to the first port is determined to correspond to the optical signal output from the second port and received by the optical receiver.
[0014] (5) In addition, in the optical transmission line connectivity confirmation system of the present invention, the optical transmitter and the optical receiver are arranged on one side of the optical transmission line, and an isolator arranged on the other side of the optical transmission line returns the signal light transmitted from the optical transmitter and received via a first optical transmission line to a second optical transmission line different from the first optical transmission line at a return port, and the optical receiver receives the signal light returned at the return port and via the second optical transmission line; The connectivity determination function unit The optical signal transmitted from the optical transmitter to the first optical transmission path is determined to correspond to the optical signal received by the optical receiver via the second optical transmission path.
[0015] (6) In the optical transmission line connectivity confirmation system of the present invention, the optical transmitter and the optical receiver are disposed on one side of the optical transmission line, The signal light transmitted from the optical transmitter and received via the first optical transmission line is returned at a return port to a second optical transmission line different from the first optical transmission line by a patch cord arranged on the other side of the optical transmission line, and the optical receiver receives the signal light returned at the return port and via the second optical transmission line, and the connectivity determination function unitThe signal light input from the optical transmitter to the first port is The aforementioned Whether or not it corresponds to the signal light output from the output port arranged on the other side of the optical transmission line via the first optical transmission line And, before Note Pa It is characterized in that it is determined whether the signal light returned by the switch code corresponds to the signal light received by the optical receiver.
[0016] (7) The present invention also provides an optical transmission line connectivity confirmation program for confirming connectivity of an optical transmission line in a multicore fiber fusion-spliced at at least one location, the program executing at least the following processes: an optical transmitter transmitting signal light emitted from a light source to the optical transmission line; an optical receiver receiving the signal light from the optical transmission line; a process having a plurality of ports and connecting an input device and an output device to both ends of each core of the optical transmission line, respectively; and a controller acquiring, via a separate network, in a control management information exchange function unit, connection information of a first port which is any port connected to the optical transmitter and a second port which is any port connected to the optical receiver, and in a connectivity determination function unit, measuring the optical power in the optical transmission line and determining the connectivity between the first port and the second port.
[0017] (8) The present invention also provides an optical transmission line connectivity confirmation method for confirming connectivity of an optical transmission line in a multicore fiber fusion-spliced at at least one location, the method comprising at least the steps of: an optical transmitter transmitting signal light emitted from a light source to the optical transmission line; an optical receiver receiving the signal light from the optical transmission line; a controller having a plurality of ports and connecting an input device and an output device to both ends of each core of the optical transmission line, respectively; and a controller acquiring, via a separate network, in a control management information exchange function unit, connection information of a first port which is any port connected to the optical transmitter and a second port which is any port connected to the optical receiver, and in a connectivity determination function unit, measuring the optical power in the optical transmission line and determining the connectivity between the first port and the second port. [Effects of the Invention]
[0018] According to the present invention, it is possible to check the optical transmission line connectivity of each core after fusion splicing of a multicore fiber and to clarify the correspondence. As a result, fusion splicing can be performed without being aware of the presence or absence of core numbers or the arrangement of the multicore fiber, the difficulty of constructing an MCF optical transmission line is reduced, and the time and cost required to construct a transmission line can be reduced. [Brief explanation of the drawings]
[0019] [Figure 1] 1 is a diagram illustrating a schematic configuration of an optical transmission line connectivity confirmation system according to a first embodiment. [Figure 2] FIG. 4 is a flowchart showing a procedure for determining the connectivity of an MCF optical transmission line in the first embodiment. [Figure 3A] FIG. 4 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the first embodiment. [Figure 3B] FIG. 4 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the first embodiment. [Figure 4] FIG. 10 is a diagram illustrating a schematic configuration of an optical transmission line connectivity confirmation system according to a second embodiment. [Figure 5]FIG. 10 is a flowchart showing a procedure for determining the connectivity of an MCF optical transmission line in the second embodiment. [Figure 6A] FIG. 10 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the second embodiment. [Figure 6B] FIG. 10 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the second embodiment. [Figure 7] FIG. 10 is a diagram illustrating a schematic configuration of an optical transmission line connectivity confirmation system according to a third embodiment. [Figure 8] FIG. 11 is a flowchart showing a procedure for determining the connectivity of an MCF optical transmission line in the third embodiment. [Figure 9A] FIG. 11 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the third embodiment. [Figure 9B] FIG. 11 is a sequence diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the third embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0020] The inventors focused on the fact that the core numbers and connection relationships of MCFs at the transmitting and receiving ends cannot be uniquely determined, which can occur in SDM systems, and discovered a method for checking the optical transmission line connectivity of each core after fusion splicing of multicore fibers and clarifying the correspondence relationships, thereby arriving at the present invention. As a result, fusion splicing can be performed without being aware of the presence or absence or arrangement of core numbers in multicore fibers, making it easier to construct MCF optical transmission lines and enabling a reduction in the time and cost required to construct transmission lines.
[0021] That is, the optical transmission line connectivity confirmation system of the present invention is an optical transmission line connectivity confirmation system that confirms the connectivity of an optical transmission line in a multi-core fiber that is fusion-spliced at at least one location, and is characterized by comprising at least an optical transmitter that transmits signal light emitted from a light source to the optical transmission line, an optical receiver that receives the signal light from the optical transmission line, an input device and an output device having a plurality of ports and connected to both ends of each core of the optical transmission line, a control management information exchange function unit that acquires, via a separate network, connection information of a first port that is any port connected to the optical transmitter and a second port that is any port connected to the optical receiver, and a connectivity determination function unit that measures the optical power in the optical transmission line and determines the connectivity between the first port and the second port.
[0022] Each embodiment of the present invention will be specifically described below with reference to the drawings. First, the elements (common elements) constituting the optical transmission path connectivity confirmation system according to each embodiment will be described. To facilitate understanding of the description, the same reference numerals will be used to designate the same components in the drawings of each embodiment, and duplicated descriptions will be omitted.
[0023] The optical transmitter is equipped with a light source that emits signal light and has the function of transmitting light (signal light) of a set wavelength at a set power. The wavelength and power settings are within the specified range of the target SDM (Space-Division Multiplexing) system. The optical transmitter also has a control management interface, allowing it to be controlled from an external controller.
[0024] The optical receiver is equipped with a power meter and has the function of measuring the power of the received light (hereinafter also referred to as received optical power). The optical receiver also has a control management interface, which allows the optical receiver to be controlled from an external controller, and allows received optical power information to be sent to the external controller via the control interface.
[0025] The optical switch has m×n (m and n are positive integers) input and output ports and has the function of being able to connect any port between the input and output. In the following, for ease of explanation, each embodiment in this specification will be described using an optical switch with 1×n input and output ports as an example, but this is not limiting. Regarding the number of input and output ports, it is sufficient that there is at least one port on the optical transmitter side and the optical receiver side. Furthermore, the number of ports of the optical switch connected to the input and output devices described below must be at least equal to the number of ports of the input and output devices. Furthermore, the optical switch has a control management interface and has the function of allowing settings such as port switching from the outside.
[0026] An input device (Fan-In device: FI device) is a device that connects a single-core fiber (SCF: Single-Core Fiber) and a multi-core fiber (MCF: Multi-Core Fiber), and is called an input device used on the input side of an MCF optical transmission line. In the case of a 4-core fiber (4CF) input device, this means that four SCFs are connected.
[0027] An output device (Fan-Out device: FO device) is a device that connects a single-core fiber (SCF: Single-Core Fiber) and a multi-core fiber (MCF: Multi-Core Fiber), and is called an output device when it is used on the output side of an MCF optical transmission line. In the case of a 4-core fiber (4CF) output device, this means that four SCFs are connected.
[0028] A multi-core fiber (MCF) is an optical fiber in which multiple cores through which light propagates are arranged in one cladding. In each embodiment in this specification, an optical transmission line is configured by an MCF. Furthermore, in each embodiment in this specification, an example using a four-core fiber (4CF) will be described as an example, but this is not limiting. A 2CF or a fiber having more cores may also be used. Furthermore, the multi-core fiber in this specification includes both an uncoupled multi-core fiber and a coupled multi-core fiber, and the present invention is applicable to either of these multi-core fibers.
[0029] The controller has a communication function and can access each device via a control and management network or a public network. The controller also has at least a setting storage function, a connectivity determination function, and a control and management information exchange function to control and manage each device in a data communication network including an optical transmission line. The setting storage function includes a storage unit for storing information about devices (optical transmitters, optical receivers, optical switches, input devices, output devices, etc.) configured at the transmitting and receiving ends of the MCF optical transmission line, and also stores, for example, the correspondence between the port numbers of FI ports and FO ports for which connectivity has been confirmed. The connectivity determination function includes a means for determining the connectivity of the MCF transmission line based on the device settings and information acquired from the devices. The device settings and information acquired from the devices include, for example, information about the signal light power set by the optical transmitter, information about the received optical power received by the optical receiver, information about the optical power in the MCF optical transmission line, and information about thresholds for determining connectivity. The control and management information exchange function includes a communication unit for exchanging (acquiring) information between the transmitting and receiving ends of the MCF optical transmission line via a control and management network or a public network.
[0030] In each embodiment of this specification, a data communication network refers to a communication network through which data used by users flows, that is, a communication network through which signal light passes. Elements constituting a data communication network include optical transmitters, optical receivers, optical switches, MCF optical transmission lines (multicore fibers), input devices, and output devices.
[0031] In each embodiment of this specification, the control and management network is a network separate from the data communication network, a communication network that connects the controller and the network devices that make up the data communication network, and refers to a control and management communication network that utilizes a dedicated line for control and management or a public network. Elements that make up the control and management network include an optical transmitter, an optical receiver, an optical switch, and a controller.
[0032] Next, a method for determining the core connectivity of an MCF optical transmission line will be specifically described below in each embodiment.
[0033] [First embodiment] [1] Overview of the optical transmission line connectivity verification system 1 is a diagram showing a schematic configuration of an optical transmission line connectivity check system according to a first embodiment. The optical transmission line connectivity check system 1 is composed of at least an optical transmitter 10, an optical receiver 20, optical switches 51 and 61, an MCF optical transmission line (multi-core fiber) 40, an input device 53, an output device 63, and a controller 30. The optical transmitter 10 is connected to the input end of the MCF optical transmission line via the optical switch 51 and the input device 53. The optical receiver 20 is connected to the output end of the MCF optical transmission line via the optical switch 61 and the output device 63.
[0034] [2] Procedure for determining connectivity of MCF optical transmission lines Fig. 2 is a flow diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the first embodiment. Fig. 3A and Fig. 3B are sequence diagrams showing a procedure for determining the connectivity of an MCF optical transmission line in the first embodiment. The procedure for determining the connectivity of an MCF optical transmission line in the first embodiment will be described with reference to Fig. 2, Fig. 3A, and Fig. 3B.
[0035] First, an initialization process is performed (step S1). In the initialization process, the controller performs the following processes on the optical transmitter, optical receiver, optical switch on the optical transmitter side, and optical switch on the optical receiver side. The controller turns off the output light of the optical transmitter and sets the initial wavelength. Then, the controller turns off the receiving operation of the optical receiver. Then, the controller performs a process to cancel the switch settings of the optical switch on the optical transmitter side and the optical switch on the optical receiver side. If a setting error occurs during the initialization process, it is determined to be a device malfunction and execution is halted.
[0036] Next, connectivity is checked. In the connectivity check, first, the port (first port) of the optical switch connected to the optical transmitter is connected to FI port 1, and switching setup is performed (step S2). Next, the port (second port) of the optical switch connected to the optical receiver is connected to FO port 1, and switching setup is performed (step S3). After switching setup, the controller turns on optical reception, and the optical receiver starts receiving (step S4). The optical receiver starts measuring the received optical power, and notifies the controller of the measurement information of the received optical power.
[0037] The controller checks the acquired measurement information of the received optical power (step S5). If the received optical power is equal to or greater than the threshold in step S5, the controller determines that the setting is abnormal and terminates the process (step S6). This is because step S5 is before the controller turns on the optical transmitter, and if the optical receiver measures received optical power equal to or greater than the threshold, this means that the optical power measured is not due to optical propagation but some other optical power due to some other cause, and is not the intended setting. Therefore, the controller determines that the setting is abnormal and terminates the process. If the received optical power is less than the threshold in step S5, it can be determined that a transmission path between the optical receiver and any of the FI ports has been established. The threshold used as the determination criterion can be set arbitrarily and is preset in the connectivity determination function unit of the controller.
[0038] Next, the controller turns on the optical output of the optical transmitter at the set output, and the optical transmitter transmits the signal light (step S7).The controller acquires measurement information of the received optical power from the optical receiver (step S8).
[0039] The controller checks the acquired measurement information of the received optical power (step S9), and if the received optical power is equal to or greater than the threshold, it can be determined that signal light has arrived from the optical transmitter to the optical receiver between the currently connected cores, and a transmission path has been established. This completes the check of connectivity between FI port 1 and FO port 1 (step S10). The setting storage function unit of the controller stores the correspondence between the port numbers of FI port 1 and FO port 1 for which connectivity has been confirmed. Note that optical fiber loses different optical power depending on factors such as the optical wavelength and the length of the optical fiber cable. Therefore, the threshold used as the judgment criterion can be set arbitrarily for each optical fiber, and is preset in the connectivity judgment function unit of the controller.
[0040] To check the connectivity of the next FI port and FO port, the controller initializes the optical transmitter, optical receiver, optical switch on the optical transmitter side, and optical switch on the optical receiver side (step S11), as in step S1. Then, the controller checks whether there are any remaining ports to be checked for connectivity, and checks whether there are any sending and receiving ports for which connectivity check has not been completed (step S12).
[0041] In step S12, if the result of checking whether there are any transmitting / receiving ports for which connectivity check has not been completed indicates that there are no ports remaining for which connectivity check is to be performed, the connectivity check process is terminated (step S13). In step S12, if the result of checking whether there are any transmitting / receiving ports for which connectivity check has not been completed indicates that there are ports remaining for which connectivity check is to be performed, the controller increments the connection port number of the optical transmitter and connects it (step S14). In this embodiment, the port of the optical switch connected to the optical transmitter is connected to FI port 2, the connection port number of which is incremented from FI port 1. Next, the controller sets the connection port number of the optical receiver to the smallest number of ports for which connectivity check has not been performed, and connects it (step S15). In this embodiment, the port of the optical switch connected to the optical receiver is connected to FO port 2, which is the smallest number of ports for which connectivity check has not been performed. After the optical transmitter and optical receiver are connected to the ports of the optical switches, the processes of steps S4 to S9 are similarly performed.
[0042] In step S9, if the received optical power is less than the threshold, FI port 1 and FO port 1 are not connected, so the controller sets the connection port number of the optical receiver to the smallest number of ports for which connectivity check has not been completed and connects them. In this embodiment, the port of the optical switch connected to the optical receiver is connected to FO port 2, which is the smallest number of ports for which connectivity check has not been completed.
[0043] With the new FO port set, the controller performs the initialization process as in step S1. The controller initializes the optical transmitter, optical receiver, optical switch on the optical transmitter side, and optical switch on the optical receiver side (step S16).
[0044] Next, the port of the optical switch connected to the optical transmitter is connected to the FI port that was connected before the initialization in step S16 (step S17). In this embodiment, the FI port that was connected before the initialization in step S16 is FI port 1.
[0045] Next, the connection port number of the optical receiver is incremented and connected (step S18). In this embodiment, the port of the optical switch connected to the optical receiver is connected to FO port 2, the connection port number of which is incremented from FO port 1. Returning to the procedure of step S4, the process is repeated. By repeating the above-mentioned process, it is possible to check the connectivity of all cores that make up the MCF optical transmission line.
[0046] [Second embodiment] [1] Overview of the optical transmission line connectivity verification system FIG. 4 is a diagram showing a schematic configuration of an optical transmission line connectivity checking system according to a second embodiment. The basic configuration of the optical transmission line connectivity checking system 2 according to this embodiment is the same as that of the first embodiment. In the optical transmission line connectivity checking system 2 according to this embodiment, an optical transmitter 10 and an optical receiver 20 are connected to the input end of the MCF optical transmission line via an optical switch 51 and an input device 53. An isolator 71 is provided at the output end of the MCF optical transmission line via an output device 63 and an optical switch 61. In this way, by providing the isolator 71 in the optical switch 61 on the output end side and creating a loopback configuration, connectivity can be checked from one end. Note that the loopback port of the optical switch 61 is fixed. Furthermore, an isolator is used for loopback to limit the traveling direction of light. This makes it possible to clarify the inter-core connectivity of the MCF optical transmission line (the relationship between the connected core numbers between the input end, which is the near end, and the output end, which is the far end). For example, it is possible to clarify the relationship between the connected core numbers, such as "Core 1 at the near end is connected to Core 2 at the far end, and Core 2 at the near end is connected to Core 1 at the far end."
[0047] On the other hand, without using the isolator 71, only connectivity can be confirmed, but the relationship between the numbers of the connected cores between the near end and the far end may not be clarified. For example, if light is input to core 1 at the near end, is returned between the far ends, and is received by core 2 at the near end, it is not possible to determine whether the path at the return point is core 1 → core 2 or core 2 → core 1. Therefore, although it is possible to confirm the connectivity between cores of an MCF optical transmission line without using the isolator 71, it is more preferable to use the isolator 71 in order to also clarify the correspondence between core numbers.
[0048] [2] Procedure for determining connectivity of MCF optical transmission lines Fig. 5 is a flow diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the second embodiment. Figs. 6A and 6B are sequence diagrams showing a procedure for determining the connectivity of an MCF optical transmission line in the second embodiment. The procedure for determining the connectivity of an MCF optical transmission line in the second embodiment will be described with reference to Figs. 5, 6A, and 6B.
[0049] First, an initialization process is performed (step T1). In the initialization process, the controller performs the following processes on the optical transmitter, optical receiver, near-end (input end) optical switch, and far-end (output end) optical switch: The controller turns off the output light of the optical transmitter and sets the initial wavelength. Then, the controller turns off reception of the optical receiver. Then, the controller performs a process to cancel the switch settings of the near-end optical switch and the far-end optical switch. If a setting error occurs during the initialization process, it is determined to be a device malfunction and execution is halted.
[0050] Next, connectivity is checked. In the connectivity check, first, the port of the optical switch connected to the optical transmitter (first port) is connected to FI port 1, and the port of the optical switch connected to the optical receiver (second port) is connected to FI port 2, and switching setup is performed (step T2). Next, FO ports 1 and 2 at the far end are connected to return ports 1 and 2 of the optical switch, respectively, and switching setup is performed (step T3). After switching setup, the controller turns on optical reception, and the optical receiver starts receiving (step T4). The optical receiver starts measuring optical power and notifies the controller of the measurement information of the received optical power.
[0051] The controller checks the acquired measurement information for the received optical power (step T5). If the received optical power is equal to or greater than the threshold in step T5, the controller concludes that the configuration is abnormal and terminates the process (step T6). This is because step T5 is before the controller turns on the optical transmitter. Therefore, if the optical receiver measures received optical power equal to or greater than the threshold, this means that the optical power is not due to optical propagation but is due to some other cause, and is not the intended configuration. Therefore, the controller determines that the correspondence between the FI port and the FO port is inappropriate, and terminates the process as an abnormal configuration. If the received optical power is less than the threshold in step T5, the controller determines that the correspondence between the FI port and the FO port is appropriate, that is, a transmission path between the optical receiver and any FI or FO port is established. The threshold used as the judgment criterion can be set arbitrarily and is preset in the controller's connectivity determination function.
[0052] Next, the controller turns on the optical output of the optical transmitter at the set output, and the optical transmitter transmits the signal light (step T7).The controller acquires measurement information of the received optical power from the optical receiver (step T8).
[0053] The controller checks the acquired measurement information of the received optical power (step T9). If the received optical power is equal to or greater than the threshold, it can be determined that signal light has arrived at the optical receiver from the optical transmitter between the currently connected cores, and that a transmission path has been established. This completes the connectivity check between FI Port 1 and FO Port 1, and between FI Port 2 and FO Port 2 (step T10). The setting storage function of the controller stores the correspondence between the port numbers of FI Port 1 and FO Port 1, and FI Port 2 and FO Port 2, for which connectivity has been confirmed. Note that optical fiber loses optical power due to factors such as the optical wavelength and the length of the optical fiber cable. Therefore, the threshold used as the judgment criterion can be set arbitrarily for each optical fiber and is preset in the connectivity determination function of the controller.
[0054] Furthermore, because an isolator is inserted between the return ports of the optical switch on the far end, the directionality of the light can also be uniquely identified. In other words, it can be seen that light travels from FI port 1 to FO port 1 in the direction from the near end to the far end, and from FO port 2 to FI port 2 in the direction from the far end to the near end. From this, it is possible to confirm the connection relationship of the cores of the MCF optical transmission line between the near end and the far end, namely the connectivity between FI port 1 and FO port 1, and the connectivity between FI port 2 and FO port 2.
[0055] To check the connectivity of the next FI port and FO port, the controller initializes the optical transmitter, optical receiver, near-end optical switch, and far-end optical switch (step T11), as in step S1. Then, the controller checks whether there are any remaining ports for which connectivity check is required, and checks whether there are any transmitting and receiving ports for which connectivity has not yet been completed (step T12).
[0056] In step T12, if the result of checking whether there are any transmitting / receiving ports whose connectivity has not been completed indicates that there are no ports remaining for which connectivity check is required, the connectivity check process is terminated (step T13). In step S12, if the result of checking indicates that there are ports remaining for which connectivity check is required, the controller selects two connection ports for the optical transceiver, i.e., port numbers of the near-end optical switch, for which connectivity check has not been completed, and connects them (step T14). As a method for selecting connection ports for the optical transceiver, for example, the port numbers are selected in ascending order. Of the selected port numbers, the optical transmitter may be connected to the port with the smallest port number, and the remaining ports may be connected to the optical receiver. In this embodiment, the port of the optical switch connected to the optical transmitter is connected to FI port 3, and the port of the optical switch connected to the optical receiver is connected to FI port 4.
[0057] Next, the controller selects two of the connection port numbers of the far-end optical switch for which connectivity check has not been completed, and connects them to the loopback port (step T15). In this embodiment, the ports are connected to the loopback port in ascending order of port number. In other words, FO ports 3 and 4 are connected to loopback ports 1 and 2, respectively. After the port connection is complete, the processes of steps T4 to T9 are performed in the same way.
[0058] If the received optical power is less than the threshold in step T9, FI port 1 and FO port 1, and FI port 2 and FO port 2 are not connected, so the same initialization process as in step T1 is performed (step T16). When connecting the near-end optical receiver and the FI port, the controller checks whether the connection port number can be incremented (step T17).
[0059] If it is not possible to increment the connection port number in step T17, two of the connection port numbers of the near-end optical transceiver for which connectivity check has not been completed are selected and connected (step T18). The connection ports may be selected in ascending order of port number. In this case, the optical transmitter is connected to the selected port number with the lowest port number, and the remaining ports are connected to the optical receiver. Furthermore, for the connection ports of the far-end optical switch, the FO port connected to loopback port 1 is incremented and connected, and for the FO port connected to loopback port 2, one of the FO ports for which connectivity check has not been completed is selected and connected. In this case, the port numbers are selected in ascending order.
[0060] In this embodiment, since an isolator is inserted in the return section, the directionality is unique. Therefore, if connectivity cannot be confirmed when FI Port 1 and FO Port 1 are connected and FI Port 2 and FO Port 2 are connected in the first step and connectivity check is attempted, a procedure is required in which FI Port 1 and FO Port 2, and FI Port 2 and FO Port 1 are connected and connectivity check is attempted.
[0061] In step T17, if the connection port number can be incremented, the connection between the near-end optical transmitter and the FI port by the optical switch is set to the same connection setting as immediately before, and the connection between the near-end optical receiver and the FI port by the optical switch is connected by incrementing the connection port number, and switching setting is performed (step T19). In this embodiment, the optical transmitter is connected to FI port 1, and the optical receiver is connected to FI port 3, and switching setting is performed.
[0062] Then, the connection ports of the optical switch at the far end are set to the same settings as immediately before (step T20). In this embodiment, FO ports 1 and 2 at the far end are connected to return ports 1 and 2 of the optical switch, respectively, and switching settings are performed. Returning to the procedure of step S4, the process is repeated. By repeating the above-mentioned process, it is possible to check the connectivity of all cores that make up the MCF optical transmission line.
[0063] [Third embodiment] [1] Overview of the optical transmission line connectivity verification system FIG. 7 is a diagram illustrating a schematic configuration of an optical transmission line connectivity verification system according to a third embodiment. The basic configuration of the optical transmission line connectivity verification system 3 according to this embodiment is the same as that of the first embodiment. In the optical transmission line connectivity verification system 3 according to this embodiment, an optical transmitter 10 and an optical receiver 20 are connected to the input end of the MCF optical transmission line via an optical switch 51 and an input device 53. A patch cord 81 is connected to the output end of the MCF optical transmission line via an output device 63 and an optical switch 61. In this way, by providing a patch cord to the optical switch at the output end and forming a loopback configuration, connectivity can be verified from one end. The optical switch is equipped with a function for monitoring optical power at each port. Although this embodiment does not include the isolator provided in the second embodiment, a procedure for verifying core connectivity of the MCF optical transmission line is implemented by using the optical power monitoring function at each port of the optical switch.
[0064] [2] Procedure for determining connectivity of MCF optical transmission lines Fig. 8 is a flow diagram showing a procedure for determining the connectivity of an MCF optical transmission line in the third embodiment. Figs. 9A and 9B are sequence diagrams showing a procedure for determining the connectivity of an MCF optical transmission line in the third embodiment. The procedure for determining the connectivity of an MCF optical transmission line in the third embodiment will be described with reference to Figs. 8, 9A, and 9B.
[0065] First, an initialization process is performed (step P1). In the initialization process, the controller performs the following processes on the optical transmitter, optical receiver, near-end (input end) optical switch, and far-end (output end) optical switch: The controller turns off the output light of the optical transmitter and sets the initial wavelength. Then, the controller turns off reception of the optical receiver. Then, the controller performs a process to cancel the switch settings of the near-end optical switch and far-end optical switch. If a setting error occurs during the initialization process, it is determined to be a device malfunction and execution is halted.
[0066] Next, connectivity is checked. In the connectivity check, first, the port (first port) of the optical switch connected to the optical transmitter is connected to FI port 1, and the port (second port) of the optical switch connected to the optical receiver is connected to FI port 2, and then switching settings are performed (step P2). After switching settings are performed, the controller turns on the optical output at the set output in the optical transmitter, and the optical transmitter transmits the signal light (step P3).
[0067] Next, the connectivity of the core from the near end to the far end is checked in the following procedure from steps P4 to P7. The controller checks the received optical power at the optical switch on the far end (step P4). Here, the controller uses the optical power monitoring function of the optical switch on the far end to check whether optical power is detected at all ports connected to the FO port. This identifies the port where received optical power is detected.
[0068] If the port where the received optical power is detected cannot be identified in step P4, this means that none of the cores of the optical transmission line is connected to the far end, and the process ends as a setting abnormality (step P6).
[0069] In step P4, if the port where the received optical power is detected can be identified, the measurement information of the received optical power is acquired. The controller checks the acquired measurement information of the received optical power (step P5). If the received optical power of the port where the received optical power is detected is below the threshold, it is assumed that a transmission path loss greater than expected is occurring, so it is determined that the connection is not appropriate and the process ends with a setting abnormality (step P6). The threshold used as the judgment criterion can be set arbitrarily and is preset in the connectivity judgment function unit of the controller.
[0070] In step P5, if the received optical power of the port where the received optical power is detected is equal to or greater than the threshold, it can be determined that the signal light arrives at the optical receiver from the optical transmitter between the currently connected cores, and a transmission path has been established. In this embodiment, the connectivity between the FI port 1 of the optical transmitter set in step P2 and the FO port on the receiving end where the received optical power was detected in step P4 has been confirmed. This completes the core connectivity check from the near end to the far end (step P7). The setting storage function of the controller stores the correspondence between the FI port 1 for which connectivity has been confirmed and each port number of the FO port. Note that optical fiber loses optical power depending on the optical wavelength, the length of the optical fiber cable, and other factors. Therefore, the threshold used as the judgment criterion can be set arbitrarily for each optical fiber and is preset in the connectivity determination function of the controller.
[0071] Next, the connectivity of the core from the far-end side to the near-end side is confirmed in the following steps P8 to P16. First, the controller performs the initialization process as in step P1 (step P8). Then, the port of the far-end optical switch whose connectivity was confirmed in step P7 is connected to return port 1 of the far-end optical switch (step P9).
[0072] The controller checks whether there are any ports on the FO side for which connectivity check has not been completed that are to be connected to loopback port 2 in the far-end optical switch (step P10). If there are no ports for which connectivity check has not been completed in step P10, the controller cannot continue the connectivity check and terminates the process (step P11). If there are any ports for which connectivity check has not been completed in step P10, the controller selects one of the ports for which connectivity check has not been completed among the FO side port numbers of the far-end optical switch and connects it to loopback port 2 (step P12). The loopback port is selected in ascending order of port number.
[0073] Next, the controller turns on the optical output of the optical transmitter at the set output, and the optical transmitter transmits the signal light (step P13). If the received optical power is confirmed in the optical receiver, the controller acquires measurement information of the received optical power from the optical receiver (step P14) and confirms the acquired measurement information of the received optical power (step P15). If the received optical power is below the threshold in step P15, it can be determined that the core has not established a connection with the FO-side port, and the process returns to step P12. On the other hand, if the received optical power is equal to or greater than the threshold in step P15, it can be determined that the signal light has arrived. Therefore, connectivity between the far-end FO port set in step P12 and the near-end FI port confirmed in the previous procedure (step P2 or step P19) has been confirmed. This completes the confirmation of core connectivity from the far-end to the near-end (step P16). The setting storage function of the controller stores the correspondence between FI port 1 for which connectivity has been confirmed and each port number of the FO port. In addition, optical fibers lose optical power depending on the wavelength of light, the length of the optical fiber cable, etc. Therefore, the threshold value that serves as the judgment criterion can be set arbitrarily according to each optical fiber, and is set in advance in the connectivity judgment function unit of the controller.
[0074] Subsequently, to check the connectivity of another core, initialization processing is performed similarly to step P1 (step P17). The controller checks whether there are any far-end or near-end ports for which connectivity check has not been completed (step P18). If there are any far-end or near-end ports for which connectivity check has not been completed, two of the connection port numbers of the near-end optical transceiver for which connectivity check has not been completed are selected and connected (step P19). As a method for selecting the connection port of the optical transceiver, for example, a method of selecting in ascending order of port number may be used. After selecting the connection port of the optical transceiver, the process returns to the procedure of step P3 and repeats the processing. By repeating the above-mentioned processing, it is possible to check the connectivity of all cores constituting the MCF optical transmission line. If there are no far-end or near-end ports for which connectivity check has not been completed in step P18, all connectivity has been checked, and the process ends (step P20).
[0075] As described above, according to the above embodiment, it is possible to check the optical transmission line connectivity of each core after fusion splicing of the multicore fibers and to clarify the correspondence relationship. As a result, fusion splicing can be performed without being aware of the presence or absence of core numbers or the arrangement of the multicore fibers, the difficulty of constructing an MCF optical transmission line is reduced, and it is possible to reduce the time and cost required for constructing a transmission line. [Explanation of symbols]
[0076] 1, 2, 3 Optical transmission line connectivity verification system 10 Optical Transmitter 20 Optical receiver 30 Controllers 301 Setting memory function unit 303 Connectivity Determination Function Unit 305 Control and management information exchange function unit 40 MCF optical transmission line 51, 61 Optical switch 53 Input Devices 63 Output Devices 71 Isolator 81 Patch Cord
Claims
1. An optical transmission line connectivity confirmation system for confirming connectivity of an optical transmission line in a multi-core fiber fusion-spliced at at least one location, comprising: an optical transmitter that transmits signal light emitted from a light source to the optical transmission line; an optical receiver that receives the signal light from the optical transmission line; an input device and an output device each having a plurality of ports and connected to both ends of each core of the optical transmission line, a control management information transfer function unit that acquires connection information of a first port, which is any port connected to the optical transmitter, and a second port, which is any port connected to the optical receiver, via a separate network; and a controller having a connectivity determination function unit that measures optical power in the optical transmission path and determines connectivity between the first port and the second port.
2. 2. The optical transmission path connectivity confirmation system according to claim 1, wherein the controller further comprises a setting storage function unit that stores a correspondence relationship between the port numbers of the first port and the second port for which connectivity has been confirmed in the connectivity determination function unit.
3. 3. The optical transmission path connectivity confirmation system according to claim 1, wherein the connectivity determination function unit determines that the correspondence between the first port and the second port is inappropriate when the optical power in the optical receiver is less than a threshold value, and determines that the correspondence between the first port and the second port is appropriate when the optical power in the optical receiver is equal to or greater than the threshold value.
4. the optical transmitter and the optical receiver are disposed at both ends of the optical transmission line, 4. The optical transmission path connectivity confirmation system according to claim 3, wherein the connectivity determination function unit determines whether the signal light input from the optical transmitter to the first port corresponds to the signal light output from the second port and received by the optical receiver.
5. the optical transmitter and the optical receiver are disposed on one side of the optical transmission line, an isolator disposed on the other side of the optical transmission line returns the signal light transmitted from the optical transmitter and received via the first optical transmission line to a second optical transmission line different from the first optical transmission line at a return port, and transmits the returned signal light; the optical receiver receives the signal light that is returned at the return port and via the second optical transmission line; 4. The optical transmission line connectivity confirmation system according to claim 3, wherein the connectivity determination function unit determines whether the signal light transmitted from the optical transmitter to the first optical transmission line corresponds to the signal light received by the optical receiver via the second optical transmission line.
6. the optical transmitter and the optical receiver are disposed on one side of the optical transmission line, a patch cord disposed on the other side of the optical transmission line, the signal light transmitted from the optical transmitter and received via the first optical transmission line, is returned at a return port to a second optical transmission line different from the first optical transmission line, and transmitted; the optical receiver receives the signal light that is returned at the return port and via the second optical transmission line; 4. The optical transmission line connectivity confirmation system according to claim 3, wherein the connectivity determination function unit determines whether the signal light input from the optical transmitter to the first port corresponds to the signal light output from an output port arranged on the other side of the optical transmission line via the first optical transmission line, and whether the signal light returned by the patch cord corresponds to the signal light received by the optical receiver.
7. An optical transmission line connectivity confirmation program for confirming connectivity of an optical transmission line in a multi-core fiber fusion-spliced at at least one location, a process in which an optical transmitter transmits signal light emitted from a light source to the optical transmission line; a process in which an optical receiver receives the signal light from the optical transmission line; a process of connecting an input device and an output device having a plurality of ports to both ends of each core of the optical transmission line, respectively; an optical transmission path connectivity confirmation program, characterized in that a controller acquires, via a separate network, in a control management information exchange function unit, connection information of any input port connected to the optical transmitter and any output port connected to the optical receiver; and, in a connectivity determination function unit, measures the optical power in the optical transmission path and determines the connectivity between the input port and the output port.
8. 1. A method for verifying connectivity of an optical transmission line in a multi-core fiber fusion-spliced at at least one location, comprising: an optical transmitter transmitting signal light emitted from a light source to the optical transmission line; an optical receiver receiving the signal light from the optical transmission line; connecting an input device and an output device having a plurality of ports to both ends of each core of the optical transmission line, respectively; a controller, via a separate network, in a control management information transfer function unit, acquiring connection information of any of the input ports connected to the optical transmitter and any of the output ports connected to the optical receiver; and, in a connectivity determination function unit, measuring the optical power in the optical transmission path and determining the connectivity between the input port and the output port.
Citation Information
Patent Citations
Method of confirming link connectability
JP2008022446A
Optical fiber communication system arranged to use multicore optical fiber, and core identifying method
JP2018164138A
Method and apparatus for determining core-dependent losses in multicore fiber transmission systems
JP2021522724A