The present disclosure relates to optical network technologies, and in particular, to a wavelength routing device based on a wavelength cross filter.
An optical router is an important constituent part of an optical interconnection technology, and can connect transmit and receive nodes, so that an optical signal sent from the transmit node is accurately transmitted to the receive node. Optical routers can be mainly divided into two categories: a spatial router based on a spatial optical switch and a wavelength router based on a wavelength optical switch, where the wavelength router becomes a research hotspot because the wavelength router can implement self-routing of optical signal without the need to perform dynamic adjustment. An optical router based on a wavelength cross filter uses periodic characteristics of spectrum filtering of the wavelength cross filter, and therefore can effectively reduce a quantity of switch nodes in an optical wavelength router and reduce the size and time delay of the router.
In the prior art, a topology of an optical router based on a wavelength cross filter is shown in
However, in the prior art, an optical router based on a wavelength cross filter still has a very complex topology, and a large quantity of optical switches are needed in a wavelength router.
The present disclosure provides a wavelength routing device, which simplifies a topology of a wavelength routing device, and reduces a quantity of optical switch nodes in the wavelength routing device.
An embodiment of the present disclosure provides a wavelength routing device, including:
a primary circuit and a secondary circuit, where the primary circuit includes N 2×2 wavelength switches, the secondary circuit includes two N×N wavelength routers, and each N×N wavelength router includes at least one 2×2 wavelength switch, where a value of N is 2n, n being a positive integer; and in the primary circuit, an input port of each 2×2 wavelength switch is connected to an input stage and an output port of each 2×2 wavelength switch is connected to an input port of an N×N wavelength router of the secondary circuit, and output ports of the N×N wavelength routers of the secondary circuit are connected to an output stage.
Further, the input stage includes 2N input ports, where the input ports in the input stage are correspondingly and separately connected to the input ports of the 2×2 wavelength switches in the primary circuit, and the output ports of the 2×2 wavelength switches in the primary circuit are correspondingly connected to the input ports of the N×N wavelength routers in the secondary circuit separately.
Further, the output stage includes 2N output ports, where the output ports in the output stage are correspondingly and separately connected to the output ports of the N×N wavelength routers in the secondary circuit.
Further, a quantity N1 of 2×2 wavelength switches in the wavelength routing device is determined by using a formula (1):
N1=(M1/2)log2 M1 (1)
where M1 is a quantity of the input ports in the input stage or a quantity of the output ports in the output stage.
Further, in the wavelength routing device, a quantity N2 of 2×2 wavelength switches that input optical signal needs to pass through from an input port of the input stage to a specified output port of the output stage is determined by using a formula (2):
N1=log2 M2 (2)
where M2 is the quantity of the input ports or the quantity of the output ports.
According to the wavelength routing device provided in the embodiments of the present disclosure, in the device, the primary circuit includes N 2×2 wavelength switches and the secondary circuit includes two N×N wavelength routers, which simplifies a topology of the wavelength routing device, and reduces a quantity of optical switch nodes in the wavelength routing device.
To describe the technical solutions in the embodiments of the present disclosure or in the prior art more clearly, the following briefly describes the accompanying drawings required for describing the embodiments or the prior art.
To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the following clearly describes the technical solutions in the embodiments of the present disclosure with reference to the accompanying drawings in the embodiments of the present disclosure.
The primary circuit includes N 2×2 wavelength switches ΛA, the secondary circuit includes two N×N wavelength routers, and each N×N wavelength router includes at least one 2×2 wavelength switch ΛA, where a value of N is 2n, n being a positive integer.
In this embodiment, the N 2×2 wavelength switches ΛA and the two N×N wavelength routers are combined to form one 2N×2N wavelength routing device. For example, when the value of N is 2, a 4×4 wavelength routing device includes two 2×2 wavelength switches ΛA and two 2×2 wavelength routers. In this case, each 2×2 wavelength router includes only one 2×2 wavelength switch ΛA, and therefore, it may be considered that the 4×4 wavelength routing device includes four 2×2 wavelength switches ΛA. When the value of N is 4, an 8×8 wavelength routing device includes 4 2×2 wavelength switches ΛA and two 4×4 wavelength routers, and the corresponding 4×4 wavelength routing device when the value of N is 2 may be used as the 4×4 wavelength router, and in this case, the 4×4 wavelength router includes four 2×2 wavelength switches ΛA. Correspondingly, a 16×16 wavelength routing device includes eight 2×2 wavelength switches ΛA and two 8×8 wavelength routers, where the composition of the 8×8 wavelength router is the same as the composition of the 8×8 wavelength routing device.
In this embodiment, in the primary circuit, an input port of each 2×2 wavelength switch ΛA is connected to an input stage and an output port of each 2×2 wavelength switch ΛA is connected to an input port of an N×N wavelength router of the secondary circuit, and output ports of the N×N wavelength routers of the secondary circuit are connected to an output stage. Further, in this embodiment, each 2×2 wavelength switch ΛA includes two input ports and two output ports (for example, input port 1, input port 2, output port 1, and output port 2 shown in
According to the wavelength routing device provided in this embodiment of the present disclosure, in the device, the primary circuit includes N 2×2 wavelength switches and the secondary circuit includes two N×N wavelength routers, which simplifies a topology of the wavelength routing device, and reduces a quantity of optical switch nodes in the wavelength routing device.
Based on the foregoing embodiments, in this embodiment, when a value of N is 2, a structure of a corresponding 4×4 wavelength routing device is shown in
In this embodiment, four input ports in the input stage are represented separately by four nodes, i.e., input nodes T1, T2, T3, and T4. Correspondingly, four output ports in the output stage are represented by output nodes R1, R2, R3, and R4. The four input nodes T1, T2, T3, and T4 are correspondingly connected to input ports of the 2×2 wavelength switches ΛB in the primary circuit, the four nodes R1, R2, R3, and R4 are correspondingly connected to output nodes of the 2×2 wavelength switches ΛA of the secondary circuit, and the 2×2 wavelength switches ΛB in the primary circuit are cross-connected to the 2×2 wavelength switches ΛA in the secondary circuit shown in
For example, when optical signal with the spectrum shown in
A routing table of the 4×4 wavelength routing device in this embodiment is shown in Table 1.
It can be learned from Table 1 that when the input node T1 needs to communicate with the output node R3, the signal can be self-routed to the output node R3 by means of the 4×4 wavelength routing device of this embodiment by simply modulating a signal onto a carrier with a wavelength of λ3 at the input node T1.
According to the wavelength routing device provided in this embodiment of the present disclosure, in the device, the primary circuit includes two 2×2 wavelength switches and the secondary circuit includes two 2×2 wavelength routers, which simplifies a topology of the wavelength routing device, and reduces a quantity of optical switch nodes in the wavelength routing device.
Further, based on the foregoing embodiment, in this embodiment, a quantity N1 of 2×2 wavelength switches in the wavelength routing device is determined by using a formula (1):
N1=(M1/2)log2 M1 (1)
A quantity N2 of 2×2 wavelength switches that input optical signal needs to pass through from an input port (for example, nodes T1 to T8) of the input stage to a specified output port (for example, nodes R1 to R8) of the output stage is determined by using a formula (2):
N1=log2 M2 (2)
where M1 is a quantity of input ports in the input stage or a quantity of output ports in the output stage.
For example, for the 8×8 routing device, the quantity of input ports of the input stage is 8, and therefore, the total quantity of 2×2 wavelength switches in the 8×8 routing device is 12, and the quantity of 2×2 wavelength switches that input optical signal passes through from the node T1 to the node R8 is 3. Compared with the prior art, for a 16×16 routing device, when the quantity of input ports is 16, 32 2×2 wavelength switches are needed in the present disclosure, and four 2×2 wavelength switches are passed through (while in the prior art, four optical switches need to be passed through for even a 9×9 routing device); while in the prior art, a 16×16 routing device needs a total of 48 optical switches. For a 64×64 routing device, 192 2×2 wavelength switches are needed in the present disclosure, while 448 optical switches are needed in the prior art.
Therefore, in the wavelength routing device of this embodiment of the present disclosure, the primary circuit includes N 2×2 wavelength switches and the secondary circuit includes two N×N wavelength routers; in this way, on the one hand, a topology of the wavelength routing device is simplified, and on the other hand, not only a quantity of optical switches in the routing device can be reduced, where the reduction in the quantity of optical switches is more significant for a larger optical network, but also a quantity of optical switches that input optical signal passes through in the routing device can be reduced, thereby improving efficiency of the routing device.
Persons of ordinary skill in the art may understand that all or some of the steps of the method embodiments may be implemented by a program instructing relevant hardware. The program may be stored in a computer-readable storage medium. When the program runs, the steps of the method embodiments are performed. The foregoing storage medium includes: any medium that can store program code, such as a ROM, a RAM, a magnetic disk, or an optical disc.
Finally, it should be noted that the foregoing embodiments are merely intended for describing the technical solutions of the present disclosure, but not for limiting the present disclosure. Although the present disclosure is described in detail with reference to the foregoing embodiments, persons of ordinary skill in the art should understand that they may still make modifications to the technical solutions described in the foregoing embodiments or make equivalent replacements to some or all technical features thereof, without departing from the scope of the technical solutions of the embodiments of the present disclosure.
This application is a continuation of International Application No. PCT/CN2013/001341, filed on Nov. 5, 2013, which is hereby incorporated by reference in its entirety.
Number | Date | Country | |
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Parent | PCT/CN2013/001341 | Nov 2013 | US |
Child | 15132621 | US |