Signal monitoring method and apparatus for wavelength selective switch WSS
10666375 ยท 2020-05-26
Assignee
Inventors
- Liangjia ZONG (Dongguan, CN)
- Han ZHAO (Dongguan, CN)
- Zhiyong Feng (Dongguan, CN)
- Yunfei Yan (Shenzhen, CN)
Cpc classification
G02B6/356
PHYSICS
G02B6/2938
PHYSICS
G02B6/3588
PHYSICS
H04J14/0212
ELECTRICITY
G02B6/3558
PHYSICS
International classification
Abstract
A signal monitoring method and apparatus for a wavelength selective switch (WSS) are provided. The signal monitoring method for a wavelength selective switch WSS includes: encoding a phase of a first optical engine based on an input WDM signal, so that the WDM signal is split into a transmitted signal and a monitored signal after passing through the first optical engine; inputting the monitored signal to a second optical engine disposed at an output-side grating; and controlling the second optical engine to rotate in a wavelength plane of the WDM signal, so that monitored light of a specified wavelength in the monitored signal is output from the second optical engine at a preset angle.
Claims
1. A signal monitoring method for a wavelength selective switch (WSS), wherein after a wavelength division multiplexing (WDM) signal transmitted from an input port in the WSS passes through an incidence grating, light of wavelengths comprised in the WDM signal is incident to different positions on a first optical engine, the method comprising: encoding a phase of the first optical engine based on the WDM signal to split the WDM signal into a transmitted signal and a monitored signal and output the transmitted signal and the monitored signal at different emergence angles towards an output port, wherein the monitored signal is input to a second optical engine disposed at an output-side grating, and energy of the transmitted signal is greater than energy of the monitored signal; determining, in the monitored signal, monitored light of a specified wavelength that currently needs to be monitored; and controlling, based on an incidence angle at which the monitored light is incident to the second optical engine and an emergence angle at which the monitored light is output from the second optical engine, the second optical engine to rotate in a wavelength plane of the WDM signal and output the monitored light at a preset angle.
2. The method according to claim 1, wherein encoding a phase of the first optical engine based on the WDM signal comprises: encoding the phase of the first optical engine by using a formula .sub.splitting(y, )=Arg{C.sub.1()I(y)e.sup.i.sup.
3. The method according to claim 1, wherein: the WSS comprises a plurality of input ports; and before the monitored signal is input to the second optical engine disposed at the output-side grating, the method further comprises: controlling the monitored signal to pass through a third optical engine, wherein the third optical engine is disposed between the first optical engine and the second optical engine, determining, in the plurality of input ports, a first input port corresponding to the monitored light, determining a first transmitted signal and a first monitored signal that are formed after the WDM signal transmitted from the first input port is split after passing through the first optical engine, controlling, based on an incidence angle at which the first monitored signal is incident to the third optical engine, the third optical engine to rotate in a port plane and output the first monitored signal to the second optical engine.
4. The method according to claim 1, wherein: the WSS comprises a plurality of input ports; the monitored light comprises signal light of a same wavelength comprised in a plurality of WDM signals input from the plurality of input ports; and after the monitored signal is input to the second optical engine disposed at the output-side grating, the method further comprises: controlling the monitored light to pass through a fourth optical engine, determining, in the plurality of input ports, a second input port to be monitored, and determining, in the monitored light, monitored signal light that is input from the second input port, and controlling, based on an incidence angle at which the monitored signal light is incident to the fourth optical engine, the fourth optical engine to rotate in a port plane and output the monitored signal light from the fourth optical engine for input to a preset output port.
5. A wavelength selective switch (WSS), comprising: an input port, an incidence grating, an input-end spherical lens, a first optical engine, a second optical engine, an output-end spherical lens, an output-side grating, and a plurality of output ports, wherein: the input port is configured to send a received wavelength division multiplexed (WDM) signal to the incidence grating; the incidence grating is configured to respectively diffract signals of wavelengths in the received WDM signal to the input-end spherical lens at different diffraction angles; the input-end spherical lens is configured to direct the signals of wavelengths to be incident, in parallel, to different positions on the first optical engine; the first optical engine is configured to: perform phase encoding modulation based on the input port corresponding to the signals of wavelengths, and output the signals of wavelengths to the output-end spherical lens at different angles, and split a signal of a wavelength in the signals of wavelengths into a transmitted signal and a monitored signal, and output the transmitted signal and the monitored signal at different emergence angles towards the output port for input to the output-spherical lens; the output-end spherical lens is configured to output the signals of wavelengths to the output-side grating and output the monitored signal to the second optical engine; the output grating is configured to output the signals of wavelengths to the output ports; and the second optical engine is configured to: determine, in the monitored signal, monitored light of a specified wavelength that currently needs to be monitored, and rotate in a wavelength plane of the WDM signal based on an incidence angle at which the monitored light is incident to the second optical engine and an emergence angle at which the monitored light is output from the second optical engine and output the monitored signal at a preset angle.
6. The WSS according to claim 5, further comprising: a plurality of input ports; a third optical engine disposed between the first optical engine and the second optical engine, and configured to: rotate in a port plane based on an incidence angle at which a first monitored signal corresponding to the monitored light is incident to the third optical engine and output the first monitored signal to the second optical engine.
7. The WSS according to claim 5, further comprising: a plurality of input ports, and wherein the monitored light comprises signal light of a same wavelength comprised in a plurality of WDM signals input from the plurality of input ports; and a fourth optical engine disposed between the output-end spherical lens and the output port, and configured to: rotate in a port plane based on an incidence angle at which monitored signal light is incident to the fourth optical engine and the monitored signal light for input to a preset output port, and wherein the monitored signal light is in the monitored light and is input from a second input port to be monitored.
8. A signal monitoring apparatus, comprising: a wavelength selective switch (WSS) comprising an input port, an incidence grating, an input-end spherical lens, a first optical engine, an output-end spherical lens, an output-side grating, and an output port, and the WSS further comprises a second optical engine disposed at the output-side grating, wherein the second optical engine is configured to separate out monitored light of a specified wavelength to be monitored; and a processor configured to: encode a phase of the first optical engine based on a WDM signal received from the input port to split the WDM signal into a transmitted signal and a monitored signal and output the transmitted signal and the monitored signal at different emergence angles towards the output port, wherein the monitored signal is input to the second optical engine, and energy of the transmitted signal is greater than energy of the monitored signal, determine, in the monitored signal, the monitored light of the specified wavelength that currently needs to be monitored; and control, based on an incidence angle at which the monitored light is incident to the second optical engine and an emergence angle at which the monitored light is output from the second optical engine, the second optical engine to rotate in a wavelength plane of the WDM signal and output the monitored light at the emergence angle.
9. The apparatus according to claim 8, wherein the processor is further configured to: encode the phase of the first optical engine by using a formula .sub.splitting(y, )=Arg{C.sub.1()I(y)e.sup.i.sup.
10. The apparatus according to claim 8, wherein: the WSS further comprises a plurality of input ports, and a third optical engine disposed between the first optical engine and the second optical engine; and before controlling the monitored signal to be input to the second optical engine disposed at the output-side grating, the processor is further configured to: control the monitored signal to pass through the third optical engine, determine, in the plurality of input ports, a first input port corresponding to the monitored light, determine a first transmitted signal and a first monitored signal that are formed after the WDM signal transmitted from the first input port is split after passing through the first optical engine, and control, based on an incidence angle at which the first monitored signal is incident to the third optical engine, the third optical engine to rotate in a port plane and output the first monitored signal to the second optical engine for output to a preset output port.
11. The apparatus according to claim 8, wherein: the WSS further comprises a plurality of input ports, and a fourth optical engine disposed between the output-end spherical lens and the output port; the monitored light comprises signal light of a same wavelength that is comprised in a plurality of WDM signals input from the plurality of input ports; and after controlling the monitored signal to be input to the second optical engine disposed at the output-side grating, the processor is further configured to: control the monitored light to pass through the fourth optical engine, determine, in the plurality of input ports, a second input port to be monitored, and determine, in the monitored light, monitored signal light that is input from the second input port, and control, based on an incidence angle at which the monitored signal light is incident to the fourth optical engine, the fourth optical engine to rotate in a port plane and output the monitored signal light for input to a preset output port.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
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DETAILED DESCRIPTION
(13) To make the objectives, technical solutions, and advantages of the embodiments of the present disclosure clearer, the following clearly and completely describes the technical solutions in the embodiments of the present disclosure with reference to the accompanying drawings in the embodiments of the present disclosure. Apparently, the described embodiments are some but not all of the embodiments of the present disclosure. All other embodiments obtained by a person of ordinary skill in the art based on the embodiments of the present disclosure without creative efforts shall fall within the protection scope of the present disclosure.
(14) The following further describes the embodiments of the present disclosure in detail with reference to the accompanying drawings of this specification.
Embodiment 1
(15) As shown in
(16) Step 101: Encode a phase of the first optical engine based on the WDM signal, so that the WDM signal is split into a transmitted signal and a monitored signal after passing through the first optical engine, and the transmitted signal and the monitored signal are output at different emergence angles in a direction of an output port, where the monitored signal is input to a second optical engine disposed at an output-side grating, and energy of the transmitted signal is greater than that of the monitored signal.
(17) Light of different wavelengths that is in the WDM signal is incident, in parallel, to different areas on the first optical engine after the WDM signal passes through the incidence grating. Phase processing is performed on the first optical engine, so that flare energy corresponding to a wavelength can be split into two parts (which respectively correspond to a transmitted signal part and a monitored signal part) for separate output. A larger part of the energy is concentrated in an output direction of the signal (that is, the transmitted signal part), and a direction of the other part, a smaller part, of the energy is an output direction of a monitoring port (that is, the monitored signal part), so that impact of division of the monitored signal on signal transmission is minimized.
(18) Step 102: Determine, in the monitored signal, monitored light of a specified wavelength that currently needs to be monitored.
(19) Step 103: Control, based on an incidence angle at which the monitored light is incident to the second optical engine and an emergence angle at which the monitored light is output from the second optical engine, the second optical engine to rotate in a wavelength plane of the WDM signal, so that the monitored light is output from the second optical engine at a preset angle.
(20) In this embodiment of the present disclosure, the wavelength plane is a plane in which signal light of different wavelengths that is included in the WDM signal is spread out at different angles after the WDM signal passes through the incidence grating.
(21) A second-stage optical engine (where the second optical engine may be a single MEMS micromirror) is further added to a WSS to which the method provided in this embodiment of the present disclosure is applicable. The second-stage optical engine is disposed at the output-side grating of the WSS. When light of signals of different wavelengths is incident to the second optical engine at different angles, the second optical engine is controlled to rotate in the wavelength plane, so that monitored light corresponding to different wavelengths is output in a time-sharing manner. Light of a particular wavelength that needs to be finally output can be selected by using rotation of the second optical engine in the wavelength plane. Therefore, it is only needed to quickly rotate the second optical engine in a wavelength direction to implement a quick signal monitoring function without refreshing phase information of the first optical engine while the monitored signal is scanned.
(22) In this embodiment of the present disclosure, the first optical engine on which phase adjustment is performed processes an entire flare of the WDM signal without dividing the flare into two parts for processing. In this way, light splitting processing may be performed on the WDM signal at any ratio, and it is ensured that performance impact, such as insertion loss, on the original signal is minimal. A specific implementation of encoding the phase of the first optical engine based on the WDM signal may be:
(23) When light of a signal of a specific wavelength is incident to an area on the first optical engine, a phase of the area is encoded, so that a flare in the area is output at a particular light splitting ratio in a particular direction. For example,
(24) the phase of the first optical engine is encoded by using a formula .sub.splitting(y, )=Arg{C.sub.1()I(y)e.sup.i.sup.
(25) C.sub.1:C.sub.2 is an energy ratio of the transmitted signal to the monitored signal. The function .sub.1(y, ) and the function .sub.2(y, ) respectively correspond to the output directions of the transmitted signal and the monitored signal. After the WDM signal is under the action of the phase function .sub.1(y, ) and the energy ratio when passing through the first optical engine, a first part in the WDM signal, as the transmitted signal, is output in a first direction without being split. After the WDM signal is under the action of the phase function .sub.2(y, ) and the energy ratio when passing through the first optical engine, a second part in the WDM signal other than the first part, as the monitored signal, is output in a second direction without being split. The first direction is different from the second direction.
(26) In a specific application example, the WSS includes N output ports. If it is set that the first to the (N1).sup.th output ports are configured to output the transmitted signal and the N.sup.th port is configured to output the monitored signal, the output direction of the transmitted signal corresponding to .sub.1(y, ) is a direction of the first to the (N1).sup.th output ports, and the output direction of the monitored signal corresponding to .sub.2(y, ) is a direction of the N.sup.th output port.
(27) The function .sub.1(y, ) and the function .sub.2(y, ) respectively correspond to the output directions of the transmitted signal and the monitored signal. Therefore, when the first optical engine loads a composite phase .sub.splitting(y, )=Arg{C.sub.1()I(y)e.sup.i.sup.
(28) In addition, .sub.1(y, ) and .sub.2(y, ) are usually linear phases varying from 0 to 2 pi (where phase variations of .sub.1 and .sub.2 are shown in
(29) In a specific application environment, the WSS includes a plurality of implementation structures, generally including: (1) one WSS includes one input port and a plurality of output ports, namely, single-input multiple-output (1N WSS); (2) one WSS includes a plurality of input ports and a plurality of output ports, namely, multiple-input multiple-output (NM WSS). When the method provided in this embodiment of the present disclosure is applied to different WSS structures, specific implementations are different. The specific implementations are as follows:
(30) First, when the method provided in this embodiment of the present disclosure is applied to a 1N WSS structure, a specific implementation may be:
(31) A schematic principle diagram of a basic optical path in a 1N WSS structure in the prior art is shown in
(32) In this solution provided in this embodiment of the present disclosure, the second optical engine is added based on the original 1N WSS structure. A schematic structural diagram of a 1N WSS structure provided in an embodiment of the present disclosure after adjustment is shown in
(33) Light of different wavelengths is incident, in parallel, to different areas on the first optical engine (where the first optical engine may be an LCoS). Phase processing is performed on the LCoS, so that flare energy corresponding to a specific wavelength is split into two parts for separate output. A larger part of the energy is concentrated in an output direction of the signal, and a direction of the other part, a smaller part, of the energy is an output direction of a monitoring port (as shown in
(34) After the transmitted signal and the monitored signal that are output from the first optical engine passes through the spherical lens, the transmitted signal is input to the output-side grating, and the monitored signal is input to the added second optical engine, so that the second optical engine sifts out, from the monitored signal, monitored light of a particular wavelength that currently needs to be monitored.
(35) Second, when the method provided in this embodiment of the present disclosure is applied to a multiple-input multiple-output (NM WSS) WSS structure, there are two types of NM WSS. A role of a first type of NM WSS (where a specific structure is shown in
(36) 1. For the first type of NM WSS structure, because there are a plurality of input ports, an input port at which a multi-wavelength signal is monitored needs to be determined, and light of which wavelength in the multi-wavelength signal is monitored also needs to be determined. Therefore, based on step 101 and step 102, it is also needed to further sift out, in the following manner, a particular multi-wavelength signal that needs to be monitored from multi-wavelength signals corresponding to the plurality of input ports. Therefore, to implement the method in this embodiment, in the method provided in this embodiment of the present disclosure, the WSS structure includes the first optical engine, the second optical engine, and a third optical engine (specifically, as shown in
(37) A1: Control the monitored signal to pass through the third optical engine, where the third optical engine is disposed between the first optical engine and the second optical engine.
(38) A2: Determine, in the plurality of input ports, a first input port corresponding to the monitored light.
(39) The method in this embodiment is applied to the WSS structure including the plurality of input ports. Therefore, monitoring a signal corresponding to which input port at a specific time point needs to be determined, and the first input port corresponding to the finally output monitored light needs to be determined.
(40) A3: Determine a first transmitted signal and a first monitored signal that are formed after the WDM signal transmitted from the first input port is split after passing through the first optical engine.
(41) A4: Control, based on an incidence angle at which the first monitored signal is incident to the third optical engine, the third optical engine to rotate in a port plane, so that the first monitored signal is output to the second optical engine from the third optical engine, and the monitored light that is output from the second optical engine is input to a preset output port.
(42) In this embodiment, a final effect to be achieved through rotation of the third optical engine in the port plane is that: the first monitored signal is sifted out from monitored signals from the plurality of input ports, and it is ensured that an emergence direction, in the port plane, of the monitored light that is output after the first monitored signal passes through the second optical engine corresponds to the output port. Therefore, when the third optical engine is controlled to rotate in the port plane, reference needs to be made to the incidence angle of the first monitored signal and a final position of the output port of the monitored light, to ensure that the monitored light to be monitored is output from a particular output port at a particular time point.
(43) A specific implementation of applying the method provided in this embodiment of the present disclosure to the first type of NM WSS structure is described below with reference to a specific structural accompanying drawing.
(44) In this embodiment, compared with the 1N WSS structure, a multi-port WSS device requires optical engines of two stages (the first optical engine and the third optical engine shown in
(45) An NM WSS structure provided in an embodiment of the present disclosure is shown in
(46) The monitored signals corresponding to the input ports are all mapped to a same particular position area on the third optical engine, but incidence angles in the port plane are different. Therefore, when the third optical engine is controlled to rotate in the port plane, an input port from which a monitored signal is to be output may be selected.
(47) After the third optical engine determines a monitored signal of a specific input port, the monitored signal is mapped to the second optical engine. The second optical engine disposed at the output-side grating rotates in the wavelength direction to select monitored light of a particular wavelength for output.
(48) Positions of each flare on the first optical engine and the third optical engine are shown in
(49) 2. For the second type of NM WSS structure, the method provided in this embodiment of the present disclosure is applicable to a WSS structure shown in
(50) B1: Control the monitored light to pass through the fourth optical engine.
(51) B2: Determine, in the plurality of input ports, a second input port to be monitored, and determine, in the monitored light, monitored signal light that is input from the second input port.
(52) B3: Control, based on an incidence angle at which the monitored signal light is incident to the fourth optical engine, the fourth optical engine to rotate in a port plane, so that the monitored signal light is output from the fourth optical engine and is input to a preset output port.
(53) A specific implementation of applying the method provided in this embodiment of the present disclosure to the second type of NM WSS structure is described below with reference to a specific structural accompanying drawing.
(54) In an existing WSS structure, the output-side grating is in front of the fourth optical engine. When an optical signal obtained through optical multiplexing that is output from the first optical engine is mapped to the fourth optical engine, a role of the fourth optical engine is to select an input port from which a multiplexed signal is to be output and selection cannot be performed for each wavelength. Therefore, a signal wavelength can be selected based on the second optical engine newly added to the output-side grating in this solution of the present disclosure. A specific structure is shown in
(55) An NM WSS structure according to an embodiment of the present disclosure is shown in
(56) After the monitored signal corresponding to each input port is mapped to a particular position on the second optical engine, the second optical engine rotates in the wavelength plane to sift out monitored light of a particular wavelength from each monitored signal for output, and maps the monitored light to a particular position on the fourth optical engine.
(57) The monitored light of the particular wavelength that corresponds to each input port is mapped to the particular position on the fourth optical engine. Therefore, when the fourth optical engine is controlled to rotate in the port plane, an input port from which monitored light of a particular wavelength is to be output may be selected.
(58) According to the method provided in this embodiment of the present disclosure, one stage of optical engine is added based on the original WSS structure to select signal light to be monitored, thereby effectively improving a fault monitoring speed of the WSS structure.
(59) In addition, in the method provided in this embodiment of the present disclosure, the first optical engine on which phase adjustment is performed processes an entire flare of the WDM signal without dividing the flare into two parts for processing. In this way, light splitting processing may be performed on the WDM signal at any ratio, and it is ensured that performance impact, such as insertion loss, on the original signal is minimal.
Embodiment 2
(60) As shown in
(61) The input port 501 is configured to send an input WDM signal to the incidence grating.
(62) The incidence grating 502 is configured to respectively diffract signals of wavelengths in the received WDM signal to the input-end spherical lens at different diffraction angles.
(63) The input-end spherical lens 503 is configured to allow the signals of wavelengths to be incident, in parallel, to different positions or areas on the first optical engine.
(64) The first optical engine 504 is configured to perform phase encoding modulation based on the input port corresponding to the signals of wavelengths, and output the signals of wavelengths to the output-end spherical lens at different angles.
(65) The output-end spherical lens 505 is configured to output the signals of wavelengths to the output-side grating.
(66) The output-side grating is configured to output the signals of wavelengths from different the output ports.
(67) In this solution provided in this embodiment of the present disclosure, the WSS further includes a second optical engine 508. The second optical engine 508 is disposed at the output-side grating 506. Based on a structure provided with the second optical engine 508, the first optical engine 504 is further configured to split a signal of any wavelength in the signals of wavelengths into a transmitted signal and a monitored signal, and output the transmitted signal and the monitored signal at different emergence angles in a direction of the output port, so that the monitored signal is input to the second optical engine 508.
(68) Correspondingly, the second optical engine 508 is configured to determine, in the monitored signal, monitored light of a specified wavelength that currently needs to be monitored, and rotate in a wavelength plane of the WDM signal based on an incidence angle at which the monitored light is incident to the second optical engine 508 and an emergence angle at which the monitored light is output from the second optical engine 508, so that the monitored light is output from the second optical engine at a preset angle.
(69) In a specific application environment, the WSS includes a plurality of implementation structures, generally including: one input signal corresponds to a plurality of output signals, namely, single-input multiple-output (1N WSS); or a plurality of input signals correspond to a plurality of output signals, namely, multiple-input multiple-output (NM WSS). For a WSS structure including a plurality of input ports, a specific implementation is different. The specific implementation is as follows:
(70) First, a role of the NM WSS is that an optical signal of any output port may come from any input port or is a combination of signals from a plurality of input ports. Therefore, the wavelength selective switch WSS (where a structure is shown in
(71) a third optical engine, where the third optical engine is disposed between the first optical engine and the second optical engine, and is configured to determine, in monitored light corresponding to the plurality of input ports, a first monitored signal; and rotate in a port plane based on an incidence angle at which the first monitored signal is incident to the third optical engine, so that the first monitored signal is output to the second optical engine from the third optical engine, and the monitored light that is output from the second optical engine is input to a preset output port.
(72) Second, the NM WSS structure includes N input ports and M output ports. An output signal of the M output ports can only come from one of the N ports. Therefore, the wavelength selective switch WSS (where a structure is shown in
(73) a fourth optical engine, where the fourth optical engine is disposed between the output-end spherical lens and the output port, and is configured to rotate in a port plane based on an incidence angle at which monitored signal light is incident to the fourth optical engine, so that the monitored signal light is output and is input to a preset output port, where the monitored signal light is in the monitored light and is input from a second input port to be monitored.
Embodiment 3
(74) As shown in
(75) The processor 602 is configured to: encode a phase of the first optical engine based on a WDM signal transmitted from the input port, so that the WDM signal is split into a transmitted signal and a monitored signal after passing through the first optical engine, and the transmitted signal and the monitored signal are output at different emergence angles in a direction of the output port, where the monitored signal is input to the second optical engine, and energy of the transmitted signal is greater than that of the monitored signal; determine, in the monitored signal, monitored light of the specified wavelength that currently needs to be monitored; and control, based on an incidence angle at which the monitored light is incident to the second optical engine and an emergence angle at which the monitored light is output from the second optical engine, the second optical engine to rotate in a wavelength plane of the WDM signal, so that the monitored light is output from the second optical engine at the emergence angle.
(76) Optionally, the processor 602 is further configured to:
(77) encode the phase of the first optical engine by using a formula .sub.splitting(y, )=Arg{C.sub.1()I(y)e.sup.i.sup.
(78) When the apparatus provided in this embodiment of the present disclosure is applied to a multiple-input multiple-output (NM WSS) WSS structure, there are specifically two types of NM WSS structures. A role of a first type of NM WSS is that an optical signal of any output port may come from any input port or is a combination of signals from a plurality of input ports. A second type of NM WSS structure includes N input ports and M output ports, and an output signal of the M output ports can come from only one of the N ports. For the two cases, the apparatus provided in this embodiment may be specifically as follows:
(79) First, for the first type of multiple-input multiple-output WSS structure, the WSS further includes a third optical engine. The third optical engine is disposed between the first optical engine and the second optical engine. Correspondingly, the processor 602 is further configured to: before controlling the monitored signal to be input to the second optical engine disposed at the output-side grating, control the monitored signal to pass through the third optical engine; determine, in the plurality of input ports, a first input port corresponding to the monitored light; determine a first transmitted signal and a first monitored signal that are formed after the WDM signal transmitted from the first input port is split after passing through the first optical engine; and control, based on an incidence angle at which the first monitored signal is incident to the third optical engine, the third optical engine to rotate in a port plane, so that the first monitored signal is output to the second optical engine from the third optical engine, and the monitored light that is output from the second optical engine is output to a preset output port.
(80) Second, for the second type of multiple-input multiple-output WSS structure, the WSS further includes a fourth optical engine. The fourth optical engine is disposed between the output-end spherical lens and the output port. Correspondingly, after controlling the monitored signal to be input to the second optical engine disposed at the output-side grating, the processor 602 is further configured to: control the monitored light to pass through the fourth optical engine; determine, in the plurality of input ports, a second input port to be monitored, and determine, in the monitored light, monitored signal light that is input from the second input port; and control, based on an incidence angle at which the monitored signal light is incident to the fourth optical engine, the fourth optical engine to rotate in a port plane, so that the monitored signal light is output from the fourth optical engine and is input to a preset output port.
(81) The foregoing technical solutions in the embodiments of this application have at least the following technical effects or advantages:
(82) According to the method and the apparatus that are provided in the embodiments of the present disclosure, one stage of optical engine is added based on the original WSS structure to select signal light to be monitored, thereby effectively improving a fault monitoring speed of the WSS structure.
(83) In addition, in the method and the apparatus that are provided the embodiments of the present disclosure, the first optical engine on which phase adjustment is performed processes an entire flare of the WDM signal without dividing the flare into two parts for processing. In this way, light splitting processing may be performed on the WDM signal at any ratio, and it is ensured that performance impact, such as insertion loss, on the original signal is minimal.
(84) The present disclosure is described with reference to the flowcharts and/or block diagrams of the method, the device (system), and the computer program product according to the embodiments of the present disclosure. It should be understood that computer program instructions may be used to implement each process and/or each block in the flowcharts and/or the block diagrams and a combination of a process and/or a block in the flowcharts and/or the block diagrams. These computer program instructions may be provided for a general-purpose computer, a special-purpose computer, an embedded processor, or a processor of any other programmable data processing device to generate a machine, so that the instructions executed by a computer or a processor of any other programmable data processing device generate an apparatus for implementing a specific function in one or more processes in the flowcharts and/or in one or more blocks in the block diagrams.
(85) These computer program instructions may be stored in a computer-readable memory that can instruct the computer or any other programmable data processing device to work in a specific manner, so that the instructions stored in the computer-readable memory generate an artifact that includes an instruction apparatus. The instruction apparatus implements a specific function in one or more processes in the flowcharts and/or in one or more blocks in the block diagrams.
(86) These computer program instructions may be loaded onto a computer or another programmable data processing device, so that a series of operations and steps are performed on the computer or the another programmable device, thereby generating computer-implemented processing. Therefore, the instructions executed on the computer or the other programmable device provide steps for implementing a specific function in one or more processes in the flowcharts and/or in one or more blocks in the block diagrams.
(87) Obviously, a person skilled in the art can make various modifications and variations to the present disclosure without departing from the spirit and scope of the present disclosure. The present disclosure is intended to cover these modifications and variations provided that they fall within the scope of protection defined by the following claims and their equivalent technologies.