Optical transceivers include optical output monitoring methods, devices, computer equipment, and storage media.

CN115882945BActive Publication Date: 2026-08-14RESERCH ON ELECTRICAL APPLIANCES OF SHANGHAI ASTRONAUTICS CO LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Patents(China)
Current Assignee / Owner
Filing Date
2022-12-09
Publication Date
2026-08-14

AI Technical Summary

Technical Problem

[0003]然而,传统的光端机在对指示灯控制时,基本是直接采用光纤中的光信号进行控制,容易导致指示灯的显示输出过大,甚至导致在长时间的显示时损坏

Benefits of technology

[0026]通过对检测光功的采集,以便于对光端机接收的光信号进行部分采样,之后对检测光功与预设光功进行光跳处理,以对光端机采样的光信号进行光功率差异比较,以确定光端机采集的光信号的功率与指定功率的差异程度,最后根据上述光功率差异程度,对指示灯的控制电压进行调整,以便于对指示灯的显示输出功率进行对应调整,使得指示灯处于适当的显示光功率下,有效地降低了指示灯的损坏几率。

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Abstract

This application provides a method, apparatus, computer equipment, and storage medium for monitoring the optical output of an optical transceiver. The method includes acquiring the detected optical power of the optical transceiver; performing optical jump processing on the detected optical power and a preset optical power to obtain an optical power jump variable; and sending a jump level signal to the optical transceiver control system according to the optical power jump variable to adjust the display optical power output of an indicator light. By acquiring the detected optical power, partial sampling of the optical signal received by the optical transceiver is performed. Then, optical jump processing is performed on the detected optical power and the preset optical power to compare the optical power difference of the sampled optical signal, determining the degree of difference between the power of the optical signal acquired by the optical transceiver and the specified power. Finally, based on the degree of optical power difference, the control voltage of the indicator light is adjusted to correspondingly adjust the display output power of the indicator light, ensuring that the indicator light is at an appropriate display optical power, effectively reducing the probability of indicator light damage.
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Description

Technical Field

[0001] This invention relates to the field of optical transceiver technology, and in particular to an optical transceiver with optical output monitoring method, device, computer equipment, and storage medium. Background Technology

[0002] Optical transceivers are transmission devices in optical communication systems, primarily performing photoelectric conversion and transmission functions. They are commonly used in telecommunications, power, monitoring, industrial control, and video transmission, and have a wide range of applications across various industries. The term "optical transceiver" usually refers to an optical transceiver used in monitoring systems to transmit integrated information such as video, data, Ethernet, and audio. For example, an optical transceiver used for indicator light control converts optical control signals in the optical fiber to adjust the display of the indicator lights.

[0003] However, traditional optical transceivers control indicator lights primarily by directly using optical signals from the optical fiber, which can easily lead to excessive output from the indicator lights and even damage during prolonged display. Summary of the Invention

[0004] The purpose of this invention is to overcome the shortcomings of the prior art and provide an optical output monitoring method, device, computer equipment, and storage medium for optical transceivers that facilitates adjustment of output power.

[0005] The objective of this invention is achieved through the following technical solution:

[0006] A method for monitoring the optical output of an optical transceiver, the method comprising:

[0007] Acquire the detection optical power of the optical transceiver;

[0008] The detected optical power and the preset optical power are subjected to optical jump processing to obtain the optical power jump variable;

[0009] The optical power jump variable is used to send a jump level signal to the optical terminal control system to adjust the display optical power output of the indicator light.

[0010] In one embodiment, acquiring the detection optical power of the optical transceiver includes: acquiring the output optical power of the optical transceiver.

[0011] In one embodiment, the step of performing optical jump processing on the detected optical power and the preset optical power to obtain the optical power jump variable includes: calculating the optical power jump difference between the output optical power and the preset optical power to obtain the optical power jump variable.

[0012] In one embodiment, the acquisition of the detection optical power of the optical transceiver further includes: performing low-speed processing on the output detection light of the optical transceiver.

[0013] In one embodiment, the step of sending a switching level signal to the optical terminal control system according to the optical power switching variable to adjust the display light power output of the indicator light includes: detecting whether the optical power switching variable matches a preset switching variable; when the optical power switching variable matches the preset switching variable, sending a switching low signal to the optical terminal control system to make the indicator light output high light power.

[0014] In one embodiment, the step of detecting whether the optical power jump variable matches the preset jump variable further includes: when the optical power jump variable does not match the preset jump variable, sending a high jump electrical signal to the optical terminal control system to cause the indicator light to output low optical power.

[0015] In one embodiment, the step of sending a switching level signal to the optical terminal control system according to the optical power switching variable to adjust the display optical power output of the indicator light further includes: performing follow-up isolation processing on the display voltage corresponding to the switching level signal.

[0016] An optical transceiver includes an optical output monitoring device, comprising: an optical transceiver acquisition unit and an optical transceiver output monitor; the optical transceiver acquisition unit is used to acquire the detected optical power of the optical transceiver; the input terminal of the optical transceiver output monitor is connected to the output terminal of the optical transceiver acquisition unit, and the optical transceiver output monitor is used to perform optical jump processing on the detected optical power and a preset optical power to obtain an optical power jump variable; and sends a jump level signal to the optical transceiver control system according to the optical power jump variable to adjust the displayed optical power output of the indicator light.

[0017] A computer device includes a memory and a processor, the memory storing a computer program, and the processor executing the computer program performing the following steps:

[0018] Acquire the detection optical power of the optical transceiver;

[0019] The detected optical power and the preset optical power are subjected to optical jump processing to obtain the optical power jump variable;

[0020] The optical power jump variable is used to send a jump level signal to the optical terminal control system to adjust the display optical power output of the indicator light.

[0021] A computer-readable storage medium having a computer program stored thereon, the computer program performing the following steps when executed by a processor:

[0022] Acquire the detection optical power of the optical transceiver;

[0023] The detected optical power and the preset optical power are subjected to optical jump processing to obtain the optical power jump variable;

[0024] The optical power jump variable is used to send a jump level signal to the optical terminal control system to adjust the display optical power output of the indicator light.

[0025] Compared with the prior art, the present invention has at least the following advantages:

[0026] By collecting the detected optical power, the optical signal received by the optical transceiver can be partially sampled. Then, optical jump processing is performed between the detected optical power and the preset optical power to compare the optical power difference of the optical signal sampled by the optical transceiver. This determines the degree of difference between the power of the optical signal collected by the optical transceiver and the specified power. Finally, based on the degree of optical power difference, the control voltage of the indicator light is adjusted to adjust the display output power of the indicator light accordingly, so that the indicator light is at an appropriate display optical power, effectively reducing the probability of indicator light damage. Attached Figure Description

[0027] To more clearly illustrate the technical solutions of the embodiments of the present invention, the accompanying drawings used in the embodiments will be briefly introduced below. It should be understood that the following drawings only show some embodiments of the present invention and should not be regarded as a limitation on the scope. For those skilled in the art, other related drawings can be obtained based on these drawings without creative effort.

[0028] Figure 1 This is a flowchart of a method for monitoring the optical output of an optical transceiver in one embodiment;

[0029] Figure 2 This is an internal structural diagram of a computer device in one embodiment. Detailed Implementation

[0030] To facilitate understanding of the present invention, a more complete description will be given below with reference to the accompanying drawings. Preferred embodiments of the invention are shown in the drawings. However, the invention can be implemented in many different forms and is not limited to the embodiments described herein. Rather, these embodiments are provided to provide a thorough and complete understanding of the disclosure of the invention.

[0031] It should be noted that when an element is referred to as being "fixed to" another element, it can be directly attached to the other element or there may be an intervening element. When an element is referred to as being "connected to" another element, it can be directly connected to the other element or there may be an intervening element. The terms "vertical," "horizontal," "left," "right," and similar expressions used herein are for illustrative purposes only and do not represent the only possible implementation.

[0032] Unless otherwise defined, all technical and scientific terms used herein have the same meaning as commonly understood by one of ordinary skill in the art to which this invention pertains. The terminology used herein in the description of the invention is for the purpose of describing particular embodiments only and is not intended to be limiting of the invention. The term "and / or" as used herein includes any and all combinations of one or more of the associated listed items.

[0033] This invention relates to a method for monitoring the optical output of an optical transceiver. In one embodiment, the method includes acquiring the detected optical power of the optical transceiver; performing optical jump processing on the detected optical power and a preset optical power to obtain an optical power jump variable; and sending a jump level signal to the optical transceiver control system according to the optical power jump variable to adjust the display optical power output of the indicator light. By acquiring the detected optical power, the optical signal received by the optical transceiver can be partially sampled. Then, optical jump processing is performed on the detected optical power and the preset optical power to compare the optical power difference of the sampled optical signal, determining the degree of difference between the power of the optical signal acquired by the optical transceiver and the specified power. Finally, based on the degree of optical power difference, the control voltage of the indicator light is adjusted to correspondingly adjust the display output power of the indicator light, ensuring that the indicator light is at an appropriate display optical power, effectively reducing the probability of indicator light damage.

[0034] Please see Figure 1 This is a flowchart of a method for monitoring the optical output of an optical transceiver according to an embodiment of the present invention. The circuit board bonding anti-mixing monitoring method includes some or all of the following steps.

[0035] S100: Acquire the detection optical power of the optical transceiver.

[0036] In this embodiment, the detected optical power is the sampling optical power on the optical transceiver, that is, the detected optical power is the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for optical control of the indicator light, thereby facilitating the collection of the light intensity of the optical signal collected by the optical transceiver for optical control of the indicator light. This makes it easier to adjust the display power of the indicator light according to the optical signal collected by the optical transceiver for optical control of the indicator light, so as to avoid the indicator light from working under excessive power for a long time, thereby effectively reducing the probability of indicator light damage.

[0037] S200: Perform optical jump processing on the detected optical power and the preset optical power to obtain the optical power jump variable.

[0038] In this embodiment, the detected optical power is the sampling optical power on the optical transceiver, that is, the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for controlling the indicator light, thereby facilitating the acquisition of the light intensity of the optical signal used for controlling the indicator light. This allows for subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for controlling the indicator light, preventing the indicator light from operating at excessive power for extended periods, thus effectively reducing the probability of indicator light damage. The preset optical power is the standard sampling optical power on the optical transceiver, that is, the power of the standard optical signal collected by the optical transceiver from the optical fiber. In other words, the preset optical power corresponds to the specified optical signal collected by the optical transceiver. The optical jump processing between the detected optical power and the preset optical power is to compare the power of the optical control signal collected by the optical transceiver to determine the degree of difference between the power of the optical control signal collected by the optical transceiver and the standard power. This facilitates subsequent adjustment of the display power of the indicator light based on the degree of difference, ensuring that the indicator light operates at the normal display power.

[0039] S300: Sends a switching level signal to the optical terminal control system according to the optical power switching variable to adjust the display optical power output of the indicator light.

[0040] In this embodiment, the optical power jump variable is obtained based on the measured optical power and the preset optical power. The detected optical power is the sampling optical power on the optical transceiver, that is, the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for controlling the indicator light, thereby facilitating the collection of the light intensity of the optical signal used for controlling the indicator light. This allows for subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for controlling the indicator light, preventing the indicator light from operating at excessive power for extended periods, thus effectively reducing the probability of indicator light damage. The preset optical power is the standard sampling optical power on the optical transceiver, that is, the power of the standard optical signal collected by the optical transceiver from the optical fiber. In other words, the preset optical power corresponds to the specified optical signal collected by the optical transceiver. The optical power jump variable is the result of comparing the power of the optical control signal collected by the optical transceiver. After determining the optical power jump variable, the optical control signal is converted into a corresponding electrical control signal by outputting a jump level signal to realize the display control of the indicator light. That is, the optical power jump variable determines the degree of difference between the power of the optical control signal collected by the optical transceiver and the standard power, so as to facilitate the adjustment of the display power of the indicator light according to the degree of difference, so as to ensure that the indicator light works at the normal display power.

[0041] In the above embodiment, by collecting the detected optical power, the optical signal received by the optical transceiver is partially sampled. Then, optical jump processing is performed between the detected optical power and the preset optical power to compare the optical power difference of the optical signal sampled by the optical transceiver, so as to determine the degree of difference between the power of the optical signal collected by the optical transceiver and the specified power. Finally, according to the degree of optical power difference, the control voltage of the indicator light is adjusted so as to adjust the display output power of the indicator light accordingly, so that the indicator light is under an appropriate display optical power, effectively reducing the probability of indicator light damage.

[0042] In one embodiment, acquiring the detected optical power of the optical transceiver includes: acquiring the output optical power of the optical transceiver. In this embodiment, the detected optical power is the sampling optical power on the optical transceiver, that is, the detected optical power is the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By acquiring the detected optical power, the output optical power of the optical transceiver is also acquired, facilitating power sampling of the optical signal collected by the optical transceiver for controlling the indicator light. This facilitates the acquisition of the intensity of the optical signal collected by the optical transceiver for controlling the indicator light, and subsequently facilitates the adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for controlling the indicator light, thereby preventing the indicator light from operating at excessive power for extended periods and effectively reducing the probability of indicator light damage.

[0043] Further, the step of performing optical hop processing on the detected optical power and the preset optical power to obtain the optical power hop variable includes: calculating the optical power hop difference between the output optical power and the preset optical power to obtain the optical power hop variable. In this embodiment, the output optical power is the sampling optical power on the optical transceiver, that is, the output optical power is the power collected by the optical transceiver from the optical signal in the optical fiber, and the output optical power corresponds to the optical signal collected by the optical transceiver. By collecting the output optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for optical control of the indicator light, thereby facilitating the collection of the intensity of the optical signal collected by the optical transceiver for optical control of the indicator light, and thus facilitating the subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for optical control of the indicator light. The preset optical power is the standard output optical power on the optical transceiver, that is, the preset optical power is the standard output power collected by the optical transceiver from the optical signal in the optical fiber, and the preset optical power corresponds to the standard output optical signal collected by the optical transceiver. By measuring the power difference between the output optical power and the preset optical power, the power jump detection of the output optical signal of the optical transceiver can be performed to determine the degree of difference between the output optical power of the optical transceiver and the specified optical power.

[0044] In one embodiment, the acquisition of the detection optical power of the optical transceiver further includes: performing low-speed processing on the output detection light of the optical transceiver. In this embodiment, the detection optical power is the sampling optical power on the optical transceiver, that is, the detection optical power is the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detection optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detection optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for controlling the indicator light, thereby facilitating the acquisition of the light intensity of the optical signal used for controlling the indicator light. This allows for subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for controlling the indicator light, preventing the indicator light from operating at excessive power for extended periods, thus effectively reducing the probability of indicator light damage. Before sampling the optical power, the optical signal to be detected undergoes low-speed processing, converting all the optical signals collected by the optical transceiver into corresponding voltage signals. This improves the accuracy of the conversion of the optical signals collected by the optical transceiver, ensuring the precision of the sampling of the optical power and facilitating precise control of the indicator light display. In another embodiment, the optical signal collected by the optical transceiver undergoes photoelectric conversion via 48 low-speed optical modules.

[0045] In one embodiment, the step of sending a switching level signal to the optical terminal control system according to the optical power switching variable to adjust the display light power output of the indicator light includes: detecting whether the optical power switching variable matches a preset switching variable; when the optical power switching variable matches the preset switching variable, sending a switching low signal to the optical terminal control system to make the indicator light output high light power. In this embodiment, the optical power jump variable is obtained based on the measured optical power and the preset optical power. The detected optical power is the sampled optical power on the optical transceiver, that is, the power of the optical signal collected by the optical transceiver from the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for controlling the indicator light, thereby facilitating the collection of the light intensity of the optical signal used for controlling the indicator light. This allows for subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for controlling the indicator light, preventing the indicator light from operating at excessive power for extended periods, thus effectively reducing the probability of indicator light damage. The optical power jump variable is the result of comparing the power of the optical control signal collected by the optical transceiver, and the preset jump variable is the standard result of comparing the power of the optical control signal collected by the optical transceiver; that is, the preset jump variable is a standard optical power jump variable. In this way, the matching of the optical power jump variable with the preset jump variable indicates that the jump value of the power of the optical control signal collected by the optical transceiver matches the standard optical power jump threshold, that is, it indicates that the power of the optical control signal collected by the optical transceiver is higher than the jump threshold, which also indicates that the optical control signal collected by the optical transceiver is a light output signal. At this time, a jump low electrical signal is sent to the optical transceiver control system to realize the conversion of the optical control signal into an electrical control signal, so that the indicator light outputs high light power, thereby enabling the indicator light to output light and thus enabling the indicator light to emit light normally.

[0046] Furthermore, the step of detecting whether the optical power jump variable matches the preset jump variable further includes: when the optical power jump variable does not match the preset jump variable, sending a high-jump electrical signal to the optical terminal control system to cause the indicator light to output low optical power. In this embodiment, the optical power jump variable is obtained based on the measured optical power and the preset optical power. The detected optical power is the sampled optical power on the optical transceiver, that is, the detected optical power is the power collected by the optical transceiver from the optical signal in the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for optical control of the indicator light, thereby facilitating the collection of the light intensity of the optical signal collected by the optical transceiver for optical control of the indicator light. This facilitates subsequent adjustment of the indicator light's display power based on the optical signal collected by the optical transceiver for optical control of the indicator light, thus avoiding the indicator light from operating at excessive power for a long time and effectively reducing the probability of indicator light damage. The optical power jump variable is the result of comparing the power of the optical control signal collected by the optical transceiver. The preset jump variable is the standard result of comparing the power of the optical control signal collected by the optical transceiver; that is, the preset jump variable is the standard optical power jump variable. Thus, if the optical power jump variable does not match the preset jump variable, it indicates that the jump value of the power of the optical control signal collected by the optical transceiver is not equivalent to the standard optical power jump threshold. This means that the power of the optical control signal collected by the optical transceiver is lower than the jump threshold, indicating that the optical control signal collected by the optical transceiver has no light output. In this case, a high jump electrical signal is sent to the optical transceiver control system, which converts the optical control signal into an electrical control signal, causing the indicator light to output low light power, thereby causing the indicator light to have no light output and thus stop emitting light.

[0047] In one embodiment, the step of sending a transition level signal to the optical terminal control system based on the optical power transition variable to adjust the display optical power output of the indicator light further includes: performing follow-up isolation processing on the display voltage corresponding to the transition level signal. In this embodiment, the optical power transition variable is obtained based on the measured optical power and the preset optical power. The detected optical power is the sampled optical power on the optical transceiver, that is, the detected optical power is the power collected by the optical transceiver from the optical signal in the optical fiber. In other words, the detected optical power corresponds to the optical signal collected by the optical transceiver. By collecting the detected optical power, it is convenient to sample the power of the optical signal collected by the optical transceiver for optical control of the indicator light, thereby facilitating the collection of the light intensity of the optical signal collected by the optical transceiver for optical control of the indicator light. This makes it easier to adjust the display power of the indicator light based on the optical signal collected by the optical transceiver for optical control of the indicator light, so as to avoid the indicator light from operating under excessive power for a long time, thereby effectively reducing the probability of indicator light damage. The preset optical power is the standard sampling optical power on the optical transceiver, that is, the power that the optical transceiver collects from the standard optical signal in the optical fiber, and the preset optical power corresponds to the specified optical signal collected by the optical transceiver. The optical power jump variable is the result of comparing the power of the optical control signal collected by the optical transceiver. After determining the optical power jump variable, a jump level signal is output to convert the optical control signal into a corresponding electrical control signal to control the indicator light's display. The optical power jump variable determines the degree of difference between the power of the optical control signal collected by the optical transceiver and the standard power, thus facilitating the adjustment of the indicator light's display power based on this difference to ensure the indicator light operates at its normal display power. The jump level signal is obtained based on optical signal conversion, that is, an electrical signal after photoelectric conversion. The jump level signal controls the indicator light's display. Before the indicator light outputs its signal, the jump level signal undergoes follow-up isolation processing to isolate the control signal received by the indicator light from the electrical signals in the preceding system, maintaining the stability of the electrical signal control and reducing interference with the indicator light's optical output. In another embodiment, the level-changing signal is isolated by a voltage follower and then output to the indicator light.

[0048] In the actual photoelectric conversion detection process of the optical transceiver, the input end of the transceiver collects the optical signal carried on the optical fiber, and then processes and analyzes the optical signal to achieve optical output control of the indicator light. However, since the optical signal collected by the optical transceiver originates from the optical fiber, if all the optical signal in the optical fiber is used to control the indicator light, it is easy to lead to poor utilization of the optical signal, which can easily result in serious optical loss.

[0049] To improve the utilization rate of optical signals with light output, the acquisition of the optical transceiver's detection optical power also includes the following steps:

[0050] Obtain the number of optical control output ports of the optical transceiver;

[0051] Detect whether the number of light-controlled output ports is greater than or equal to the preset number of ports;

[0052] When the number of optical control output ports is greater than or equal to the preset number of ports, an optical splitting signal is sent to the optical terminal control system to perform optical splitting processing on the optical signal output by the optical terminal.

[0053] In this embodiment, the number of optical control output ports refers to the number of optical signal output ports of the optical transceiver, that is, the total number of optical signal transmission ports of the optical transceiver, and also the number of effective output ports of the optical control signal of the optical transceiver. The number of optical control output ports corresponds to the number of ports currently activated by the optical transceiver for outputting optical signals. The optical transceiver outputs multiple optical signals through the optical control output ports to achieve multi-channel transmission of optical control signals. The detected optical power corresponds to a portion of the multiple optical signal output ports, that is, the detected optical power is the optical signal power output from a portion of the multiple optical signal output ports. The optical signals in the multiple output ports remain consistent, which facilitates the accuracy of subsequent acquisition of the detected optical power. The preset port number is the standard number of optical signal output ports of the optical transceiver, that is, the preset port number is the reference total number of optical signal transmission ports of the optical transceiver, and also the specified number of effective output ports of the optical control signal of the optical transceiver. If the number of optical control output ports is greater than or equal to the preset port number, it indicates that the number of optical signal output ports of the optical transceiver exceeds the specified number of output ports, that is, it indicates that the optical transceiver has a large number of optical signal output ports, and thus the output power of the optical signal of the optical transceiver is relatively high. In this case, the signal is transmitted to the optical transceiver control system. An optical splitting signal is transmitted to perform optical splitting processing on the optical signal output by the optical transceiver. Specifically, the optical signal output by the optical transceiver is split by an optical splitter, so that the power of the optical signal output by the optical transceiver is redistributed again, that is, the optical energy is redistributed twice. This makes it easier to use the split optical signal as a detection signal. For example, the optical signal with a specified splitting ratio after splitting by the optical splitter can be used as the detection light. This makes it easier to use the power of the detection light as the detection power, which can reduce the loss during optical signal detection and improve the utilization rate of the optical signal with light output. In another embodiment, the specified splitting ratio is 7% to 12%. In yet another embodiment, the specified splitting ratio is 10%.

[0054] Furthermore, the step of detecting whether the number of light-controlled output ports is greater than or equal to a preset number of ports further includes:

[0055] When the number of optical control output ports is less than the preset number of ports, obtain the total optical control power of the optical transceiver;

[0056] Detect whether the total power of the optical control is greater than the preset total power;

[0057] When the total optical power is greater than the preset total optical power, a half-splitting signal is sent to the optical terminal control system to perform half-splitting processing on the optical signal output by the optical terminal.

[0058] In this embodiment, the number of optical control output ports is less than the preset number of ports, indicating that the number of optical signal output ports of the optical transceiver is less than the specified number of output ports. This means that the optical signal output ports of the optical transceiver are fewer, and the output power of the optical signal of the optical transceiver is lower. At this time, the total optical control power is obtained to detect the total output power of the optical transceiver, thereby facilitating the determination of the optical control power of the optical transceiver. The preset total optical power is the output power corresponding to the standard optical control signal of the optical transceiver at a specified output port. If the total optical control power is greater than the preset total optical power, it indicates that the output power of the optical transceiver is larger with the current number of output ports, which means that the optical energy corresponding to the current output optical control signal of the optical transceiver is larger. At this time, a half-splitter signal is sent to the optical transceiver control system to perform half-splitter processing on the optical signal output by the optical transceiver. This facilitates the half-splitter processing of the optical signal output by the optical transceiver, that is, two outputs for each optical signal output by the optical transceiver, realizing the power splitting of each optical signal output by the optical transceiver. This reduces the power of each optical signal of the optical splitter, making it easier to use some of the optical signals as detection light, further reducing the loss during optical signal detection, and further improving the utilization rate of the optical signal with light output.

[0059] All the above-mentioned preset variables are set in the database for easy retrieval. Different preset variables are placed in different storage units, i.e., in different storage stacks. Moreover, the detection of optical power, the number of optical control output ports, and the total optical control power can be collected by the corresponding detectors, for example, by an optical terminal collector.

[0060] In one embodiment, this application also provides an optical transceiver output monitoring device, which is implemented using the optical transceiver output monitoring method described in any of the above embodiments. In one embodiment, the optical transceiver output monitoring device has functional modules for implementing each step of the optical transceiver output monitoring method. The optical transceiver output monitoring device includes an optical transceiver acquisition unit and an optical transceiver output monitor; the optical transceiver acquisition unit is used to acquire the detected optical power of the optical transceiver; the input terminal of the optical transceiver output monitor is connected to the output terminal of the optical transceiver acquisition unit, and the optical transceiver output monitor is used to perform optical jump processing on the detected optical power and a preset optical power to obtain an optical power jump variable; according to the optical power jump variable, it sends a jump level signal to the optical transceiver control system to adjust the displayed optical power output of the indicator light.

[0061] In this embodiment, the optical power is collected by the optical terminal acquisition device to partially sample the optical signal received by the optical terminal. Then, the optical terminal output monitor performs optical jump processing on the detected optical power and the preset optical power to compare the optical power difference of the optical signal sampled by the optical terminal, so as to determine the degree of difference between the power of the optical signal collected by the optical terminal and the specified power. Finally, the optical terminal output monitor adjusts the control voltage of the indicator light according to the above-mentioned optical power difference, so as to adjust the display output power of the indicator light accordingly, so that the indicator light is under an appropriate display optical power, effectively reducing the probability of indicator light damage.

[0062] The various modules in the optical output monitoring device of the aforementioned optical transceiver can be implemented entirely or partially through software, hardware, or a combination thereof. These modules can be embedded in the processor of a computer device in hardware form or independent of it, or stored in the memory of a computer device in software form, so that the processor can call and execute the corresponding operations of each module.

[0063] In one embodiment, a computer device is provided, which may be a server, and its internal structure diagram may be as follows: Figure 2 As shown, the computer device includes a processor, memory, and a network interface connected via a system bus. The processor provides computing and control capabilities. The memory includes a non-volatile storage medium and internal memory. The non-volatile storage medium stores the operating system, computer programs, and a database. The internal memory provides an environment for the operation of the operating system and computer programs in the non-volatile storage medium. The database stores data such as optical power, optical power jump variables, and jump level signals. The network interface communicates with external terminals via a network connection. When executed by the processor, the computer program implements a method for monitoring the optical output of an optical transceiver.

[0064] Those skilled in the art will understand that Figure 2 The structure shown is merely a block diagram of a portion of the structure related to the present application and does not constitute a limitation on the computer device to which the present application is applied. Specific computer devices may include more or fewer components than those shown in the figure, or combine certain components, or have different component arrangements.

[0065] In one embodiment, this application also provides a computer device including a memory and a processor, wherein the memory stores a computer program, and the processor executes the computer program to implement the steps in the above-described method embodiments.

[0066] In one embodiment, this application also provides a computer-readable storage medium having a computer program stored thereon, which, when executed by a processor, implements the steps in the above-described method embodiments.

[0067] Those skilled in the art will understand that all or part of the processes in the methods of the above embodiments can be implemented by a computer program instructing related hardware. The computer program can be stored in a non-volatile computer-readable storage medium, and when executed, it can include the processes of the embodiments of the methods described above. Any references to memory, storage, databases, or other media used in the embodiments provided in this application can include at least one of non-volatile and volatile memory. Non-volatile memory can include read-only memory (ROM), magnetic tape, floppy disk, flash memory, or optical storage, etc. Volatile memory can include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM can be in various forms, such as static random access memory (SRAM) or dynamic random access memory (DRAM), etc.

[0068] The embodiments described above are merely illustrative of several implementations of the present invention, and while the descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the invention patent. It should be noted that those skilled in the art can make various modifications and improvements without departing from the concept of the present invention, and these all fall within the protection scope of the present invention. Therefore, the protection scope of this invention patent should be determined by the appended claims.

Claims

1. A method for monitoring the optical output of an optical transceiver, characterized in that, include: Acquire the detection optical power of the optical transceiver; The detected optical power and the preset optical power are subjected to optical jump processing to obtain the optical power jump variable; According to the optical power jump variable, a jump level signal is sent to the optical terminal control system to adjust the display optical power output of the indicator light; The acquisition of the optical power of the optical transceiver also includes the following steps: Obtain the number of optical control output ports of the optical transceiver; Detect whether the number of light-controlled output ports is greater than or equal to the preset number of ports; When the number of optical control output ports is greater than or equal to the preset number of ports, an optical splitting signal is sent to the optical terminal control system to perform optical splitting processing on the optical signal output by the optical terminal. The optical splitting processing is that the optical signal output by the optical terminal is split by an optical splitter, and the optical signal with a specified splitting ratio after being split by the optical splitter is used as the detection light. When the number of optical control output ports is less than the preset number of ports, obtain the total optical control power of the optical transceiver; Detect whether the total power of the optical control is greater than the preset total power; When the total optical power exceeds the preset total optical power, a half-splitting signal is sent to the optical terminal control system to perform half-splitting processing on the optical signal output by the optical terminal. The half-splitting processing involves outputting two channels for each optical signal output by the optical terminal, thereby achieving power splitting for each optical signal output by the optical terminal.

2. The optical output monitoring method for optical transceivers according to claim 1, characterized in that, The acquisition of the optical power of the optical transceiver includes: Obtain the output optical power of the optical transceiver.

3. The optical output monitoring method for optical transceivers according to claim 2, characterized in that, The step of performing optical jump processing on the detected optical power and the preset optical power to obtain the optical power jump variable includes: The difference between the output optical power and the preset optical power is calculated to obtain the optical power jump value.

4. The optical output monitoring method for an optical transceiver according to claim 1, characterized in that, The acquisition of the optical power of the optical transceiver also includes, prior to: The output detection light of the optical transceiver is processed at low speed.

5. The optical output monitoring method for an optical transceiver according to claim 1, characterized in that, The step of sending a level-change signal to the optical terminal control system according to the optical power jump variable to adjust the display optical power output of the indicator light includes: Detect whether the optical power jump variable matches the preset jump variable; When the optical power jump variable matches the preset jump variable, a low jump signal is sent to the optical terminal control system to make the indicator light output high optical power.

6. The optical output monitoring method for an optical transceiver according to claim 5, characterized in that, The step of detecting whether the optical power jump variable matches a preset jump variable further includes: When the optical power jump variable does not match the preset jump variable, a jump high electrical signal is sent to the optical terminal control system to make the indicator light output low optical power.

7. The optical output monitoring method for an optical transceiver according to claim 1, characterized in that, The step of sending a switching level signal to the optical terminal control system based on the optical power jump variable to adjust the display optical power output of the indicator light, and then further includes: The display voltage corresponding to the jump level signal is subjected to follow isolation processing.

8. A device for monitoring the optical output of an optical transceiver, employing the method for monitoring the optical output of an optical transceiver as described in any one of claims 1 to 7, characterized in that, include: An optical terminal acquisition device is used to acquire the detection optical power of the optical terminal. An optical output monitor is provided, the input of which is connected to the output of the optical acquisition unit. The optical output monitor is used to perform optical jump processing on the detected optical power and the preset optical power to obtain the optical power jump variable; and to send a jump level signal to the optical control system according to the optical power jump variable to adjust the display optical power output of the indicator light.

9. A computer device comprising a memory and a processor, wherein the memory stores a computer program, characterized in that, When the processor executes the computer program, it implements the steps of the method according to any one of claims 1 to 7.

10. A computer-readable storage medium having a computer program stored thereon, characterized in that, When the computer program is executed by a processor, it implements the steps of the method according to any one of claims 1 to 7.

Citation Information

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