Intelligent illumination regulation and control system based on environmental condition change

By introducing data acquisition, evaluation, analysis and regulation modules into the intelligent lighting system, the problem of unpredictable and preventing lighting equipment failures in the prior art is solved, and more accurate and safe lighting control is achieved, and user experience and equipment reliability are improved.

CN119997306AActive Publication Date: 2025-05-13DONGGUAN LOCKLIGHT TECH CO LTD
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Patent Information

Application Number
CN202510346439.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-03-24
Publication Date
2025-05-13
Estimated Expiration
2045-03-24

AI Technical Summary

Technical Problem

The existing intelligent lighting system fails to deeply analyze the interdependence between lighting equipment and cannot predict potential failures, resulting in sudden and unexpected lighting failures and affecting the user experience.

Method used

An intelligent lighting control system based on changes in environmental conditions was designed, including a data acquisition module, a lighting assessment module, anomaly analysis module and a lighting control module. By collecting and analyzing the operating data and environmental data of the lighting equipment in real time, evaluating the lighting conditions, judging equipment abnormalities, and performing adaptability control and basic parameter corrections.

Benefits of technology

It realizes more accurate and safe regulation of lighting equipment, improves the reliability and user experience of equipment operation, and can predict and prevent potential failures.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an intelligent illumination regulation and control system based on environmental condition changes, and relates to the technical field of illumination, the system comprises a data acquisition module, a light evaluation module and an anomaly analysis module, the light regulation and control module obtains operation data and environmental data of light equipment, and evaluates whether illumination provided by the light equipment meets requirements through the environmental data; and when the requirements are not met, adaptive regulation and control are performed on the lighting equipment, and meanwhile, the performance of the lighting equipment is evaluated, so that the performance attenuation condition of the lighting equipment is obtained, and the basic parameters of the lighting equipment are corrected according to the performance attenuation condition of the lighting equipment, and therefore, the running of the lighting equipment is safer, and the user experience is improved. And meanwhile, the light equipment can be regulated and controlled more accurately.
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Description

Technical Field

[0001] The present invention relates to the field of lighting technology, and in particular to an intelligent lighting control system based on changes in environmental conditions. Background Art

[0002] The intelligent lighting system is a system that integrates modern sensing, communication, control and lighting technologies to intelligently manage the lighting environment. It breaks through the limitation of traditional lighting that only provides basic lighting and gives lighting more functions and value. Its core function is to automatically increase the brightness of the lamp based on feedback from the light sensor when the ambient light is lower than the set threshold; when it is higher than the threshold, the brightness is reduced to ensure that the ambient light is constant in a comfortable range, which saves energy while ensuring visual comfort.

[0003] Currently, although technology can automatically adjust lighting parameters based on the environment, most existing technologies only rely on basic sensors and software monitoring; these technologies do not deeply analyze the interdependencies between lighting devices, nor can they predict potential failures; once the lighting suddenly fails unexpectedly, it will have a negative impact on the user experience.

[0004] The interdependence between lighting devices has not been deeply analyzed, and potential failures cannot be predicted. This is a problem we need to solve. To this end, we now provide an intelligent lighting control system based on changes in environmental conditions. Summary of the invention

[0005] The object of the present invention is to provide an intelligent lighting control system based on changes in environmental conditions.

[0006] The purpose of the present invention can be achieved by the following technical solution: an intelligent lighting control system based on changes in environmental conditions, comprising:

[0007] The data collection module is used to collect the operating data of the lighting and the environmental data of the location of the lighting equipment, as well as to obtain the basic parameters of the lighting equipment;

[0008] A lighting evaluation module is used to evaluate the lighting conditions of the lighting equipment according to the obtained operating data of the lighting equipment and the environmental data of the location of the lighting equipment, and generate corresponding operation instructions according to the corresponding evaluation results;

[0009] The abnormality analysis module is used to analyze the operation of the lighting equipment and determine whether there is any abnormality in the lighting equipment based on the analysis results;

[0010] The lighting control module is used to control the light intensity of the lighting equipment and correct the basic parameters of the lighting equipment according to the control results.

[0011] Furthermore, the basic parameters of the lighting equipment include photoelectric conversion efficiency, rated voltage and rated current;

[0012] The operating data of the lighting equipment includes light intensity, equipment current, equipment voltage and equipment temperature;

[0013] The environmental data includes ambient light intensity and ambient temperature;

[0014] The data collection module consists of the equipment collection terminal and the environment collection terminal. The straight-line distance between the environment collection terminal and the lighting equipment is L.

[0015] Set a standard evaluation cycle, obtain real-time operating data of the lighting equipment through the equipment collection terminal, obtain the operating data set associated with the standard evaluation cycle, and simultaneously obtain the environmental data of the location of the environmental collection terminal at the end of the standard evaluation cycle, and associate the obtained environmental data with the standard evaluation cycle.

[0016] Furthermore, the lighting evaluation module evaluates the lighting condition of the lighting device according to the obtained operating data of the lighting device and the environmental data of the location of the lighting device, including:

[0017] Constructing an environmental parameter comparison table, wherein the environmental parameter comparison table includes a plurality of ambient light intensity intervals, and each ambient light intensity interval corresponds to a reference light intensity;

[0018] According to the obtained ambient light intensity and the light intensity of the lighting equipment, the actual ambient brightness at the location of the environment collection terminal is obtained;

[0019] Match the actual ambient brightness with each ambient light intensity interval in the environmental parameter comparison table, and mark the reference light intensity corresponding to the matched ambient light intensity interval;

[0020] Generate a corresponding light intensity variation curve according to the light intensity in the obtained operating data set;

[0021] Constructing a two-dimensional coordinate system of time with respect to light intensity, and mapping the generated light intensity variation curve into the two-dimensional coordinate system, and generating a corresponding light intensity threshold line in the two-dimensional coordinate system according to the marked reference light;

[0022] Then, the lighting evaluation coefficient Zp of the location of the lighting equipment is obtained;

[0023] A lighting evaluation threshold interval is set, recorded as [Z0, Z1], and the obtained photo evaluation coefficient Zp is compared with the set lighting evaluation threshold interval, and a corresponding operation instruction is generated according to the comparison result.

[0024] Further, the operation instructions include equipment evaluation instructions and lighting control instructions;

[0025] When Zp∈[Z0, Z1], it means that the lighting equipment meets the lighting requirements, and the corresponding equipment evaluation instructions are generated;

[0026] when When , it means that the lighting equipment does not meet the lighting requirements, and the corresponding lighting control instructions are generated.

[0027] Furthermore, the abnormality analysis module analyzes the operation of the lighting device, and the process of determining whether the lighting device has an abnormality according to the analysis result includes:

[0028] Generate corresponding current change curve, voltage change curve and temperature change curve respectively according to the device current, device voltage and device temperature in the obtained operation data;

[0029] Construct a plane coordinate system of current, voltage and temperature in time, map the obtained current change curve, voltage change curve and temperature change curve into the plane coordinate system, and obtain the operating parameter diagram of the lighting equipment in the corresponding standard evaluation cycle;

[0030] According to the generated equipment evaluation instruction and the obtained operation parameter diagram, a performance evaluation coefficient Sp of the lighting equipment is obtained;

[0031] Set an equipment loss coefficient, denoted as S0, and compare the obtained performance evaluation coefficient with the set equipment loss coefficient;

[0032] When Sp>S0, it indicates that there is an abnormality in the operation of the lighting equipment, and an abnormal warning message of the equipment is generated;

[0033] When Sp≤S0, it means that the lighting equipment operates normally.

[0034] Furthermore, the lighting control module controls the light intensity of the lighting equipment, and the process of correcting the basic parameters of the lighting equipment according to the control result includes:

[0035] According to the obtained lighting control instruction, the obtained lighting evaluation coefficient Zp is compared with the set lighting evaluation threshold interval to obtain a corresponding comparison result;

[0036] When Zp<Z0, it means that the lighting equipment does not meet the current required light intensity, and a brightness increase instruction is generated;

[0037] According to the generated brightness increase instruction, the device voltage of the lighting device is increased, and after the adjustment of the lighting device is completed, a basic parameter correction instruction is generated;

[0038] When the device voltage of the lighting device reaches the rated voltage but the regulation is still not completed, an abnormal device warning message is generated;

[0039] When Zp>Z1, it means that the lighting intensity of the lighting equipment is higher than the current required light intensity, and a brightness reduction instruction is generated;

[0040] According to the generated brightness reduction instruction, the voltage of the lighting device is reduced;

[0041] When Zp=Z1 is satisfied, the adjustment of the lighting equipment is completed and a basic parameter correction instruction is generated;

[0042] The basic parameters of the lighting equipment are corrected according to the generated basic parameter correction instructions.

[0043] Furthermore, the process of correcting the basic parameters of the lighting equipment according to the generated basic parameter correction instruction includes:

[0044] When the basic parameter correction instruction is generated, the voltage increment, current increment, and lighting intensity increment when the regulation is completed are obtained, thereby obtaining the performance attenuation coefficient of the lighting equipment;

[0045] The basic parameters of the lighting equipment are corrected according to the obtained performance attenuation coefficient, and the original basic parameters of the lighting equipment are replaced with the corrected basic parameters of the lighting equipment.

[0046] Compared with the prior art, the present invention has the following beneficial effects:

[0047] By obtaining the operating data and environmental data of the lighting equipment, the environmental data is used to evaluate whether the lighting provided by the lighting equipment meets the demand. If it does not meet the demand, the lighting equipment is adaptively adjusted. At the same time, the performance of the lighting equipment is evaluated to obtain the performance attenuation of the lighting equipment. The basic parameters of the lighting equipment are corrected according to the performance attenuation of the lighting equipment, thereby making the operation of the lighting equipment safer and the regulation of the lighting equipment more accurate. BRIEF DESCRIPTION OF THE DRAWINGS

[0048] In order to more clearly illustrate the embodiments of the present application or the technical solutions in the prior art, the drawings required for use in the embodiments will be briefly introduced below. Obviously, the drawings described below are only some embodiments recorded in the present invention. For ordinary technicians in this field, other drawings can also be obtained based on these drawings.

[0049] Figure 1 It is a schematic diagram of the present invention. DETAILED DESCRIPTION

[0050] like Figure 1 As shown, an intelligent lighting control system based on environmental condition changes includes:

[0051] The data collection module is used to collect the operating data of the lighting and the environmental data of the location of the lighting equipment, as well as to obtain the basic parameters of the lighting equipment;

[0052] A lighting evaluation module is used to evaluate the lighting conditions of the lighting equipment according to the obtained operating data of the lighting equipment and the environmental data of the location of the lighting equipment, and generate corresponding operation instructions according to the corresponding evaluation results;

[0053] The abnormality analysis module is used to analyze the operation of the lighting equipment and determine whether there is any abnormality in the lighting equipment based on the analysis results;

[0054] The lighting control module is used to control the light intensity of the lighting equipment and correct the basic parameters of the lighting equipment according to the control results.

[0055] It should be further explained that, in the specific implementation process, the basic parameters of the lighting equipment include photoelectric conversion efficiency, rated voltage and rated current;

[0056] The operating data of the lighting equipment includes light intensity, equipment current, equipment voltage and equipment temperature;

[0057] The environmental data includes ambient light intensity and ambient temperature;

[0058] In actual situations, the data collection module consists of a device collection terminal and an environment collection terminal. The straight-line distance between the environment collection terminal and the lighting equipment is L.

[0059] At the same time, it is necessary to set a standard evaluation cycle of a fixed length for the lighting equipment, marked as T, and obtain the real-time operation data of the lighting equipment through the equipment collection terminal. When the operation time of the lighting equipment reaches a standard evaluation cycle, all the operation data of the lighting equipment within this standard evaluation cycle are summarized to obtain the operation data set associated with the standard evaluation cycle. At the same time, the environmental data of the location of the environmental collection terminal at the end of the standard evaluation cycle is obtained, and the obtained environmental data is also associated with the standard evaluation cycle;

[0060] The obtained operating data and environmental data associated with the standard evaluation cycle are uploaded to the lighting evaluation module.

[0061] It should be further explained that, in the specific implementation process, the lighting evaluation module evaluates the lighting conditions of the lighting equipment according to the obtained operating data of the lighting equipment and the environmental data of the location of the lighting equipment, and the process of generating corresponding operation instructions according to the corresponding evaluation results includes:

[0062] Constructing an environmental parameter comparison table, wherein the environmental parameter comparison table includes a plurality of ambient light intensity intervals, and each ambient light intensity interval corresponds to a reference light intensity;

[0063] The ambient light intensity in the obtained environmental data is recorded as Hg. According to the obtained ambient light intensity and the light intensity of the lighting equipment, the actual ambient brightness at the location of the environmental collection terminal is obtained, recorded as Sg, where:

[0064]

[0065] Match the actual ambient brightness with each ambient light intensity interval in the environmental parameter comparison table, and mark the reference light intensity corresponding to the matched ambient light intensity interval;

[0066] Generate a corresponding light intensity variation curve according to the light intensity in the obtained operating data set;

[0067] Constructing a two-dimensional coordinate system of time with respect to light intensity, and mapping the generated light intensity variation curve into the two-dimensional coordinate system, and generating a corresponding light intensity threshold line in the two-dimensional coordinate system according to the marked reference light;

[0068] The generated light intensity change curve is recorded as g(t), and the reference light intensity corresponding to the light intensity threshold line is recorded as Cg, then the lighting evaluation coefficient of the location of the lighting equipment is obtained, recorded as Zp, where:

[0069]

[0070] Setting a lighting evaluation threshold interval, recorded as [Z0, Z1], and comparing the obtained photo evaluation coefficient Zp with the set lighting evaluation threshold interval, and generating corresponding operation instructions according to the comparison result, wherein the operation instructions include equipment evaluation instructions and lighting control instructions;

[0071] When Zp∈[Z0, Z1], it means that the lighting equipment meets the lighting requirements, and the corresponding equipment evaluation instructions are generated;

[0072] when When , it means that the lighting equipment does not meet the lighting requirements, and the corresponding lighting control instructions are generated;

[0073] In actual situations, when lighting equipment is in operation, it will generate light, which will interfere with the ambient light intensity collected by the environment collection terminal. Therefore, the interference is eliminated by utilizing the characteristic that the light intensity of the light source decays with distance, thereby indirectly obtaining the actual ambient lighting intensity, so that the lighting equipment can more sensitively identify changes in environmental conditions and provide appropriate lighting.

[0074] It should be further explained that, in the specific implementation process, the abnormality analysis module analyzes the operation of the lighting equipment, and the process of determining whether the lighting equipment has an abnormality according to the analysis result includes:

[0075] Generate corresponding current change curve, voltage change curve and temperature change curve respectively according to the device current, device voltage and device temperature in the obtained operation data;

[0076] Construct a plane coordinate system of current, voltage and temperature in time, map the obtained current change curve, voltage change curve and temperature change curve into the plane coordinate system, and obtain the operating parameter diagram of the lighting equipment in the corresponding standard evaluation cycle;

[0077] The obtained current variation curve is recorded as I(t), the voltage variation curve is recorded as U(t), and the temperature variation curve is recorded as W(t);

[0078] According to the generated equipment evaluation instruction and the obtained operation parameter diagram, the performance evaluation coefficient of the lighting equipment is obtained, which is recorded as Sp, where:

[0079]

[0080] Among them, μ is the photoelectric conversion efficiency, γ is the thermal conductivity;

[0081] Set the equipment loss coefficient, recorded as S0, compare the obtained performance evaluation coefficient with the set equipment loss coefficient, and judge whether there is any abnormality in the operation of the lighting equipment based on the comparison result;

[0082] When Sp>S0, it indicates that there is an abnormality in the operation of the lighting equipment, and an abnormal warning message of the equipment is generated;

[0083] When Sp≤S0, it means that the lighting equipment operates normally.

[0084] It should be further explained that, in the specific implementation process, the lighting control module controls the light intensity of the lighting equipment, and the process of correcting the basic parameters of the lighting equipment according to the control result includes:

[0085] According to the obtained lighting control instruction, the obtained lighting evaluation coefficient Zp is compared with the set lighting evaluation threshold interval to obtain a corresponding comparison result;

[0086] When Zp<Z0, it means that the lighting equipment does not meet the current required light intensity, and a brightness increase instruction is generated;

[0087] According to the generated brightness increase instruction, the device voltage of the lighting device is increased;

[0088] When the equipment voltage of the lighting equipment is less than or equal to the rated voltage and the lighting evaluation coefficient Zp=(Z0+Z1) / 2, the adjustment of the lighting equipment is completed and a basic parameter correction instruction is generated;

[0089] When the equipment voltage of the lighting equipment reaches the rated voltage and the lighting evaluation coefficient Zp<Z0, it indicates that the lighting equipment is abnormal and generates equipment abnormality warning information;

[0090] When Zp>Z1, it means that the lighting intensity of the lighting equipment is higher than the current required light intensity, and a brightness reduction instruction is generated;

[0091] According to the generated brightness reduction instruction, the voltage of the lighting device is reduced;

[0092] When Zp=Z1 is satisfied, the adjustment of the lighting equipment is completed and a basic parameter correction instruction is generated;

[0093] The basic parameters of the lighting equipment are corrected according to the generated basic parameter correction instructions.

[0094] It should be further explained that, in a specific implementation process, the process of correcting the basic parameters of the lighting equipment according to the generated basic parameter correction instruction includes:

[0095] When the basic parameter correction instruction is generated, the voltage increment and current increment when the regulation is completed are obtained, which are recorded as ΔU and ΔI respectively;

[0096] Get the increment of lighting intensity, recorded as ΔQ;

[0097] Then the performance attenuation coefficient of the lighting equipment is obtained, recorded as Xs, where:

[0098]

[0099] The basic parameters of the lighting equipment are corrected according to the obtained performance attenuation coefficient, namely:

[0100] The corrected photoelectric conversion rate is μ*(1-Xs), and the same is true for the rated voltage and rated current;

[0101] The original basic parameters of the lighting equipment are replaced with the corrected basic parameters of the lighting equipment;

[0102] In actual situations, the performance of lighting equipment will gradually decline during use, resulting in deviations between the actual basic parameters of the lighting equipment and the calibrated basic parameters, which in turn will cause errors in the evaluation results of the lighting equipment, resulting in inaccurate evaluation results. By calculating the photoelectric conversion efficiency of the lighting equipment, its performance changes can be indirectly inferred, making the lighting equipment safer and more reliable during operation, and also enabling more accurate lighting control.

[0103] The above is only a preferred embodiment of the present invention and does not limit the present invention in any form. Although the present invention has been disclosed as a preferred embodiment as above, it is not used to limit the present invention. Any technical personnel in this field can make some changes or modify the technical contents disclosed above into equivalent embodiments without departing from the scope of the technical solution of the present invention. However, any modification or equivalent replacement of the above embodiments made according to the technical essence of the present invention without departing from the content of the technical solution of the present invention still falls within the scope of the technical solution of the present invention.

Claims

1. An intelligent lighting control system based on changes in environmental conditions, characterized in that: include: The data collection module is used to collect the operating data of the lighting and the environmental data of the location of the lighting equipment, as well as to obtain the basic parameters of the lighting equipment; A lighting evaluation module is used to evaluate the lighting conditions of the lighting equipment according to the obtained operating data of the lighting equipment and the environmental data of the location of the lighting equipment, and generate corresponding operation instructions according to the corresponding evaluation results; The abnormality analysis module is used to analyze the operation of the lighting equipment and determine whether there is any abnormality in the lighting equipment based on the analysis results; The lighting control module is used to control the light intensity of the lighting equipment and correct the basic parameters of the lighting equipment according to the control results.

2. The intelligent lighting control system based on environmental condition changes according to claim 1 is characterized in that: The basic parameters of the lighting equipment include photoelectric conversion efficiency, rated voltage and rated current; The operating data of the lighting equipment includes light intensity, equipment current, equipment voltage and equipment temperature; The environmental data includes ambient light intensity and ambient temperature; The data collection module consists of the equipment collection terminal and the environment collection terminal. The straight-line distance between the environment collection terminal and the lighting equipment is L. Set a standard evaluation cycle, obtain real-time operating data of the lighting equipment through the equipment collection terminal, obtain the operating data set associated with the standard evaluation cycle, and simultaneously obtain the environmental data of the location of the environmental collection terminal at the end of the standard evaluation cycle, and associate the obtained environmental data with the standard evaluation cycle.

3. The intelligent lighting control system based on environmental condition changes according to claim 2 is characterized in that: The lighting evaluation module evaluates the lighting conditions of the lighting equipment based on the obtained operating data of the lighting equipment and the environmental data of the location of the lighting equipment, and the process includes: Constructing an environmental parameter comparison table, wherein the environmental parameter comparison table includes a plurality of ambient light intensity intervals, and each ambient light intensity interval corresponds to a reference light intensity; According to the obtained ambient light intensity and the light intensity of the lighting equipment, the actual ambient brightness at the location of the environment collection terminal is obtained; Match the actual ambient brightness with each ambient light intensity interval in the ambient parameter comparison table, and mark the reference light intensity corresponding to the matched ambient light intensity interval; Generate a corresponding light intensity variation curve according to the light intensity in the obtained operating data set; Constructing a two-dimensional coordinate system of time with respect to light intensity, and mapping the generated light intensity variation curve into the two-dimensional coordinate system, and generating a corresponding light intensity threshold line in the two-dimensional coordinate system according to the marked reference light; Then, the lighting evaluation coefficient Zp of the location of the lighting equipment is obtained; An illumination evaluation threshold interval is set, recorded as [Z0, Z1], and the obtained photo evaluation coefficient Zp is compared with the set illumination evaluation threshold interval, and a corresponding operation instruction is generated according to the comparison result.

4. The intelligent lighting control system based on environmental condition changes according to claim 3 is characterized in that: The operation instructions include equipment evaluation instructions and lighting control instructions; When Zp∈[Z0, Z1], it means that the lighting equipment meets the lighting requirements, and the corresponding equipment evaluation instructions are generated; when When , it means that the lighting equipment does not meet the lighting requirements, and the corresponding lighting control instructions are generated.

5. The intelligent lighting control system based on environmental condition changes according to claim 4 is characterized in that: The abnormality analysis module analyzes the operation of the lighting equipment and determines whether the lighting equipment has abnormalities based on the analysis results. The process includes: Generate corresponding current change curve, voltage change curve and temperature change curve respectively according to the device current, device voltage and device temperature in the obtained operation data; Construct a plane coordinate system of current, voltage and temperature in time, map the obtained current change curve, voltage change curve and temperature change curve into the plane coordinate system, and obtain the operating parameter diagram of the lighting equipment in the corresponding standard evaluation cycle; According to the generated equipment evaluation instruction and the obtained operation parameter diagram, a performance evaluation coefficient Sp of the lighting equipment is obtained; Set an equipment loss coefficient, denoted as S0, and compare the obtained performance evaluation coefficient with the set equipment loss coefficient; When Sp>S0, it indicates that there is an abnormality in the operation of the lighting equipment, and an abnormal warning message of the equipment is generated; When Sp≤S0, it means that the lighting equipment operates normally.

6. The intelligent lighting control system based on environmental condition changes according to claim 5, characterized in that: The lighting control module controls the light intensity of the lighting equipment and corrects the basic parameters of the lighting equipment according to the control results. The process includes: According to the obtained lighting control instruction, the obtained lighting evaluation coefficient Zp is compared with the set lighting evaluation threshold interval to obtain a corresponding comparison result; When Zp<Z0, it means that the lighting equipment does not meet the current required light intensity, and a brightness increase instruction is generated; According to the generated brightness increase instruction, the device voltage of the lighting device is increased, and after the adjustment of the lighting device is completed, a basic parameter correction instruction is generated; When the device voltage of the lighting device reaches the rated voltage but the regulation is still not completed, an abnormal device warning message is generated; When Zp>Z1, it means that the lighting intensity of the lighting equipment is higher than the current required light intensity, and a brightness reduction instruction is generated; According to the generated brightness reduction instruction, the voltage of the lighting device is reduced; When Zp=Z1 is satisfied, the adjustment of the lighting equipment is completed and a basic parameter correction instruction is generated; The basic parameters of the lighting equipment are corrected according to the generated basic parameter correction instructions.

7. The intelligent lighting control system based on environmental condition changes according to claim 6, characterized in that: The process of correcting the basic parameters of the lighting equipment according to the generated basic parameter correction instructions includes: When the basic parameter correction instruction is generated, the voltage increment, current increment, and lighting intensity increment when the regulation is completed are obtained, thereby obtaining the performance attenuation coefficient of the lighting equipment; The basic parameters of the lighting equipment are corrected according to the obtained performance attenuation coefficient, and the original basic parameters of the lighting equipment are replaced with the corrected basic parameters of the lighting equipment.

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