Internet-based remote power supply control method and system
By using remote power control via the internet, the lighting effects of stage lights can be monitored and adjusted in real time, solving the problem of large errors in lighting effects during stage lighting control and achieving precise lighting output.
Patent Information
- Application Number
- CN202510197358.6
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-02-21
- Publication Date
- 2026-02-13
- Estimated Expiration
- 2045-02-21
AI Technical Summary
In stage lighting control, existing technologies cannot adapt to changes in stage lighting in a timely manner, resulting in large errors in lighting effects and a long and inaccurate adjustment process.
By using an internet-based remote power control method, the target light effect parameters are obtained from the server through the control terminal, decomposed into RGB data, and the actual light effect parameters are monitored in real time through a light sensor. The power parameters are adjusted to correct the brightness of the light-emitting device, so that the actual light effect gradually approaches the target light effect.
It achieves precise light effect control, ensuring that the final light effect output is consistent with the target light effect parameters, and monitors and adjusts the light effect in real time. It is suitable for scenarios that require real-time adjustment, such as intelligent lighting and stage lighting.
Smart Images

Figure CN119729973B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of control, and particularly relates to a remote power supply control method and system based on the Internet. BACKGROUND
[0002] With the continuous development of science and technology, the Internet has penetrated into all aspects of our life and brought great convenience to our life. In the field of stage lighting, it is a relatively common method to control stage lighting through the network to adapt to the stage scene.
[0003] In the process of regulating and controlling local stage lighting, due to the limitation of factors such as actual environment, for example, environmental illumination, overall illumination of the stage, etc., there may be certain errors in the actual illumination of the stage compared with the pre-determined light effect, and therefore the actual illumination needs to be adjusted. However, by adjusting the original input illumination data, since there is no local deployment, the adjustment process is long and cannot adapt to the change of stage illumination in time. SUMMARY
[0004] The present application provides a remote power supply control method and system based on the Internet to improve the above problems.
[0005] To achieve the above purpose, the present application adopts the following technical scheme:
[0006] In a first aspect, the present application provides a remote power supply control method based on the Internet. The method is applicable to a control terminal stage lighting control system. The stage lighting control system includes a server, a control terminal, a light source terminal and a light sensor. The light source terminal includes three independently arranged power supply terminals and light emitting equipment. Each power supply terminal is connected with one light emitting equipment. The method includes the following steps:
[0007] The control terminal obtains target light effect parameters from the server based on the Internet, and divides the target light effect parameters into target first data, target second data and target third data according to RGB parameters;
[0008] The control terminal determines first power supply parameters, second power supply parameters and third power supply parameters according to the target first data, the target second data and the target third data, and sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal, so that the three power supply terminals provide power to the three light emitting equipment according to the first power supply parameters, the second power supply parameters and the third power supply parameters;
[0009] The control terminal obtains actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result;
[0010] The control terminal regulates the first power parameter, the second power parameter and the third power parameter according to the comparison result, so that the actual light efficiency parameter approaches the target light efficiency parameter.
[0011] In combination with the first aspect, the control terminal obtains the actual light efficiency parameter based on the light sensor, compares the actual light efficiency parameter with the target light efficiency parameter, and obtains a comparison result, including:
[0012] The control terminal obtains the actual first data, the actual second data and the actual third data based on the light sensor;
[0013] The control terminal compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and obtains the first difference value, the second difference value and the third difference value;
[0014] The control terminal adjusts the corresponding power parameter, the second power parameter and the third power parameter according to the first difference value, the second difference value and the third difference value.
[0015] In combination with the first aspect, the control terminal obtains the actual light efficiency parameter based on the light sensor, compares the actual light efficiency parameter with the target light efficiency parameter, and obtains a comparison result, including:
[0016] The control terminal obtains the actual light efficiency parameter based on the light sensor in the first period, wherein the detection frequency of the three light parameters of the light sensor in the first period is ;
[0017] The method further includes:
[0018] The control terminal adjusts the detection frequency of the three light parameters according to the actual light efficiency parameter in the second period, wherein the second period is a continuous period after the first period.
[0019] In combination with the first aspect, the control terminal adjusts the detection frequency of the three light parameters according to the actual light efficiency parameter in the second period, wherein the second period is a continuous period after the first period, including:
[0020] The control terminal obtains absolute values corresponding to the first difference value, the second difference value and the third difference value;
[0021] The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result.
[0022] In combination with the first aspect, the control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result, including:
[0023] The control terminal determines the first absolute value, the second absolute value and the third absolute value according to the sorting result, wherein the first absolute value, the second absolute value and the third absolute value are arranged in descending order;
[0024] The control terminal determines the light parameter corresponding to the first absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein ;
[0025] The control terminal determines the light parameter corresponding to the second absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein = ;
[0026] The control terminal determines the light parameter corresponding to the third absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein .
[0027] In combination with the first aspect, optionally, the control terminal determines the first power parameter, the second power parameter and the third power parameter according to the target first data, the target second data and the target third data, and sends the first power parameter, the second power parameter and the third power parameter to the light source terminal, so that the three power terminals provide power to the three light emitting devices according to the first power parameter, the second power parameter and the third power parameter, including:
[0028] The control terminal sends the first power parameter, the second power parameter and the third power parameter to the light source terminal from the main communication link;
[0029] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in the second period, including:
[0030] The control terminal sends the adjusted data to the light sensor through the sidelink, and receives the feedback data of the light sensor through the sidelink.
[0031] In the second aspect, the application further provides a remote power control system based on the Internet, which comprises a server, a control terminal, a light source terminal and a light sensor. The light source terminal comprises three independently arranged power terminals and light emitting devices. Each power terminal is connected with one light emitting device. The system is configured to:
[0032] The control terminal obtains the target light effect parameter from the server based on the Internet, and divides the target light effect parameter into target first data, target second data and target third data according to the RGB parameter.
[0033] The control terminal determines the first power parameter, the second power parameter and the third power parameter according to the target first data, the target second data and the target third data, and sends the first power parameter, the second power parameter and the third power parameter to the light source terminal, so that the three power terminals provide power to the three light emitting devices according to the first power parameter, the second power parameter and the third power parameter;
[0034] The control terminal obtains the actual light effect parameter based on the light sensor, compares the actual light effect parameter with the target light effect parameter, and obtains a comparison result;
[0035] The control terminal adjusts the first power parameter, the second power parameter and the third power parameter according to the comparison result, so that the actual light effect parameter approaches the target light effect parameter.
[0036] In combination with the second aspect, the system is optionally configured as:
[0037] The control terminal obtains the actual light effect parameter based on the light sensor, compares the actual light effect parameter with the target light effect parameter, and obtains a comparison result, including:
[0038] The control terminal obtains the actual first data, the actual second data and the actual third data based on the light sensor;
[0039] The control terminal compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and obtains the first difference value, the second difference value and the third difference value;
[0040] The control terminal adjusts the corresponding first power parameter, second power parameter and third power parameter according to the first difference value, the second difference value and the third difference value.
[0041] In combination with the second aspect, the system is optionally configured as:
[0042] The control terminal obtains the actual light effect parameter based on the light sensor, compares the actual light effect parameter with the target light effect parameter, and obtains a comparison result, including:
[0043] The control terminal obtains the actual light effect parameter based on the light sensor in the first period, wherein the detection frequency of the light sensor on the three light parameters in the first period is ;
[0044] The system is further configured as:
[0045] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in a second period, wherein the second period is a continuous period after the first period.
[0046] In combination with the second aspect, the system is optionally configured to:
[0047] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in a second period, wherein the second period is a continuous period after the first period, including:
[0048] The control terminal obtains absolute values corresponding to the first difference value, the second difference value and the third difference value.
[0049] The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result.
[0050] In combination with the second aspect, the system is optionally configured to:
[0051] The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result, including:
[0052] The control terminal determines the first absolute value, the second absolute value and the third absolute value according to the sorting result, wherein the first absolute value, the second absolute value and the third absolute value are arranged in descending order.
[0053] The control terminal determines the light parameter corresponding to the first absolute value, and determines the detection frequency of the light parameter of the light sensor in the second period as , wherein > 0. ;
[0054] The control terminal determines the light parameter corresponding to the second absolute value, and determines the detection frequency of the light parameter of the light sensor in the second period as , wherein = .
[0055] The control terminal determines the light parameter corresponding to the third absolute value, and determines the detection frequency of the light parameter of the light sensor in the second period as , wherein < 0. .
[0056] In combination with the second aspect, the system is optionally configured to:
[0057] The control terminal determines the first power supply parameter, the second power supply parameter and the third power supply parameter according to the target first data, the target second data and the target third data, and sends the first power supply parameter, the second power supply parameter and the third power supply parameter to the light source terminal, so that the three power supply terminals provide power supply to the three light emitting devices according to the first power supply parameter, the second power supply parameter and the third power supply parameter, including:
[0058] The control terminal sends the first power supply parameter, the second power supply parameter and the third power supply parameter to the light source terminal from the main communication link;
[0059] The control terminal adjusts the detection frequency of the three light parameters according to the actual light efficiency parameter in the second period, including:
[0060] The control terminal sends the adjusted data to the light sensor through the sidelink, and receives the feedback data of the light sensor through the sidelink.
[0061] The third aspect of the embodiment of the application provides an electronic device, which comprises:
[0062] At least one processor; and a memory connected with the at least one processor in communication; wherein the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to execute the method provided in the first aspect of the embodiment of the application.
[0063] The fourth aspect of the embodiment of the application provides a computer readable storage medium, which stores a computer program, and the program is executed by a processor to realize the method provided in the first aspect of the embodiment of the application.
[0064] In summary, the above method and device have the following technical effects:
[0065] The method and system for remote power supply control based on the Internet provided in the embodiment of the application first acquire target light efficiency parameters from a server based on the Internet, then determine light power supply parameters according to the acquired parameters, and then if the comparison result shows that there is a significant difference between the actual light efficiency and the target light efficiency, the control terminal will re-calculate and adjust the first power supply parameter, the second power supply parameter and the third power supply parameter according to the difference value. The actual light efficiency parameters are acquired based on the light sensor, the actual light efficiency parameters are compared with the target light efficiency parameters, the comparison result is acquired, and the light power supply parameters are adjusted based on the comparison result. The method for remote power supply control based on the Internet provided in the embodiment of the application re-sends the adjusted power supply parameters to the light source terminal to correct the brightness of the light emitting device, so that the actual light efficiency gradually approaches the target light efficiency. And through this closed-loop control mechanism, the control terminal can monitor and adjust the light efficiency in real time, ensure that the final light efficiency output is consistent with the target light efficiency parameter, and thus realize accurate light efficiency control. BRIEF DESCRIPTION OF DRAWINGS
[0066] Figure 1 A flowchart of a remote power supply control method based on the Internet is provided for an embodiment of the present application. DETAILED DESCRIPTION
[0067] The technical solutions in the embodiments of the present application will be clearly and completely described with reference to the drawings in the embodiments of the present application. Obviously, the described embodiments are some of the embodiments of the present application, rather than all the embodiments of the present application. Based on the embodiments in the present application, all other embodiments obtained by a person of ordinary skill in the art without creative work fall within the protection scope of the present application.
[0068] The present application provides a remote power supply control method based on the Internet, which is suitable for a control terminal stage light control system. The stage light control system includes a server, a control terminal, a light source terminal, and a light sensor. The light source terminal includes three independently arranged power supply terminals and light emitting equipment. Each power supply terminal is connected with one light emitting equipment.
[0069] Specifically, as an example, the three independently arranged power supply terminals and light emitting equipment can correspond to RGB three-dimensional data respectively. The light source terminal corresponding to the stage can also be multiple, and the multiple light source terminals can be combined to form a stage light effect. Of course, it can also be increased after the light source terminal, such as a lens or a modem device, and the like, which is not limited in the present application. The light sensor is used for detecting the optical parameters of the display. In the present application, the RGB three-dimensional data is detected.
[0070] The remote power supply control method based on the Internet provided by the present application includes the following steps S101-S104:
[0071] S101: The control terminal obtains target light effect parameters from the server based on the Internet, and divides the target light effect parameters into target first data, target second data, and target third data according to RGB parameters.
[0072] It can be understood that after the control terminal obtains the target light effect parameters from the server through the Internet, the parameters will be decomposed according to the RGB color model. For example, the target light effect parameters are divided into three parts according to the RGB color model:
[0073] The target first data corresponds to the value of the red (Red) channel.
[0074] The target second data corresponds to the value of the green (Green) channel.
[0075] The target third data corresponds to the value of the blue (Blue) channel.
[0076] The control terminal sends the decomposed RGB parameters to the corresponding light source control module respectively, adjusts the brightness of the red, green and blue channels of the light source, and thus realizes the target light effect.
[0077] S102: The control terminal determines the first, second and third power parameters according to the target first, second and third data, and sends the first, second and third power parameters to the light source terminal, so that the three power terminals provide power to the three light emitting devices according to the first, second and third power parameters.
[0078] It can be understood that after obtaining the target first, second and third data, the control terminal will further process these data to determine the corresponding power parameters.
[0079] For example, the corresponding power parameter is calculated according to the target first data (red channel value), which is used to control the power input of the red light emitting device. The corresponding power parameter is calculated according to the target second data (green channel value), which is used to control the power input of the green light emitting device. The corresponding power parameter is calculated according to the target third data (blue channel value), which is used to control the power input of the blue light emitting device. It can be understood that after each power terminal receives the corresponding power parameter, it will adjust the voltage or current of its output power to match the requirements of the target light effect parameter. The red, green and blue light emitting devices adjust their brightness according to the first, second and third power parameters respectively, and thus mix the target color and light effect.
[0080] S103: The control terminal obtains the actual light effect parameter based on the light sensor, compares the actual light effect parameter with the target light effect parameter, and obtains the comparison result.
[0081] It can be understood that the control terminal monitors the light emitted by the light emitting device in real time through the light sensor to obtain the current actual light effect parameter. The actual light effect parameter usually includes the actual red (R), green (G) and blue (B) channel brightness values.
[0082] Specifically, as an example, the control terminal can obtain actual first data, actual second data and actual third data based on the light sensor acquiring actual light effect parameters. Then, the control terminal corresponds and compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and obtains first difference values, second difference values and third difference values. Finally, the control terminal adjusts the corresponding first power supply parameter, second power supply parameter and third power supply parameter according to the first difference values, the second difference values and the third difference values. It can be understood that the difference data reflects the deviation between the actual light effect and the target light effect. In this embodiment, the difference values are the difference values of the luminance of each channel (such as ΔR, ΔG and ΔB). The adjusted power supply parameters are sent to the light source terminal again to correct the luminance of the light emitting device, so that the actual light effect gradually approaches the target light effect.
[0083] It can be understood that through this closed-loop control mechanism, the control terminal can monitor and adjust the light effect in real time, ensure that the final light effect output is consistent with the target light effect parameter, and thus realize accurate light effect control.
[0084] S104: The control terminal adjusts the first power supply parameter, the second power supply parameter and the third power supply parameter according to the comparison result, so that the actual light effect parameter approaches the target light effect parameter.
[0085] It can be understood that the control terminal dynamically adjusts the first power supply parameter, the second power supply parameter and the third power supply parameter according to the comparison result, so that the actual light effect parameter gradually approaches the target light effect parameter. Specifically, the control terminal calculates the change amount of the power supply parameter to be adjusted according to the difference value.
[0086] For example, taking the red luminance parameter as an example:
[0087] If the actual red luminance is lower than the target value (ΔR>0), the first power supply parameter is increased.
[0088] If the actual green luminance is higher than the target value (ΔG<0), the second power supply parameter is reduced.
[0089] If the actual blue luminance is consistent with the target value (ΔB = 0), the third power supply parameter remains unchanged.
[0090] It can be understood that the control terminal sends the updated first power supply parameter, the second power supply parameter and the third power supply parameter to the corresponding power supply terminal, and the power supply terminal adjusts its output according to the new power supply parameter, so as to change the luminance of the red, green and blue light emitting devices.
[0091] Limited to the structure of the light sensor commonly used, the light sensor detects the instantaneous brightness according to a certain detection frequency. However, when a single sensor detects mixed light at the same frequency, the light of different channels at the same time will affect each other, resulting in deviation of the final detection result. Therefore, in the actual process of detecting mixed light, the detection frequency of light of different channels is different. Therefore, in this embodiment, as an implementation manner, step S103 can further include the following steps:
[0092] The control terminal acquires the actual light effect parameter based on the light sensor in the first period, wherein the detection frequency of the three light parameters of the light sensor in the first period is .
[0093] The method provided in the embodiment of the application can further include:
[0094] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in the second period, wherein the second period is a continuous period after the first period.
[0095] It should be noted that in this embodiment, the detection frequency of the three light parameters of the light sensor in the first period is , at this time, the detection frequency of the three light parameters is the same, so the error is large. However, in the actual application process, the first period in the application only refers to the initial period, and the second period is the next period. Therefore, in the actual detection process, only the first period at the beginning has a large error, and the detection frequency of different light channels in the subsequent period is different. For example, the nominal third period, that is, the next period after the second period, is also adjusted according to the detection data of the second period.
[0096] In this embodiment, the control terminal can acquire the absolute values corresponding to the first difference value, the second difference value and the third difference value. It can be understood that the larger the absolute value is, the larger the actual deviation is. Then, the control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result.
[0097] As for the specific adjustment manner, the following steps can be included:
[0098] S201: The control terminal determines the first absolute value, the second absolute value and the third absolute value according to the sorting result, wherein the first absolute value, the second absolute value and the third absolute value are arranged in descending order.
[0099] It can be understood that the control terminal allocates different detection frequencies to the light parameters of each channel according to the sorting result, so as to ensure more frequent monitoring and adjustment of the channels with large differences.
[0100] S202: The control terminal determines the light parameter corresponding to the first absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein .
[0101] It can be understood that the difference of this channel is the largest, and needs to be adjusted first. Therefore, the control terminal determines the detection frequency of the light sensor on the light parameter in the second period as high frequency detection , that is, the detection frequency is higher than that of other channels.
[0102] Exemplarily: multiple detections per second, in order to respond and adjust quickly.
[0103] S203: The control terminal determines the light parameter corresponding to the second absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein .
[0104] It can be understood that the difference of this channel is in the middle, and needs to be adjusted moderately. The control terminal determines the detection frequency of the light sensor on the light parameter in the second period as medium frequency detection , that is, the detection frequency is moderate.
[0105] Exemplarily: detection once per second, to maintain stable monitoring.
[0106] S204: The control terminal determines the light parameter corresponding to the third absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein .
[0107] The difference of this channel is the smallest, and the priority of adjustment is low.
[0108] The control terminal determines the detection frequency of the light sensor on the light parameter in the second period as low frequency detection , that is, the detection frequency is lower than that of other channels.
[0109] Exemplarily: detection once every few seconds, to reduce resource occupation.
[0110] It can be understood that the control terminal acquires the actual light effect parameters of each channel in real time according to the detection frequency, and continuously compares and adjusts.
[0111] If the difference value of a certain channel changes (for example, the difference of a channel that originally has a small difference becomes large), the control terminal will reorder the absolute values and adjust the detection frequency to ensure the rationality of the allocation of sensor resources. By sorting the difference values and dynamically adjusting the detection frequency, the control terminal can allocate more resources to channels with larger differences, improving the adjustment efficiency. High-frequency detection of channels with large differences can accelerate the speed at which the actual light efficiency parameter approaches the target light efficiency parameter. Low-frequency detection is used for channels with small differences to reduce unnecessary resource consumption.
[0112] Optionally, in order to avoid interference between wireless communications, in some embodiments, step S102 can include:
[0113] The control terminal sends the first power parameter, the second power parameter and the third power parameter to the light source terminal from the main communication link;
[0114] The control terminal adjusts the detection frequency of the three light parameters according to the actual light efficiency parameter in the second period, including:
[0115] The control terminal sends the adjusted data to the light sensor through the sidelink, and receives the data fed back by the light sensor through the sidelink.
[0116] It can be understood that in the present embodiment, the main communication link is used for transmitting the power parameter, and the sidelink is used for interacting with the light sensor, which has clear division of labor and improves system efficiency. At the same time, the detection frequency is dynamically adjusted according to the difference value to ensure that resources are concentrated on the channels that need the most adjustment. Through the sidelink, fast data interaction is realized, and the control response time is shortened. Through this mechanism of cooperation between the main communication link and the sidelink, the control terminal can realize efficient and accurate light efficiency control, which is suitable for scenes such as intelligent lighting and stage lighting that need real-time adjustment.
[0117] The remote power control method based on the Internet proposed in the present embodiment first acquires the target light efficiency parameter from the server based on the Internet, then determines the light power parameter according to the acquired parameter, and then if the comparison result shows that there is a significant difference between the actual light efficiency and the target light efficiency, the control terminal will recompute and adjust the first power parameter, the second power parameter and the third power parameter according to the difference value. The actual light efficiency parameter is acquired based on the light sensor, and the actual light efficiency parameter is compared with the target light efficiency parameter, and the comparison result is acquired, and the light power parameter is adjusted based on the comparison result. The remote power control method based on the Internet proposed in the present embodiment adjusts the power parameter and sends it to the light source terminal again to correct the brightness of the light emitting device, so that the actual light efficiency gradually approaches the target light efficiency. And through this closed-loop control mechanism, the control terminal can monitor and adjust the light efficiency in real time to ensure that the final light efficiency output is consistent with the target light efficiency parameter, thereby realizing accurate light efficiency control.
[0118] Based on the same inventive concept, the present application also proposes an internet-based remote power supply control system, which comprises a server, a control terminal, a light source terminal and a light sensor. The light source terminal comprises three independently arranged power supply terminals and light emitting equipment. Each power supply terminal is connected with one light emitting equipment. The system is configured to:
[0119] The control terminal acquires target light effect parameters from the server based on the internet, and divides the target light effect parameters into target first data, target second data and target third data according to RGB parameters.
[0120] The control terminal determines first power supply parameters, second power supply parameters and third power supply parameters according to the target first data, the target second data and the target third data, and sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal, so that the three power supply terminals provide power supply to the three light emitting equipment according to the first power supply parameters, the second power supply parameters and the third power supply parameters.
[0121] The control terminal acquires actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and acquires a comparison result.
[0122] The control terminal adjusts and controls the first power supply parameters, the second power supply parameters and the third power supply parameters according to the comparison result, so that the actual light effect parameters tend to the target light effect parameters.
[0123] Optionally, the system is configured to:
[0124] The control terminal acquires actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and acquires a comparison result, which comprises:
[0125] The control terminal acquires actual first data, actual second data and actual third data based on the actual light effect parameters acquired by the light sensor.
[0126] The control terminal compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and acquires first difference values, second difference values and third difference values.
[0127] The control terminal adjusts the corresponding first power supply parameters, second power supply parameters and third power supply parameters according to the first difference values, the second difference values and the third difference values.
[0128] The system is configured to:
[0129] The control terminal acquires actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and acquires a comparison result, which comprises:
[0130] The control terminal acquires the actual light effect parameter based on the light sensor in the first period, wherein the detection frequency of the three light parameters of the light sensor in the first period is ;
[0131] The system is further configured to:
[0132] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in the second period, wherein the second period is a continuous period after the first period.
[0133] Optionally, the system is configured to:
[0134] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in the second period, wherein the second period is a continuous period after the first period, including:
[0135] The control terminal acquires the absolute values corresponding to the first difference value, the second difference value and the third difference value;
[0136] The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result.
[0137] Optionally, the system is configured to:
[0138] The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result, including:
[0139] The control terminal determines the first absolute value, the second absolute value and the third absolute value according to the sorting result, wherein the first absolute value, the second absolute value and the third absolute value are arranged in descending order;
[0140] The control terminal determines the light parameter corresponding to the first absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein > ;
[0141] The control terminal determines the light parameter corresponding to the second absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein = ;
[0142] The control terminal determines the light parameter corresponding to the third absolute value, and determines the detection frequency of the light sensor on the light parameter in the second period as , wherein < .
[0143] Optionally, the system is configured to:
[0144] The control terminal determines the first power supply parameter, the second power supply parameter and the third power supply parameter according to the target first data, the target second data and the target third data, and sends the first power supply parameter, the second power supply parameter and the third power supply parameter to the light source terminal, so that the three power supply terminals provide power to the three light emitting devices according to the first power supply parameter, the second power supply parameter and the third power supply parameter, including:
[0145] The control terminal sends the first power supply parameter, the second power supply parameter and the third power supply parameter to the light source terminal from the main communication link;
[0146] The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in the second period, including:
[0147] The control terminal sends the adjusted data to the light sensor through the sidelink, and receives the data fed back by the light sensor through the sidelink.
[0148] The remote power supply control system based on the Internet provided by the embodiments of the present application first acquires the target light effect parameter from the server based on the Internet, then determines the light power supply parameter according to the acquired parameter, and then if the comparison result shows that there is a significant difference between the actual light effect and the target light effect, the control terminal will re-calculate and adjust the first power supply parameter, the second power supply parameter and the third power supply parameter according to the difference value. The actual light effect parameter is acquired based on the light sensor, and the actual light effect parameter is compared with the target light effect parameter, and the comparison result is acquired, and the light power supply parameter is adjusted based on the comparison result. The remote power supply control system based on the Internet provided by the embodiments of the present application, the adjusted power supply parameter is sent to the light source terminal again to correct the brightness of the light emitting device, so that the actual light effect gradually approaches the target light effect. And through this closed-loop control mechanism, the control terminal can monitor and adjust the light effect in real time, ensure that the final light effect output is consistent with the target light effect parameter, so as to realize accurate light effect control.
[0149] Based on the same inventive concept, the embodiments of the present application also provide an electronic device, which comprises:
[0150] At least one processor; and a memory connected with the at least one processor in communication; wherein the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to execute the remote power supply control method based on the Internet provided by the embodiments of the present application.
[0151] In addition, to achieve the above object, the embodiment of the present application further provides a computer readable storage medium, which stores a computer program, and the computer program is executed by a processor to implement the internet-based remote power control method.
[0152] The various components of the electronic device will be described in detail as follows:
[0153] The processor is the control center of the electronic device, and can be one processor or a plurality of processing elements. For example, the processor is one or more central processing units (CPU), or an application specific integrated circuit (ASIC), or one or more integrated circuits configured to implement the embodiments of the present application, such as one or more digital signal processors (DSP), or one or more field programmable gate arrays (FPGA).
[0154] Optionally, the processor can execute various functions of the electronic device by running or executing software programs stored in the memory and calling data stored in the memory.
[0155] The memory is used to store software programs for implementing the embodiments of the present application, and is controlled by the processor to execute. The specific implementation manner can refer to the above method embodiments, and will not be described here.
[0156] Optionally, the memory can be a read-only memory (ROM) or other type of static storage device that can store static information and instructions, a random access memory (RAM), or other type of dynamic storage device that can store information and instructions, an electrically erasable programmable read-only memory (EEPROM), a compact disc read-only memory (CD-ROM) or other optical disk storage, a magnetic disk storage or other magnetic storage devices, or any other medium capable of storing desired program code in the form of instructions or data structures and that can be accessed by a computer, but is not limited to this. The memory can be integrated with the processor or exist independently and be coupled to the processor through the interface circuit of the electronic device, and the embodiments of the present application do not make a specific limitation in this regard.
[0157] The transceiver is configured to communicate with the network device or the terminal device.
[0158] Optionally, the transceiver can include a receiver and a transmitter. The receiver is configured to implement the receiving function, and the transmitter is configured to implement the transmitting function.
[0159] Optionally, the transceiver can be integrated with the processor or exist independently and be coupled to the processor through the interface circuit of the router, and the embodiments of the present application do not make a specific limitation in this regard.
[0160] In addition, the technical effects of the electronic device can refer to the technical effects of the data transmission method of the above-mentioned method embodiments, and will not be repeated here.
[0161] It should be understood that the processor in the embodiments of the present application can be a central processing unit (CPU), and the processor can also be other general-purpose processors, digital signal processors (DSPs), application specific integrated circuits (ASICs), ready programmable gate arrays (FPGAs) or other programmable logic devices, discrete gates or transistor logic devices, discrete hardware components, etc. The general-purpose processor can be a microprocessor or the processor can also be any conventional processor.
[0162] It should also be understood that the memory in the embodiments of the present application can be volatile or nonvolatile memory, or can include both volatile and nonvolatile memory. Nonvolatile memory can be read-only memory (ROM), programmable ROM (PROM), erasable PROM (EPROM), electrically EPROM (EEPROM), or flash memory. Volatile memory can be random access memory (RAM), which is used as external cache. By way of example, and not limitation, many forms of random access memory (RAM) are available, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous dynamic RAM (SDRAM), double data rate SDRAM (DDR SDRAM), enhanced SDRAM (ESDRAM), Synchlink DRAM (SLDRAM), and direct rambus RAM (DR RAM).
[0163] The above-described embodiments can be implemented in whole or in part by software, hardware (such as a circuit), firmware, or any combination thereof. When implemented in software, the above-described embodiments can be implemented in the form of a computer program product. The computer program product includes one or more computer instructions or computer programs. When the computer instructions or computer programs are loaded or executed on a computer, the processes or functions according to the embodiments of the present application are wholly or partially generated. The computer can be a general-purpose computer, a special-purpose computer, a computer network, or other programmable devices. The computer instructions can be stored in a computer-readable storage medium or transferred from one computer-readable storage medium to another computer-readable storage medium, for example, the computer instructions can be transferred from one website, computer, server, or data center to another website, computer, server, or data center through a wired (for example, infrared, wireless, microwave, etc.) manner. The computer-readable storage medium can be any available medium accessible by a computer or a data storage device such as a server, data center, etc. containing one or more available medium collections. The available medium can be a magnetic medium (for example, a floppy disk, a hard disk, a magnetic tape), an optical medium (for example, a DVD), or a semiconductor medium. The semiconductor medium can be a solid-state disk.
[0164] It should be understood that the term "and / or" herein merely describes an association relationship of associated objects, which means that there can be three relationships, for example, A and / or B can represent three cases of A alone, A and B together, and B alone, where A and B can be singular or plural. In addition, the character " / " herein generally represents an "or" relationship between the associated objects before and after it, but it can also represent an "and / or" relationship, which can be understood according to the context before and after it.
[0165] In the present application, "at least one" means one or more, and "multiple" means two or more. "At least one of the following" or the like means any combination of the items, including any combination of single item or multiple items. For example, at least one of a, b, or c can represent a, b, c, a-b, a-c, b-c, or a-b-c, where a, b, and c can be single or multiple.
[0166] It should be understood that in various embodiments of the present application, the size of the sequence number of the above-described processes does not mean the order of execution, and the execution order of the processes should be determined according to their functions and internal logic, and should not constitute any limitation on the implementation process of the embodiments of the present application.
[0167] Those skilled in the art can realize that the units and algorithm steps of each example described in combination with the embodiments disclosed herein can be realized in electronic hardware, or a combination of computer software and electronic hardware. Whether the functions are performed in hardware or software depends on specific applications and design constraints. Those skilled in the art can use different methods to realize the described functions for each specific application, but such implementation should not be considered beyond the scope of the present application.
Claims
1. An Internet-based remote power control method, characterized by, The method is suitable for a control terminal stage light control system, the stage light control system comprising a server, a control terminal, a light source terminal and a light sensor, the light source terminal comprising three independently arranged power supply terminals and light emitting devices, each of the power supply terminals being connected with one of the light emitting devices, the method comprising: The control terminal obtains target light effect parameters from the server based on the Internet, and divides the target light effect parameters into target first data, target second data and target third data according to RGB parameters; The control terminal determines first power supply parameters, second power supply parameters and third power supply parameters according to the target first data, the target second data and the target third data, and sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal, so that the three power supply terminals provide power supply to the three light emitting devices according to the first power supply parameters, the second power supply parameters and the third power supply parameters; The control terminal obtains actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result; The control terminal adjusts and controls the first power supply parameters, the second power supply parameters and the third power supply parameters according to the comparison result, so that the actual light effect parameters tend to approach the target light effect parameters.
2. The Internet-based remote power control method according to claim 1, wherein, The control terminal obtains actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result, comprising: The control terminal obtains actual first data, actual second data and actual third data based on the light sensor; The control terminal compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and obtains first difference values, second difference values and third difference values; The control terminal adjusts the corresponding first power supply parameters, second power supply parameters and third power supply parameters according to the first difference values, the second difference values and the third difference values.
3. The Internet-based remote power control method according to claim 2, wherein The control terminal obtains actual light effect parameters based on the light sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result, comprising: The control terminal obtains an actual light effect parameter based on the light sensor in the first period, wherein the detection frequency of the three light parameters of the light sensor in the first period is ; The method further comprises: The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameters in a second period, wherein the second period is a continuous period after the first period.
4. The Internet-based remote power control method according to claim 3, wherein The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameters in a second period, wherein the second period is a continuous period after the first period, comprising: The control terminal obtains absolute values corresponding to the first difference values, the second difference values and the third difference values; The control terminal sorts the three absolute values, and adjusts the detection frequency of the three light parameters according to the sorting result.
5. The Internet-based remote power control method according to claim 4, wherein The control terminal determines first power supply parameters, second power supply parameters and third power supply parameters according to the target first data, the target second data and the target third data, and sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal, so that the three power supply terminals provide power supply to the three light emitting devices according to the first power supply parameters, the second power supply parameters and the third power supply parameters, including: The control terminal sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal from the main communication link; The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameters in the second period, including: The control terminal sends the adjusted data to the light ray sensor through the sidelink, and receives the feedback data of the light ray sensor through the sidelink.
6. An Internet-based remote power control system, characterized by comprising: The Internet-based remote power supply control system includes a server, a control terminal, a light source terminal and a light ray sensor, the light source terminal includes three independently arranged power supply terminals and light emitting devices, each power supply terminal is connected with one light emitting device, and the system is configured to: The control terminal obtains target light effect parameters from the server based on the Internet, and divides the target light effect parameters into target first data, target second data and target third data according to RGB parameters; The control terminal determines first power supply parameters, second power supply parameters and third power supply parameters according to the target first data, the target second data and the target third data, and sends the first power supply parameters, the second power supply parameters and the third power supply parameters to the light source terminal, so that the three power supply terminals provide power supply to the three light emitting devices according to the first power supply parameters, the second power supply parameters and the third power supply parameters; The control terminal obtains actual light effect parameters based on the light ray sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result; The control terminal adjusts the first power supply parameters, the second power supply parameters and the third power supply parameters according to the comparison result, so that the actual light effect parameters tend to approach the target light effect parameters.
7. The Internet-based remote power control system of claim 6, wherein, The system is configured to: The control terminal obtains actual light effect parameters based on the light ray sensor, compares the actual light effect parameters with the target light effect parameters, and obtains a comparison result, including: The control terminal obtains actual first data, actual second data and actual third data based on the actual light effect parameters obtained by the light ray sensor; The control terminal compares the actual first data, the actual second data and the actual third data with the target first data, the target second data and the target third data, and obtains first difference values, second difference values and third difference values; The control terminal adjusts the first power supply parameter, the second power supply parameter and the third power supply parameter according to the first difference value, the second difference value and the third difference value.
8. The Internet-based remote power control system of claim 7, wherein, The system is configured to: The control terminal obtains an actual light effect parameter based on the light sensor, compares the actual light effect parameter with the target light effect parameter, and obtains a comparison result, including: The control terminal obtains an actual light effect parameter based on the light sensor in the first period, wherein the detection frequency of the three light parameters of the light sensor in the first period is ; The system is further configured to: The control terminal adjusts the detection frequency of the three light parameters according to the actual light effect parameter in a second period, wherein the second period is a continuous period after the first period.
9. An electronic device, comprising: An electronic device includes: at least one processor; and a memory connected in communication with the at least one processor; wherein the memory stores instructions executable by the at least one processor, and the instructions are executed by the at least one processor to enable the at least one processor to perform an internet-based remote power supply control method as claimed in any one of claims 1-5.
Citation Information
Patent Citations
Control method and control system for RGBW four-color stage lamp
CN118019167A
Self-adaptive management method and system for lamp control light source in complex scene
CN118283897A