Light equipment control method and device, computer readable medium and electronic equipment

By configuring spectral regulators in the xenon flash and using control equipment to adjust the target flash power and color temperature of the xenon flash, the problem of fixed light color temperature of the xenon lighting equipment is solved, flexible adjustment of the equipment and cost reduction are achieved, and application scenarios are expanded.

CN120282332APending Publication Date: 2025-07-08GODOX PHOTO EQUIPMENT CO LTD
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Patent Information

Application Number
CN202510621142.8
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-05-14
Publication Date
2025-07-08

AI Technical Summary

Technical Problem

The color temperature of existing xenon lighting equipment is fixed and cannot be adjusted at will, resulting in different use scenarios requiring different color temperature lighting equipment, which increases the cost of use and limits the application scenarios.

Method used

By configuring a spectral regulator in the xenon flash, combining the control device to determine the target flash power and color temperature of each group of xenon flash according to the flash control instructions, a control signal is generated to adjust the color temperature and color of the light, and flexible adjustment of the lighting equipment is achieved.

Benefits of technology

It realizes flexible adjustment of optical power, color temperature and color of xenon lighting equipment, reduces the cost of equipment usage and expands application scenarios.

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Abstract

The invention discloses a light equipment control method and device, a computer readable medium and electronic equipment, the light equipment comprises multiple groups of xenon flash lamps, at least one group of xenon flash lamps is provided with a spectrum adjusting part, and the spectrum adjusting part is used for adjusting the spectrum distribution of light emitted by the xenon flash lamps; the method comprises the following steps: determining target flash power corresponding to each group of xenon flash lamps according to a flash control instruction set for light equipment; wherein the flash parameters comprise at least one of flash power, flash color temperature and flash color; and generating a control signal corresponding to each group of xenon flash lamps according to the target flash power corresponding to each group of xenon flash lamps, so that each group of xenon flash lamps are driven by the corresponding control signal to emit light. According to the technical scheme, the xenon lamp light equipment can be suitable for various different application scenes, so that the use cost of the light equipment can be reduced, and the application scenes of the light equipment can be expanded.
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Description

Technical Field

[0001] This application belongs to the technical field of xenon flashlights, and particularly relates to a control method, device, computer-readable medium and electronic device for a lighting device. Background Art

[0002] A xenon lamp tube is a gas discharge lamp that uses the inert gas xenon (Xe) as a light-emitting medium, and is widely used in fields such as automotive lighting, movie projection, stage lighting, and special lighting. For a lamp device with a xenon lamp tube as the light source, since the natural color temperature of the xenon lamp tube is fixed, the color temperature of the light emitted by this lamp device usually cannot be adjusted arbitrarily. However, in actual applications, the requirements for the color temperature of light are often different in different scenarios, which leads to the need to configure lighting devices with xenon lamp tubes of different color temperatures in different usage scenarios, greatly increasing the usage cost of the lighting devices and also restricting the application scenarios of the lighting devices. Summary of the Invention

[0003] The purpose of this application is to provide a control method, device, computer-readable medium and electronic device for a lighting device, so that the flash parameters of the xenon lighting device can be adjusted, and the application scenarios of the xenon lighting device can be expanded.

[0004] Other features and advantages of this application will become apparent through the following detailed description, or will be partially learned through the practice of this application.

[0005] According to one aspect of the embodiments of this application, a control method for a lighting device is provided. The lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment component for adjusting the spectral distribution of the light emitted by the xenon flashlight. The method includes:

[0006] Determine the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device. Among them, the flash control instruction includes flash parameters for controlling the lighting device to achieve the target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color.

[0007] Generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal, and the lighting device achieves the target lighting effect.

[0008] According to one aspect of the embodiments of this application, a control device for a lighting device is provided. The lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment component for adjusting the spectral distribution of the light emitted by the xenon flashlight. The device includes:

[0009] A parameter determination module, configured to determine the target flash power corresponding to each group of xenon flash lamps according to a flash control instruction set for the lighting device; wherein, the flash control instruction is used to control the lighting device to achieve a target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color.

[0010] A control module, configured to generate control signals corresponding to each group of xenon flash lamps according to the target flash power corresponding to each group of xenon flash lamps, so that each group of xenon flash lamps emits light under the drive of the corresponding control signal, and the lighting device achieves the target lighting effect.

[0011] In an embodiment of the present application, the parameter determination module includes:

[0012] A global parameter generation unit, configured to, if the flash control instruction includes the global flash parameters of the lighting device, determine the target flash power corresponding to each group of xenon flash lamps according to the global flash parameters;

[0013] An independent parameter generation unit, configured to, if the flash control instruction includes the independent flash parameters of each group of xenon flash lamps, generate the target flash power corresponding to each group of xenon flash lamps from the independent flash parameters of each group of xenon flash lamps.

[0014] In an embodiment of the present application, the global parameter generation unit is specifically configured to:

[0015] Query a preset parameter configuration table according to the global flash parameters;

[0016] If there are preset global parameters in the preset parameter configuration table that are the same as the global flash parameters, use the preset flash power of each group of xenon flash lamps corresponding to the preset global parameters as the target flash power corresponding to each group of xenon flash lamps.

[0017] In an embodiment of the present application, the global parameter generation unit is further configured to:

[0018] If there are no preset global parameters in the preset parameter configuration table that are the same as the global flash parameters, determine the preset global parameter closest to the global flash parameters;

[0019] Use the preset flash power of each group of xenon flash lamps corresponding to the preset global parameter closest to the global flash parameters as the target flash power corresponding to each group of xenon flash lamps.

[0020] In an embodiment of the present application, the global parameter generation unit is further configured to:

[0021] If there is no preset global parameter identical to the global flash parameter in the preset parameter configuration table, determine the preset global parameter closest to the global flash parameter;

[0022] Generate a flash power fine-tuning value according to the distance between the global flash parameter and the preset global parameter closest to it;

[0023] Generate the target flash power corresponding to each group of xenon flash lamps according to the preset flash power of each group of xenon flash lamps corresponding to the preset global parameter closest to it and the flash power fine-tuning value.

[0024] In an embodiment of the present application, the device further includes:

[0025] A detection module, configured to detect the spectral adjustment members configured for each group of xenon flash lamps; determine the flash parameter adjustment range corresponding to each group of xenon flash lamps according to the spectral adjustment members configured for each group of xenon flash lamps; wherein, the flash parameter adjustment range corresponding to each group of xenon flash lamps is used to set the independent flash parameters of each group of xenon flash lamps.

[0026] In an embodiment of the present application, the detection module is further configured to:

[0027] Generate the global parameter adjustment range corresponding to the lighting device according to the flash parameter adjustment range corresponding to each group of xenon flash lamps; wherein, the global parameter adjustment range is used to set the global flash parameter of the lighting device.

[0028] In an embodiment of the present application, the device further includes:

[0029] An instruction generation module, configured to generate the flash control instruction based on the global parameter value set for the lighting device or the independent parameter value set for each group of xenon flash lamps; or generate the flash control instruction based on the global parameter gear set for the lighting device or the independent parameter gear set for each group of xenon flash lamps.

[0030] In an embodiment of the present application, the device further includes a parameter interface generation module, and the parameter interface generation module is specifically configured to:

[0031] Add each group of xenon flash lamps to the control list according to the identification information of each group of xenon flash lamps;

[0032] Obtain the spectral adjustment information corresponding to each group of xenon flash lamps in the control list; wherein, the spectral adjustment information includes whether the xenon flash lamp is configured with a spectral adjustment member, and / or the type of the spectral adjustment member configured for the xenon flash lamp;

[0033] Determine the display interface information according to the spectral adjustment information corresponding to each group of xenon flashlights; wherein, the display interface information includes the independent flash parameter display information corresponding to each group of xenon flashlights and the global flash parameter display information corresponding to the lighting device;

[0034] Generate a flash parameter setting interface according to the display interface information.

[0035] In an embodiment of the present application, the parameter interface generation module is specifically configured to:

[0036] If it is determined that there is a parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, then generate the display interface information according to the parameter distribution table; wherein, the parameter distribution table includes the flash parameters that each group of xenon flashlights can adjust;

[0037] If it is determined that there is no parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, then generate the display interface information according to the default flash parameters.

[0038] According to one aspect of the embodiments of the present application, there is provided a computer-readable medium having a computer program stored thereon, and when the computer program is executed by a processor, the control method of the lighting device in the above technical solution is implemented.

[0039] According to one aspect of the embodiments of the present application, there is provided an electronic device, which includes: a processor; and a memory for storing executable instructions of the processor; wherein, when the processor executes the executable instructions, the electronic device executes the control method of the lighting device in the above technical solution.

[0040] According to one aspect of the embodiments of the present application, there is provided a computer program product or a computer program, which includes computer instructions, and the computer instructions are stored in a computer-readable storage medium. The processor of the computer device reads the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, so that the computer device executes the control method of the lighting device in the above technical solution.

[0041] In the technical solution provided by the embodiments of the present application, the lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment component. After the light emitted by the xenon flashlight passes through the spectral adjustment component, the color temperature of the light increases or decreases; when controlling the lighting device, first, according to the flash control instruction set for the lighting device, determine the target flash power corresponding to each group of xenon flashlights; wherein, the flash control instruction is used to control the flash parameters of the lighting device to achieve the target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color; then generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal to make the lighting device achieve the target lighting effect. In this way, the flash parameters such as the power, color temperature, and color of the xenon lighting device can be adjusted according to actual needs, enabling a xenon lighting device to be applicable to a variety of different application scenarios, thereby reducing the usage cost of the lighting device and expanding the application scenarios of the lighting device.

[0042] It should be understood that the above general description and the following detailed description are only exemplary and explanatory, and cannot limit the present application. BRIEF DESCRIPTION OF THE DRAWINGS

[0043] The drawings herein are incorporated into the specification and constitute a part of this specification, showing embodiments consistent with the present application, and are used together with the specification to explain the principles of the present application. Obviously, the drawings in the following description are only some embodiments of the present application, and those of ordinary skill in the art can obtain other drawings based on these drawings without creative efforts.

[0044] Figure 1 Schematically shows an exemplary system architecture block diagram applying the technical solution of the present application.

[0045] Figure 2A Schematically shows the structure diagram of a lighting device applying the technical solution of the present application.

[0046] Figure 2B Schematically shows the structure diagram of a lighting device applying the technical solution of the present application.

[0047] Figure 3 Schematically shows the flowchart of the control method of the lighting device provided by an embodiment of the present application.

[0048] Figure 4A Schematically shows the schematic diagram of the flash parameter setting interface provided by an embodiment of the present application.

[0049] Figure 4B Schematically shows the schematic diagram of the flash parameter setting interface provided by an embodiment of the present application.

[0050] Figure 4C Schematically shown is a schematic diagram of a flash parameter setting interface provided by an embodiment of the present application.

[0051] Figure 5 Schematically shown is an exemplary system architecture block diagram applying the technical solution of the present application.

[0052] Figure 6 Schematically shown is a structural block diagram of a control device for a lighting device provided by an embodiment of the present application.

[0053] Figure 7 Schematically shown is a computer system structural block diagram of an electronic device suitable for implementing the embodiments of the present application. Detailed implementation manners

[0054] Example embodiments will now be described more fully with reference to the accompanying drawings. However, the example embodiments can be implemented in various forms and should not be construed as limited to the examples set forth herein; rather, these embodiments are provided so that this application will be more complete and comprehensive, and will fully convey the concept of the example embodiments to those skilled in the art.

[0055] In addition, the described features, structures, or characteristics can be combined in any suitable manner in one or more embodiments. In the following description, numerous specific details are provided to give a thorough understanding of the embodiments of the present application. However, those skilled in the art will realize that the technical solutions of the present application can be practiced without one or more of the specific details, or other methods, components, devices, steps, etc. can be adopted. In other cases, well-known methods, devices, implementations, or operations are not shown or described in detail to avoid obscuring aspects of the present application.

[0056] The block diagrams shown in the drawings are only functional entities and do not necessarily correspond to physically independent entities. That is, these functional entities can be implemented in software form, or in one or more hardware modules or integrated circuits, or in different networks and / or processor devices and / or microcontroller devices.

[0057] The flowcharts shown in the drawings are only exemplary illustrations and do not necessarily include all the content and operations / steps, nor do they necessarily have to be executed in the described order. For example, some operations / steps can be decomposed, while some operations / steps can be combined or partially combined, so the actual execution order may change according to the actual situation.

[0058] In the embodiments of the present application, the term "module" or "unit" refers to a computer program with a predetermined function or a part of a computer program, which works together with other relevant parts to achieve a predetermined goal, and can be implemented in whole or in part by using software, hardware (such as a processing circuit or a memory), or a combination thereof. Similarly, one processor (or multiple processors or memories) can be used to implement one or more modules or units. In addition, each module or unit can be a part of an overall module or unit that includes the function of that module or unit.

[0059] Figure 1 Schematically shown is a block diagram of an exemplary system architecture to which the technical solution of the present application is applied.

[0060] As Figure 1 shown, the system architecture may include a control device 100 and a lighting device 200. The control device 100 may include a smart phone, a tablet computer, a laptop computer, a desktop computer, a flash trigger, etc. Among them, a flash trigger refers to a device that can remotely trigger the flash of the lighting device 200. The lighting device 200 includes multiple groups of xenon flash lamps 210, and one group of xenon flash lamps 210 may include multiple xenon flash lamps 210. The control device 100 and the lighting device 200 can communicate through a wired or wireless communication link. For example, the control device 100 and the lighting device 200 can communicate through a USB data cable, a wireless local area network, a cellular data network, NFC, Bluetooth, etc. One lighting device 200 can communicate with multiple control devices 100, and one control device 100 can control multiple lighting devices 200.

[0061] The technical solution provided by the embodiments of the present application can be applied to the control device 100, or can be applied to the lighting device 200, or can be jointly implemented by the control device 100 and the lighting device 200. The present application does not make special limitations on this.

[0062] Figure 2A and Figure 2B Schematically shown is a structural diagram of a lighting device to which the technical solution of the present application is applied.

[0063] Referring to Figure 2A and Figure 2B, the lighting device 200 includes multiple groups of xenon flashlights 210 and a mounting bracket 220. The xenon flashlights 210 are fixed on the mounting bracket 220 through a connecting member 230. For example, the xenon flashlight 210 is provided with a screw hole 211, and the connecting member 230 is a screw. The screw passes through a hole in the mounting bracket 220 and is connected to the screw hole 211 on the xenon flashlight 210, so that the xenon flashlight 210 is fixedly connected to the mounting bracket 220. Among them, a group of xenon flashlights 210 includes at least one xenon flashlight 210 that receives the same control signal. Exemplarily, the lighting device 200 may include 2 groups of xenon flashlights 210, and each group of xenon flashlights 210 includes 2 xenon flashlights 210. Then, the lighting device 200 includes a total of 4 xenon flashlights 210.

[0064] In the embodiment of the present application, at least one group of xenon flashlights 210 in the lighting device 200 is correspondingly configured with a spectrum adjusting member. The spectrum adjusting member is used to adjust the spectral distribution of the light emitted by the xenon flashlight 210. Among them, the change in the spectral distribution can cause the change in the color temperature or color of the light. Therefore, after the light emitted by the xenon flashlight 210 passes through the spectrum adjusting member, the color temperature or color of the light can be changed. The spectrum adjusting member can be any structure that can change the color temperature of the light emitted by the xenon flashlight 210. For example, the spectrum adjusting member can be a color filter disposed on the light emission path of the xenon flashlight 210, such as a CTO color filter (Color Temperature Orange, orange tone color temperature correction), a CTB (Color Temperature Blue, blue tone color temperature correction), etc.; or for example, a color coating can be added to the flash window 212 of the xenon flashlight 210, so that the flash window 212 serves as the spectrum adjusting member.

[0065] When using the lighting device 200, the user triggers a flash control instruction through a control device (such as a mobile phone, a flash trigger, etc.). The flash control instruction is used to control the light emitted by the lighting device 200 to achieve the target light-emitting effect desired by the user. Based on the flash control instruction, the control device determines the target flash power of each group of xenon flashlights 210 in the lighting device 200, where the flash parameters include at least one of flash power, flash color temperature, and flash color. Next, the control device generates control signals for each group of xenon flashlights 210 based on the target flash power of each group of xenon flashlights 210, and sends the control signals to the lighting device 200. After receiving the control signals, each group of xenon flashlights 210 simultaneously performs a flash action according to their respective control signals. After the lights emitted by multiple groups of xenon flashlights 210 are mixed, the light emitted by the lighting device 200 as a whole reaches the target light-emitting effect required by the user.

[0066] Optionally, a flash button may be provided on the lighting device 200. The user triggers the flash button to issue a flash control instruction. The lighting device 200 determines the target flash power of each group of xenon flashlights 210 based on the flash control instruction, and generates a control signal for each group of xenon flashlights 210, so that the multiple groups of xenon flashlights 210 perform a flash action to achieve the target lighting effect.

[0067] The following will make a detailed description of the control method of the lighting device provided by the present application in combination with specific embodiments.

[0068] Figure 3 Schematically shown is a flowchart of the control method of the lighting device provided by an embodiment of the present application. This method can be implemented by a control device or a lighting device. The following takes the control device as the execution subject to illustrate the implementation process of the method. As Figure 3 shown, the control method of the lighting device provided by this embodiment includes steps 310 to 320, which are specifically as follows:

[0069] Step 310: Determine the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device; wherein, the flash control instruction is used to control the lighting device to achieve the target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color.

[0070] Specifically, the specific structure of the lighting device can refer to the relevant description in the foregoing embodiments and will not be elaborated here. The flash control instruction is an instruction used to control the lighting device as a whole to emit light to achieve the target lighting effect. The target lighting effect refers to the desired lighting effect of the lighting device. For example, it is desired that the light emitted by the lighting device is warm-toned and consistent with the ambient light. The control device can provide a control button to trigger the flash control instruction, and the control button can be a physical button or a button displayed on the display interface.

[0071] The flash parameters of the xenon flashlight include at least one of flash power, flash color temperature, and flash color. The flash power generally refers to the magnitude of the light energy released by the flashlight during a single flash. The flash power can be represented by the output power of the flashlight and the full-power ratio, such as full power (1 / 1), half power (1 / 2), quarter power (1 / 4), etc. The flash color temperature can generally reflect the color characteristics of the light emitted by the flashlight. Here, the color specific generally refers to the color of the light emitted when an ideal black body is heated to a specific temperature. The color temperature is generally measured in Kelvin (K). For example, a color temperature of 2700K to 3000K is reflected as a warm tone, 4000K to 5000K is reflected as a neutral tone, and 5500K to 6500K is reflected as a cold tone. The flash color generally refers to the color characteristics of light that can be perceived by the visual system of a person or other object, such as red, green, blue, yellow, etc.

[0072] Based on the flash control instruction set for the lighting device, the control device can determine the target flash power corresponding to each group of xenon flash lamps. That is, based on the global control of the lighting device, the control device determines the specific flash parameters of a single group of xenon flash lamps. Here, the target flash power of the xenon flash lamp can be determined based on the specific parameters included in the flash control instruction. For example, if the flash control instruction is to control the lighting device to operate at full power, then the target flash power of each group of xenon flash lamps can be set to full power. If the flash control instruction is to control the lighting device to emit warm-colored light, then based on the mapping relationship between color temperature and power, the target flash power of each group of xenon flash lamps is set. If the flash control instruction is to control the lighting device to emit red light, then based on the mapping relationship between color and power, the target flash power of each group of xenon flash lamps is set. The flash parameters included in the flash control instruction can also be a combination of the above parameters. For example, if the flash control instruction is to control the lighting device to operate at full power and emit warm-colored light, then based on the two data of full power and the color temperature of warm-colored light, the target flash power of each group of xenon flash lamps is set respectively.

[0073] In an embodiment of the present application, the flash parameters included in the flash control instruction can be global flash parameters or independent flash parameters for each group of xenon flash lamps. Among them, the global flash parameters refer to the flash parameters set for the overall target light-emitting effect required by the lighting device, and the independent flash parameters for each group of xenon flash lamps are the flash parameters set separately for each group of xenon flash lamps. If the flash control instruction includes the global flash parameters of the lighting device, then the target flash power corresponding to each group of xenon flash lamps is determined according to the global flash parameters. Among them, the mapping relationship between the global flash parameters and the flash parameters corresponding to each group of xenon flash lamps can be preset, and by querying this mapping relationship, the target flash power corresponding to each group of xenon flash lamps is determined. If the flash control instruction includes the independent flash parameters of each group of xenon flash lamps, then the independent flash parameters of each group of xenon flash lamps are used to generate the target flash power corresponding to each group of xenon flash lamps.

[0074] In an embodiment of the present application, when determining the target flash power corresponding to each group of xenon flash lamps according to the global flash parameters, first query the preset parameter configuration table according to the global flash parameters; if there is a preset global parameter in the preset parameter configuration table that is the same as the global flash parameter, then use the preset flash power of each group of xenon flash lamps corresponding to the preset global parameter as the target flash power corresponding to each group of xenon flash lamps. The preset parameter configuration table stores the mapping relationship between the global flash parameters and the preset flash power of each group of xenon flash lamps. By querying this table, the preset flash power corresponding to the preset global parameter that is consistent with the global flash parameters included in the flash control instruction in the preset flash power table is used as the target flash power corresponding to the xenon flash lamp.

[0075] Since the lighting device includes multiple sets of xenon flashlights, a preset global parameter in the preset parameter configuration table can correspond to the preset flash power of multiple sets of xenon flashlights included in the lighting device. For example, if the lighting device includes xenon flashlight A and xenon flashlight B, when the preset global parameter is the global power P1, xenon flashlight A corresponds to the preset flash power P 1A , and xenon flashlight B corresponds to the preset flash power P 1B ; or, when the preset global parameter includes the global power P1 and the global color temperature K1, xenon flashlight A corresponds to the preset flash power P 1A , and xenon flashlight B corresponds to the preset flash power P 1B ; or, when the preset global parameter includes the global color S1, xenon flashlight A corresponds to the preset flash power P 1A , and xenon flashlight B corresponds to the preset flash power P 1B .

[0076] In an embodiment of the present application, if there is no preset global parameter in the preset parameter configuration table that is the same as the global flash parameter, the preset global parameter closest to the global flash parameter is determined; the preset flash powers of the groups of xenon flashlights corresponding to the preset global parameter closest to the global flash parameter are used as the target flash powers corresponding to the groups of xenon flashlights. Exemplarily, if the preset parameter configuration table includes data corresponding to the global power P1 and the global power P2, and the global flash power Px included in the flash control instruction is between the global power P1 and the global power P2, then at this time, the distances between the global flash power Px and the global power P1 and the global power P2 are calculated respectively. Assuming that the distance between the global flash power Px and the global power P1 is smaller, it means that the lighting effect of the global power P1 is closer to the lighting effect corresponding to the global flash power Px. Therefore, the preset flash powers of the groups of xenon flashlights corresponding to the global power P1 are used as the target flash powers of the groups of xenon flashlights.

[0077] In an embodiment of the present application, if there is no preset global parameter in the preset parameter configuration table that is the same as the global flash parameter, then determine the preset global parameter that is closest to the global flash parameter; generate a flash power fine-tuning value according to the distance between the global flash parameter and the closest preset global parameter; generate the target flash power corresponding to each group of xenon flashlights according to the preset flash power of each group of xenon flashlights corresponding to the closest preset global parameter and the flash power fine-tuning value. That is, this embodiment supports fine-tuning of the flash power. Exemplarily, if the preset parameter configuration table includes data corresponding to the global power P1 and the global power P2, and the global flash power Px included in the flash control instruction is between the global power P1 and the global power P2, then at this time, calculate the distances between the global flash power Px and the global power P1 and the global power P2 respectively. Assume that the distance between the global flash power Px and the global power P1 is smaller. Then at this time, a flash power fine-tuning value can be generated based on the distance between the global flash power Px and the global power P1. For example, the fine-tuning value can be the ratio δ of the distance between the two to the global power P1. Then the target flash power of each group of xenon flashlights can be the sum of the preset flash power of each group of xenon flashlights and the flash power fine-tuning value. For example, the target flash power corresponding to the xenon flashlight A is P 1A +δ, and the xenon flashlight B corresponds to the preset flash power P 1B +δ.

[0078] The global flash parameter in the above example takes the global flash power as an example. It can be understood that in practical applications, replacing the global flash power with the global flash color temperature and the global flash color is also applicable.

[0079] Exemplarily, Figure 4A Schematically shows a schematic diagram of a flash parameter setting interface provided by an embodiment of the present application. As Figure 4A shown, the lighting device includes a xenon flashlight A and a xenon flashlight B. There is no color filter in the xenon flashlight A, and the flash color temperature is about 5000K; there is a CTO color filter in the xenon flashlight B, and the color temperature is about 3200K (after being processed by the color filter); the flash power is expressed as a fraction of the full power, such as 1 / 1, 1 / 2, 1 / 4, etc. As Figure 4A shown, the user can perform flash parameter settings for each group of xenon flashlights respectively in the parameter touch and slide adjustment area corresponding to each flash light group number (or code name); the user can also set the global flash parameters of the lighting device in the global flash parameter adjustment area (such as the global power parameter, the global color temperature parameter, etc.).

[0080] For example, if the global flash power is set to 1 / 2 and the global flash color temperature is set to around 4100K, the control device calculates based on the set global flash parameters that xenon flash lamp A and xenon flash lamp B flashing at 1 / 2 power respectively can achieve the set global flash power and color temperature parameters. Another example is that the global flash power is set to 1 / 4 and the global flash color temperature is set to 3600K. It is calculated that the target flash power of xenon flash lamp A is 1 / 8 + 0.2 (0.2 represents the flash power fine-tuning value), and the target flash power of xenon flash lamp B is 1 / 2.

[0081] In an embodiment of the present application, the flash parameter setting interface can be provided by a wireless flash trigger or a terminal device. Specifically, the wireless flash trigger or the terminal device can add each group of xenon flash lamps to the control list according to the identification information of each group of xenon flash lamps, which is equivalent to connecting each group of xenon flash lamps together, and can realize the operation of a wireless flash trigger or a terminal device controlling multiple groups of xenon flash lamps. For example, the wireless flash trigger adds more than two groups of xenon flash lamps to the control list through a matching channel (and / or identification code), thereby connecting these xenon flash lamps together; the wireless flash trigger can further connect to the terminal device (such as a mobile phone APP) through Bluetooth.

[0082] In an embodiment of the present application, each group of xenon flash lamps can have different flash color temperatures and / or colors. After being connected to the wireless flash trigger or the terminal device, each group of xenon flash lamps can send its own spectrum adjustment information to the wireless flash trigger or the terminal device. The spectrum adjustment information of a group of xenon flash lamps includes whether the group of xenon flash lamps is equipped with a spectrum adjustment component and / or the type of the equipped spectrum adjustment component. Exemplarily, the spectrum adjustment information includes a field for whether a spectrum adjustment component is configured and a field for the type of the spectrum adjustment component; if a group of xenon flash lamps is not equipped with a spectrum adjustment component, the field for whether a spectrum adjustment component is configured can be set to no, and the field for the type of the spectrum adjustment component can be set to empty; if a group of xenon flash lamps is equipped with a spectrum adjustment component, the field for whether a spectrum adjustment component is configured can be set to yes, and the field for the type of the spectrum adjustment component can be set to the corresponding type of the spectrum adjustment component, such as an orange CTO filter, a blue CTB filter, etc.

[0083] After the wireless flash trigger or the terminal device obtains the spectrum adjustment information corresponding to each group of xenon flash lamps, it can determine the display interface information based on this, and then generate a corresponding flash parameter setting interface. The display interface information includes the independent flash parameter display information corresponding to each group of xenon flash lamps and the global flash parameter display information corresponding to the lighting device, that is, the display interface information includes the specific display content of the flash parameter setting interfaces corresponding to each group of xenon flash lamps currently connected to the wireless flash trigger or the terminal device.

[0084] In one embodiment of the present application, when determining the display interface information, the wireless flash trigger or the terminal device may query a database (which may also be a cache, a storage space, or other addresses capable of storing data) to check if there is a parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights. The parameter distribution table includes the flash parameters that each group of xenon flashlights can adjust, that is, the parameter distribution table defines which specific flash parameters each group of xenon flashlights can adjust. The mapping relationship between the spectral adjustment information and the parameter distribution table is pre-stored in the database. When querying, the spectral adjustment information is used to match in this mapping relationship to determine if there is a corresponding parameter distribution table.

[0085] If it is determined that there is a parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, the wireless flash trigger or the terminal device generates the display interface information according to the parameter distribution table. At this time, the display interface information may include independent flash parameter adjustment controls corresponding to each group of xenon flashlights, and may also include a global flash parameter adjustment control for the lighting device. Exemplarily, assuming that the lighting device includes xenon flashlight A and xenon flashlight B, and the parameter distribution table corresponding to the spectral adjustment information includes two flash parameters, namely flash power and flash color temperature, then the wireless flash trigger or the terminal device can generate a Figure 4A flash parameter setting interface as shown.

[0086] If it is determined that there is no parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, the wireless flash trigger or the terminal device generates the display interface information according to the default flash parameters. Among them, the non-existence of the corresponding parameter distribution table may mean that each group of xenon flashlights is not equipped with a spectral adjustment component. At this time, some flash parameters are not adjustable, such as flash color temperature and flash color. However, the flash power can still be adjusted at this time. Therefore, the flash power is used as the default flash parameter, and a power adjustment control is displayed in the flash parameter setting interface. Exemplarily, assuming that the lighting device includes xenon flashlight A and xenon flashlight B, and neither of them is equipped with a spectral adjustment component, then the area of the non-adjustable parameters can be set to an uneditable attribute. For example, Figure 4A the "color temperature parameter" adjustment area in Figure 4A is grayed out, and the "color temperature parameter" adjustment area in

[0087] is deleted, so that the user cannot adjust the parameters in this area.

[0088] Exemplarily, Figure 4B schematically shows a schematic diagram of the flash parameter setting interface provided by an embodiment of the present application. As Figure 4BAs shown, the flash parameter setting interface displays the setting interface for color parameters. Among them, the individual flash parameter setting area for each group of xenon flashlights is the same as Figure 4A the same. In Figure 4B the shown interface, the user can configure the color of the xenon flashlights through the color adjustment area. Among them, the color adjustment area can be the global color parameter setting area of the lighting device, or the individual flash color setting area for a group of xenon flashlights after the user selects a group of xenon flashlights. The color adjustment area includes multiple color blocks, and the user realizes color adjustment by selecting the corresponding color blocks.

[0089] Exemplarily, Figure 4C schematically shows a schematic diagram of the flash parameter setting interface provided by an embodiment of the present application. As Figure 4C shown, the flash parameter setting interface displays the setting interface for color parameters. Among them, the individual flash parameter setting area for each group of xenon flashlights is the same as Figure 4B the same. In Figure 4C the shown interface, the user can configure the color of the xenon flashlights through the color adjustment area. Among them, the color adjustment area can be the global color parameter setting area of the lighting device, or the individual flash color setting area for a group of xenon flashlights after the user selects a group of xenon flashlights. The color adjustment area includes multiple color channels, and each color channel can display multiple color blocks. The user realizes the color adjustment of a certain color channel by selecting the color blocks, and finally determines the color of a certain xenon flashlight by combining the colors of all color channels or determines the global color of the lighting device by combining the colors of all color channels.

[0090] Step 320: Generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal, and the lighting device reaches the target light-emitting effect.

[0091] Specifically, after determining the target flash power corresponding to each group of xenon flashlights, based on the target flash power, generate the corresponding control signal. This control signal is used to control the corresponding xenon flashlight to work at the target flash power. Finally, all the xenon flashlights in the lighting device work at the corresponding target flash power under the drive of the control signal, so that the light emitted by the lighting device as a whole can reach the desired target light-emitting effect. Among them, the control signal refers to the PWM (Pulse Width Modulation) signal input into the control circuit of the xenon flashlight. The PWM signal is a signal with alternating high and low levels with a certain duty cycle. The size of the duty cycle affects the flash power of the xenon flashlight. Therefore, the process of generating the control signal corresponding to the xenon flashlight is actually the process of determining the duty cycle of the PWM signal.

[0092] In the technical solution provided by the embodiment of the present application, the lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment component. After the light emitted by the xenon flashlight passes through the spectral adjustment component, the color temperature of the light increases or decreases. When controlling the lighting device, first, according to the flash control instruction set for the lighting device, determine the target flash power corresponding to each group of xenon flashlights. Among them, the flash control instruction is used to control the lighting device to achieve the target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color. Then, generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal, and the lighting device achieves the target lighting effect. In this way, flash parameters such as the power, color temperature, and color of the xenon lighting device can be adjusted according to actual needs, so that a xenon lighting device can be applicable to a variety of different application scenarios, thereby reducing the usage cost of the lighting device and expanding the application scenarios of the lighting device.

[0093] Figure 5 Schematically shows an exemplary system architecture block diagram applying the technical solution of the present application.

[0094] As Figure 5 shown, the system architecture includes a control device 100 and a lighting device 200. Among them, the control device 100 can be a wireless flash trigger. The control device 100 includes a first wireless transmission module 110, an operation interface 120, and a first main control module 130. The lighting device 200 includes 3 groups of xenon flashlights 210, denoted as flashlight 1, flashlight 2, and flashlight 3 respectively. Each xenon flashlight 210 includes a flash lamp tube 21, a flash control circuit 22, a color temperature and color detector 23, a second wireless transmission module 24, and a second main control module 25.

[0095] In this embodiment, the color temperature and color detector 23 can detect the spectral adjustment component configured for the xenon flashlight 210. In other words, the user can configure / replace the required spectral adjustment component for the xenon flashlight 210 by himself, or not configure the spectral adjustment component. Here, the spectral adjustment component can be a color temperature adjustment component (such as a CTO color filter), or a color adjustment component (such as a specific color filter).

[0096] In this system architecture, the color temperature and color detector 23 in each group of xenon flashlights 210 detects the spectral adjustment component configured for the xenon flashlight 210, and the spectral adjustment component is used to adjust the color temperature or color of the light emitted by the xenon flashlight 210. The color temperature and color detector 23 transmits the detection result to the second main control module 25, and the second main control module 25 determines the flash parameter adjustment range corresponding to the xenon flashlight 210 based on the detected spectral adjustment component; wherein, the flash parameter adjustment range corresponding to each group of xenon flashlights 210 is used to set the independent flash parameters of each group of xenon flashlights 210. The independent flash parameter refers to the flash parameter set separately for a certain group of xenon flashlights 210, and the independent flash parameters between each group of xenon flashlights 210 can be the same or different.

[0097] In this embodiment, by detecting the spectral adjustment components configured for each group of xenon flashlights to determine the flash parameter adjustment range corresponding to each group of xenon flashlights, the user can configure the required spectral adjustment components according to their own needs, further improving the flexibility of the color temperature and color adjustment of the lighting device, expanding the usage scenarios of the lighting device, and thus reducing the usage cost of the lighting device.

[0098] The second main control module 25 sends the flash parameter adjustment range to the second wireless transmission module 24, and then the second wireless transmission module 24 transmits it to the first wireless transmission module 110. Further, the first wireless transmission module 110 sends it to the first main control module 130, and finally the first main control module 130 sends the flash parameter adjustment range to the operation interface 120 for display. The user can learn about the flash parameter adjustment range corresponding to each group of xenon flashlights 210 through the operation interface 120. Exemplarily, the operation interface 120 can be as Figures 4A - 4C shown in any of the display interfaces, taking Figure 4A as an example, in the parameter touch and slide adjustment area corresponding to flashlight A, the parameters are adjusted through a slide bar, and the flash parameter adjustment range is displayed at both ends of the slide bar.

[0099] After the first main control module 130 or the second main control module 25 determines the flash parameter adjustment range corresponding to each group of xenon flashlights 210, it can also generate the global parameter adjustment range corresponding to the lighting device 200 based on the flash parameter adjustment range corresponding to each group of xenon flashlights 210; wherein, the global parameter adjustment range is used to set the global flash parameters of the lighting device. Exemplarily, the operation interface 120 takes Figure 4A as an example, and the global parameter adjustment range is displayed in the global power parameter adjustment area corresponding to flashlight A. Optionally, the global parameter adjustment range may not be displayed, but when the global parameter is adjusted to the minimum or maximum value, it will no longer be possible to continue adjusting. For example, when the user adjusts the global power parameter to the maximum value through the "+" adjustment button and then clicks the "+" adjustment button again, the global power parameter will no longer increase.

[0100] After the user sets the flash parameters through the operation interface 120, a flash control instruction is triggered. For example, when the user clicks the "OK" button in the operation interface 120, the first main control module 130 generates a flash control instruction based on the current parameters in the operation interface 120. The first main control module 130 determines the target flash power corresponding to each group of xenon flash lamps 210 according to the flash control instruction. Here, the first main control module 130 can pre-store a preset parameter configuration table and determine the target flash power corresponding to each group of xenon flash lamps 210 by means of table query. Next, the first main control module 130 generates control signals corresponding to each group of xenon flash lamps 210 according to the target flash power corresponding to each group of xenon flash lamps 210, and sends the control signals to the first wireless transmission module 110. The first wireless transmission module 110 sends the control signal corresponding to each group of xenon flash lamps 210 to the second wireless transmission module 24 corresponding to that group of xenon flash lamps 210, and then the second wireless transmission module 24 sends it to the second main control module 25. The second main control module 25 outputs the control signal to the flash control circuit 22, thereby controlling the corresponding flash lamp tube 21 to work. Finally, all the flash lamp tubes 21 are driven to emit light under their respective control signals, so that the overall lighting device 200 achieves the target lighting effect.

[0101] Optionally, the first main control module 130 can instruct the first wireless transmission module 110 to transmit the target flash power corresponding to each group of xenon flash lamps 210 to the second wireless transmission module 24 of the corresponding xenon flash lamp 210, and then the second wireless transmission module 24 sends it to the second main control module 25. The second main control module 25 generates a control signal based on the received target flash power and sends the control signal to the flash control circuit 22 to control the operation of the flash lamp tube 21.

[0102] In an embodiment of the present application, when setting the flash parameters included in the flash control instruction, it can be implemented by configuring specific parameter values, or by setting specific gears, that is, generating a flash control instruction based on the global parameter values set for the lighting device or the independent parameter values set for each group of xenon flash lamps; or generating a flash control instruction based on the global parameter gears set for the lighting device or the independent parameter gears set for each group of xenon flash lamps.

[0103] For example, when setting the flash power, specific values such as 1 / 1, 1 / 2, 1 / 4, etc. can be used, or power levels such as low power, medium power, high power, etc. can also be used. Another example is that when setting the flash color temperature, specific values such as 3200K, 4000K, etc. can be used, or levels such as warm tone, medium warm tone, neutral tone, cold tone, high cold tone, etc. can also be used. Whether it is the global flash parameters of the lighting device or the independent flash parameters of the xenon flash lamp, either of these two methods can be used for setting. If the parameters are set by levels, the mapping relationship between the levels and the specific parameter values is pre-stored in the terminal device, and then according to this mapping relationship, the level selected by the user is converted into a specific parameter value to generate a flash control instruction.

[0104] It should be noted that although the steps of the methods in this application are described in a specific order in the drawings, this does not require or imply that these steps must be executed in that specific order, or that all the steps shown must be executed to achieve the desired result. Additionally or alternatively, some steps can be omitted, multiple steps can be combined into one step for execution, and / or one step can be decomposed into multiple steps for execution, etc.

[0105] The device embodiments of this application are introduced below, which can be used to execute the control method of the lighting device in the above embodiments of this application. Figure 6 The structural block diagram of the control device of the lighting device provided by the embodiment of this application is schematically shown. Among them, the lighting device includes multiple groups of xenon flash lamps, and at least one group of xenon flash lamps is configured with a spectral adjustment member, and the spectral adjustment member is used to adjust the spectral distribution of the light emitted by the xenon flash lamp. As Figure 6 shown, the control device of the lighting device provided by the embodiment of this application includes:

[0106] A parameter determination module 610, configured to determine the target flash power corresponding to each group of xenon flash lamps according to the flash control instruction set for the lighting device; wherein, the flash control instruction is used to control the lighting device to achieve a target light-emitting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color.

[0107] A control module 620, configured to generate control signals corresponding to each group of xenon flash lamps according to the target flash power corresponding to each group of xenon flash lamps, so that each group of xenon flash lamps emits light under the drive of the corresponding control signal to make the lighting device achieve the target light-emitting effect.

[0108] In an embodiment of this application, the parameter determination module 610 includes:

[0109] A global parameter generation unit, configured to determine the target flash power corresponding to each group of xenon flash lamps according to the global flash parameters if the flash control instruction includes the global flash parameters of the lighting device;

[0110] An independent parameter generation unit, configured to generate the target flash power corresponding to each group of xenon flash lamps by using the independent flash parameters of each group of xenon flash lamps if the flash control instruction includes the independent flash parameters of each group of xenon flash lamps.

[0111] In an embodiment of the present application, the global parameter generation unit is specifically configured to:

[0112] Query a preset parameter configuration table according to the global flash parameters;

[0113] If there are preset global parameters identical to the global flash parameters in the preset parameter configuration table, use the preset flash power of each group of xenon flash lamps corresponding to the preset global parameters as the target flash power corresponding to each group of xenon flash lamps.

[0114] In an embodiment of the present application, the global parameter generation unit is further configured to:

[0115] If there are no preset global parameters identical to the global flash parameters in the preset parameter configuration table, determine the preset global parameter closest to the global flash parameters;

[0116] Use the preset flash power of each group of xenon flash lamps corresponding to the closest preset global parameter as the target flash power corresponding to each group of xenon flash lamps.

[0117] In an embodiment of the present application, the global parameter generation unit is further configured to:

[0118] If there are no preset global parameters identical to the global flash parameters in the preset parameter configuration table, determine the preset global parameter closest to the global flash parameters;

[0119] Generate a flash power fine-tuning value according to the distance between the global flash parameters and the closest preset global parameter;

[0120] Generate the target flash power corresponding to each group of xenon flash lamps according to the preset flash power of each group of xenon flash lamps corresponding to the closest preset global parameter and the flash power fine-tuning value.

[0121] In an embodiment of the present application, the device further includes:

[0122] The detection module is used to detect the spectral adjustment components configured for each group of xenon flashlights; and determine the flash parameter adjustment range corresponding to each group of xenon flashlights according to the spectral adjustment components configured for each group of xenon flashlights; wherein, the flash parameter adjustment range corresponding to each group of xenon flashlights is used to set the independent flash parameters of each group of xenon flashlights.

[0123] In an embodiment of the present application, the detection module is further used for:

[0124] Generate the global parameter adjustment range corresponding to the lighting device according to the flash parameter adjustment range corresponding to each group of xenon flashlights; wherein, the global parameter adjustment range is used to set the global flash parameters of the lighting device.

[0125] In an embodiment of the present application, the device further includes:

[0126] The instruction generation module is used to generate the flash control instruction based on the global parameter value set for the lighting device or the independent parameter value set for each group of xenon flashlights; or generate the flash control instruction based on the global parameter gear set for the lighting device or the independent parameter gear set for each group of xenon flashlights.

[0127] In an embodiment of the present application, the device further includes a parameter interface generation module, and the parameter interface generation module is specifically used for:

[0128] Add each group of xenon flashlights to the control list according to the identification information of each group of xenon flashlights;

[0129] Obtain the spectral adjustment information corresponding to each group of xenon flashlights in the control list; wherein, the spectral adjustment information includes whether the xenon flashlight is configured with a spectral adjustment component, and / or the type of the spectral adjustment component configured for the xenon flashlight;

[0130] Determine the display interface information according to the spectral adjustment information corresponding to each group of xenon flashlights; wherein, the display interface information includes the independent flash parameter display information corresponding to each group of xenon flashlights and the global flash parameter display information corresponding to the lighting device;

[0131] Generate a flash parameter setting interface according to the display interface information.

[0132] In an embodiment of the present application, the parameter interface generation module is specifically used for:

[0133] If it is determined that there is a parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, generate the display interface information according to the parameter distribution table; wherein, the parameter distribution table includes the flash parameters that each group of xenon flashlights can adjust;

[0134] If it is determined that there is no parameter distribution table that matches the spectral adjustment information corresponding to each xenon flash lamp, the display interface information is generated according to the default flash parameters.

[0135] The specific details of the control device of the lighting equipment provided in the embodiments of the present application have been described in detail in the corresponding method embodiments, and will not be elaborated here.

[0136] Figure 7 Schematically shows a block diagram of a computer system of an electronic device for implementing the embodiments of the present application.

[0137] It should be noted that Figure 7 The computer system 700 of the shown electronic device is only an example, and should not bring any restrictions to the functions and usage scopes of the embodiments of the present application.

[0138] As Figure 7 shown, the computer system 700 includes a central processing unit 701 (Central Processing Unit, CPU), which can perform various appropriate actions and processes according to the program stored in the read-only memory 702 (Read-Only Memory, ROM) or the program loaded from the storage part 708 into the random access memory 703 (Random Access Memory, RAM). In the random access memory 703, various programs and data required for system operation are also stored. The central processing unit 701, the read-only memory 702, and the random access memory 703 are connected to each other through a bus 704. The input / output interface 705 (Input / Output interface, that is, I / O interface) is also connected to the bus 704.

[0139] The following components are connected to the input / output interface 705: an input part 706 including a keyboard, a mouse, etc.; an output part 707 including, for example, a cathode ray tube (Cathode Ray Tube, CRT), a liquid crystal display (Liquid Crystal Display, LCD), etc., and a speaker, etc.; a storage part 708 including a hard disk, etc.; and a communication part 709 including a network interface card such as a local area network card, a modem, etc. The communication part 709 performs communication processing via a network such as the Internet. A drive 710 is also connected to the input / output interface 705 as needed. A removable medium 711, such as a magnetic disk, an optical disk, a magneto-optical disk, a semiconductor memory, etc., is installed on the drive 710 as needed, so that the computer program read from it can be installed into the storage part 708 as needed.

[0140] In particular, according to the embodiments of the present application, the processes described in each method flow chart can be implemented as computer software programs. For example, embodiments of the present application include a computer program product that includes a computer program carried on a computer-readable medium, and the computer program includes program code for performing the methods shown in the flow charts. In such an embodiment, the computer program can be downloaded and installed from the network through the communication section 709 and / or installed from the removable medium 711. When the computer program is executed by the central processing unit 701, various functions defined in the system of the present application are performed.

[0141] It should be noted that the computer-readable medium shown in the embodiments of the present application can be a computer-readable signal medium, a computer-readable storage medium, or any combination of the two. A computer-readable storage medium can be, for example, but not limited to, an electrical, magnetic, optical, electromagnetic, infrared, or semiconductor system, apparatus, or device, or any combination of the above. More specific examples of the computer-readable storage medium can include, but are not limited to: an electrical connection with one or more wires, a portable computer disk, a hard disk, a random access memory (RAM), a read-only memory (ROM), an erasable programmable read-only memory (EPROM), a flash memory, an optical fiber, a portable compact disc read-only memory (CD-ROM), an optical storage device, a magnetic storage device, or any suitable combination of the above. In the present application, the computer-readable storage medium can be any tangible medium that contains or stores a program, and the program can be used by or in combination with an instruction execution system, apparatus, or device. In the present application, a computer-readable signal medium can include a data signal propagated in a baseband or as part of a carrier wave, in which computer-readable program code is carried. Such a propagated data signal can take various forms, including but not limited to electromagnetic signals, optical signals, or any suitable combination of the above. A computer-readable signal medium can also be any computer-readable medium other than a computer-readable storage medium, and the computer-readable medium can send, propagate, or transmit a program for use by or in combination with an instruction execution system, apparatus, or device. The program code contained on the computer-readable medium can be transmitted by any suitable medium, including but not limited to: wireless, wired, etc., or any suitable combination of the above.

[0142] The flowcharts and block diagrams in the accompanying drawings illustrate the possible architectures, functions, and operations of systems, methods, and computer program products according to various embodiments of the present application. In this regard, each block in the flowchart or block diagram may represent a module, a segment of a program, or a portion of code that contains one or more executable instructions for implementing a specified logical function. It should also be noted that in some alternative implementations, the functions noted in the blocks may occur in a different order than that noted in the accompanying drawings. For example, two consecutive blocks shown may actually be executed substantially in parallel, or they may sometimes be executed in the reverse order, depending on the functions involved. It should also be noted that each block in the block diagram or flowchart, as well as combinations of blocks in the block diagram or flowchart, may be implemented by a dedicated hardware-based system that performs the specified functions or operations, or may be implemented by a combination of dedicated hardware and computer instructions.

[0143] It should be noted that although several modules or units of devices for action execution are mentioned in the above detailed description, such a division is not mandatory. In fact, according to the embodiments of the present application, the features and functions of the two or more modules or units described above may be embodied in one module or unit. Conversely, the features and functions of one module or unit described above may be further divided and embodied by multiple modules or units.

[0144] From the description of the above embodiments, those skilled in the art can easily understand that the example embodiments described herein can be implemented by software, or can be implemented by a combination of software and necessary hardware. Therefore, the technical solutions according to the embodiments of the present application can be embodied in the form of a software product, which can be stored in a non-volatile storage medium (which can be a CD-ROM, a USB flash drive, a mobile hard disk, etc.) or on a network, and includes several instructions to enable a computing device (which can be a personal computer, a server, a touch terminal, or a network device, etc.) to execute the method according to the embodiments of the present application.

[0145] After considering the specification and practicing the invention disclosed herein, those skilled in the art will readily conceive of other embodiments of the present application. The present application is intended to cover any variations, uses, or adaptations of the present application that follow the general principles of the present application and include known common general knowledge or conventional technical means in the technical field not disclosed in the present application.

[0146] It should be understood that the present application is not limited to the exact structures described above and shown in the accompanying drawings, and various modifications and changes can be made without departing from its scope. The scope of the present application is only limited by the appended claims.

Claims

1. A control method for a lighting device, characterized in that, The lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment member for adjusting the spectral distribution of the light emitted by the xenon flashlights; the method includes: Determine the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device; wherein, the flash control instruction includes flash parameters for controlling the lighting device to achieve a target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color. Generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal to make the lighting device achieve the target lighting effect.

2. The control method of the lighting device according to claim 1, wherein Determine the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device, including: If the flash control instruction includes the global flash parameters of the lighting device, then determine the target flash power corresponding to each group of xenon flashlights according to the global flash parameters; If the flash control instruction includes the independent flash parameters of each group of xenon flashlights, then generate the target flash power corresponding to each group of xenon flashlights from the independent flash parameters of each group of xenon flashlights.

3. The control method of the lighting device according to claim 2, characterized in that Determine the target flash power corresponding to each group of xenon flashlights according to the global flash parameters, including: Query a preset parameter configuration table according to the global flash parameters; If there are preset global parameters in the preset parameter configuration table that are the same as the global flash parameters, then use the preset flash power of each group of xenon flashlights corresponding to the preset global parameters as the target flash power corresponding to each group of xenon flashlights.

4. The control method of the lighting device according to claim 3, wherein After querying the preset parameter configuration table according to the global flash parameters, the method further includes: If there are no preset global parameters in the preset parameter configuration table that are the same as the global flash parameters, then determine the preset global parameter closest to the global flash parameters; Use the preset flash power of each group of xenon flashlights corresponding to the closest preset global parameter as the target flash power corresponding to each group of xenon flashlights.

5. The control method of the lighting device according to claim 3, characterized in that, After querying the preset parameter configuration table according to the global flash parameters, the method further includes: If there are no preset global parameters in the preset parameter configuration table that are the same as the global flash parameters, then determine the preset global parameter closest to the global flash parameters; Generate a flash power fine-tuning value according to the distance between the global flash parameters and the closest preset global parameter; Generate the target flash power corresponding to each group of xenon flashlights according to the preset flash power of each group of xenon flashlights corresponding to the closest preset global parameter and the flash power fine-tuning value.

6. The control method of the lighting device according to claim 2, wherein, Before determining the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device, the method further includes: Detect the spectral adjustment members configured for each group of xenon flashlights. Based on the spectral adjustment components configured for each group of xenon flashlights, determine the adjustment range of the flash parameters corresponding to each group of xenon flashlights; wherein, the adjustment range of the flash parameters corresponding to each group of xenon flashlights is used to set the independent flash parameters of each group of xenon flashlights.

7. The control method of the lighting device according to claim 6, characterized in that, Before determining the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device, the method further includes: Generate the global parameter adjustment range corresponding to the lighting device according to the adjustment range of the flash parameters corresponding to each group of xenon flashlights; wherein, the global parameter adjustment range is used to set the global flash parameters of the lighting device.

8. The control method of the lighting device according to claim 1, characterized in that, Before determining the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device, the method further includes: Generate the flash control instruction based on the global parameter value set for the lighting device or the independent parameter value set for each group of xenon flashlights; or Generate the flash control instruction based on the global parameter gear set for the lighting device or the independent parameter gear set for each group of xenon flashlights.

9. The control method of the lighting device according to claim 2, characterized in that, Before determining the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device, the method further includes: Add each group of xenon flashlights to the control list according to the identification information of each group of xenon flashlights; Obtain the spectral adjustment information corresponding to each group of xenon flashlights in the control list; wherein, the spectral adjustment information includes whether the xenon flashlight is configured with a spectral adjustment component, and / or the type of the spectral adjustment component configured for the xenon flashlight; Determine the display interface information according to the spectral adjustment information corresponding to each group of xenon flashlights; wherein, the display interface information includes the independent flash parameter display information corresponding to each group of xenon flashlights and the global flash parameter display information corresponding to the lighting device; Generate a flash parameter setting interface according to the display interface information.

10. The control method of the lighting device according to claim 9, characterized in that, Determining the display interface information according to the spectral adjustment information corresponding to each group of xenon flashlights includes: If it is determined that there is a parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, generate the display interface information according to the parameter distribution table; wherein, the parameter distribution table includes the flash parameters that each group of xenon flashlights can adjust; If it is determined that there is no parameter distribution table that matches the spectral adjustment information corresponding to each group of xenon flashlights, generate the display interface information according to the default flash parameters.

11. A control device for a lighting device, characterized in that, The lighting device includes multiple groups of xenon flashlights, and at least one group of xenon flashlights is configured with a spectral adjustment component, and the spectral adjustment component is used to adjust the spectral distribution of the light emitted by the xenon flashlight; the device includes: A parameter determination module, configured to determine the target flash power corresponding to each group of xenon flashlights according to the flash control instruction set for the lighting device; wherein, the flash control instruction is used to control the lighting device to achieve a target lighting effect, and the flash parameters include at least one of flash power, flash color temperature, and flash color. A control module, configured to generate control signals corresponding to each group of xenon flashlights according to the target flash power corresponding to each group of xenon flashlights, so that each group of xenon flashlights emits light under the drive of the corresponding control signal, enabling the lighting device to achieve the target lighting effect.

12. A computer-readable medium having a computer program stored thereon, characterized in that, When executed by a processor, the computer program implements the control method of the lighting device according to any one of claims 1 to 10.

13. An electronic device, characterized in that, Comprising: A processor; And A memory, configured to store executable instructions of the processor; Wherein, the processor is configured to execute the executable instructions to implement the control method of the lighting device according to any one of claims 1 to 10.

14. A computer program product, characterized in that, The computer program product or computer program includes computer instructions, and the computer instructions are stored in a computer-readable storage medium; The processor of the computer device reads the computer instructions from the computer-readable storage medium, and the processor executes the computer instructions, causing the computer device to execute the control method of the lighting device according to any one of claims 1 to 10.