Operation control method and device of combined lamp
By receiving and analyzing the access signals and splicing methods of combined lamps, corresponding control parameters are generated, and the problem of cumbersome operation when combined use of multiple lamps is solved, the control efficiency and accuracy are improved, and the user experience is improved.
Patent Information
- Application Number
- CN202411982580.9
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2024-12-27
- Publication Date
- 2025-05-06
AI Technical Summary
When using multiple airbag lights to combine, the operator needs to manually control each lamp, which leads to cumbersome operation and inefficient efficiency, and the formation of a specific lighting pattern or effect requires a lot of debugging.
By receiving the lamp access signal of combined lamps, determining the lamp access information, detecting the lamp splicing method, obtaining the lamp needs of the usage scenario, and generating lamp control parameters based on this information, including response sequence control parameters and color control parameters.
It improves the convenience and efficiency of lamp control operation, enhances the accuracy of multi-light control and the accuracy of light exposure, thereby improving the user experience.
Smart Images

Figure CN119946958A_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of lighting control, and in particular to an operation control method and device of a combined lamp. Background Art
[0002] At present, with the rapid development of lighting technology, the use scenarios of lighting fixtures are also increasing, and the combination of multiple or multiple lamps is more frequent. For example, in the field of film and television production, airbag lamp equipment is widely used in on-site shooting due to its powerful lighting effect and flexibility, and multiple airbag lamps are often combined to achieve a more ideal lighting effect.
[0003] However, due to the large size of the airbag lamp device, when it is used in combination with multiple light modules, the operator needs to manually operate and control each airbag lamp, and in order to form a specific light pattern or effect that meets the requirements, a lot of debugging and operation are required on the installation sequence and position of the light modules, which is labor-intensive, cumbersome and inefficient. Therefore, it is particularly important to propose a technical solution that can improve the convenience and efficiency of the control operation of the lamp. Summary of the invention
[0004] The present invention provides an operation control method and device for a combined lamp, which can help improve the control operation convenience and control efficiency of the lamp.
[0005] In order to solve the above technical problems, the first aspect of the present invention discloses an operation control method of a combined lamp, the method comprising:
[0006] receiving a lamp access signal of a combined lamp, and determining lamp access information of the combined lamp according to the lamp access signal, wherein the lamp access information includes lamp quantity information;
[0007] According to the lamp quantity information, detecting a lamp splicing mode of the combined lamp, wherein the lamp splicing mode includes relative position parameters of sub-lamps in the combined lamp;
[0008] A scene lamp requirement of a usage scene corresponding to the combined lamp is obtained, and a lamp control parameter for the combined lamp is generated according to the lamp splicing method and the scene lamp requirement.
[0009] As an optional implementation, in the first aspect of the present invention, detecting the lamp splicing mode of the combined lamp according to the lamp quantity information includes:
[0010] When the lamp quantity information indicates that the combined lamp includes at least two sub-lamp fixtures, determining a lamp identifier of each of the sub-lamp fixtures;
[0011] Detecting the splicing information of the lamp splicing points on each of the sub-lamp, the lamp splicing points are used to splice the sub-lamp with other sub-lamp, and each of the sub-lamp includes at least one of the lamp splicing points;
[0012] Determine the relative position parameter of each sub-lamp according to the splicing information of each of the lamp splicing points on each of the sub-lamp and the lamp identification of each of the sub-lamp;
[0013] The lamp splicing method of the combined lamp is determined according to the relative position parameters of each of the sub-lamp.
[0014] As an optional implementation, in the first aspect of the present invention, the scene lamp requirements include scene light and shadow angle requirements and scene lighting color requirements, and the lamp control parameters include lamp response sequence control parameters and color control parameters;
[0015] Generating a lamp control parameter for the combined lamp according to the lamp splicing mode and the scene lamp requirement includes:
[0016] Determine the lighting logic of the combined lamps according to the lamp splicing mode and the scene light and shadow angle requirements, and generate a lamp response sequence control parameter for the combined lamps according to the lamp lighting logic;
[0017] According to the scene lighting color requirement, a color control parameter for the combined lamp is generated.
[0018] As an optional implementation, in the first aspect of the present invention, determining the lighting logic of the lamp corresponding to the combined lamp according to the lamp splicing mode and the scene light and shadow angle requirement includes:
[0019] According to the lamp splicing method, at least one lighting logic matching the lamp splicing method is selected from a preset lamp lighting logic database;
[0020] Determining a target lighting logic in each lighting logic according to the scene light and shadow angle requirements;
[0021] A lighting logic adjustment instruction input by a user is received, and according to the lighting logic adjustment instruction and the target lighting logic, a lamp lighting logic corresponding to the combined lamp is determined.
[0022] As an optional implementation, in the first aspect of the present invention, each of the sub-lamp includes at least one lamp color block, and the scene lighting color requirement includes a scene lighting distribution requirement and a lighting color requirement;
[0023] The step of generating color control parameters for the combined lamp according to the scene illumination color requirement includes:
[0024] Determine the color block position parameter of each of the lamp color blocks in each of the sub-lamp according to the relative position parameter of each of the sub-lamp;
[0025] Determine at least one color block area of the target lamp according to the scene illumination distribution requirement and the color block position parameters of each of the lamp color blocks, each of the color block areas including a pure color block area and / or a gradient color block area;
[0026] According to the illumination color requirement, a regional color control parameter for each of the color block areas is determined, and according to the regional color control parameter for each of the color block areas, a color control parameter for the combined lamp is generated.
[0027] As an optional implementation, in the first aspect of the present invention, the lighting color requirement includes a light source requirement, a light effect requirement, and a color requirement;
[0028] The step of determining the regional color control parameter for each color block region according to the illumination color requirement includes:
[0029] According to the light source requirement, determining a target light source for each color block area, wherein the target light source includes a tungsten light source, an incandescent light source, or a halogen light source;
[0030] Determine light effect information and color information of each color block area according to the target light source of each color block area, the light effect requirement and the color requirement, wherein the light effect information includes light effect type information and light effect change information, and the color information includes at least one of brightness information, color temperature information and hue information;
[0031] According to the target light source, the light effect information and the color information of each color block area, a regional color control parameter for each color block area is determined.
[0032] As an optional implementation, in the first aspect of the present invention, when the lamp quantity information indicates that the combined lamp includes one sub-lamp, the scene lamp requirement includes a single lamp illumination distribution requirement and a single lamp color requirement;
[0033] Generating a lamp control parameter for the combined lamp according to the lamp splicing mode and the scene lamp requirement includes:
[0034] According to the single lamp illumination distribution requirement, selecting at least one target color block to be lit in the sub-lamp;
[0035] Determine the target color block position parameters of each target color block, and determine the color control parameters for each target lamp bead in each target color block according to the target color block position parameters of each target color block and the single lamp color requirement, wherein each target color block includes at least one target lamp bead;
[0036] According to the target color block position parameter of each target color block and the color control parameter of each target lamp bead in each target color block, a lamp control parameter for the target lamp is generated.
[0037] A second aspect of the present invention discloses an operation control device for a combined lamp, the device comprising:
[0038] A receiving module, used to receive a lamp access signal of a combined lamp, and determine lamp access information of the combined lamp according to the lamp access signal, wherein the lamp access information includes lamp quantity information;
[0039] A detection module, used for detecting a lamp splicing mode of the combined lamp according to the lamp quantity information;
[0040] The acquisition module is used to acquire the scene lamp requirements of the usage scene corresponding to the combined lamp, and generate lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements.
[0041] As an optional implementation, in the second aspect of the present invention, the detection module detects the lamp splicing mode of the combined lamp according to the lamp quantity information, specifically including:
[0042] When the lamp quantity information indicates that the combined lamp includes at least two sub-lamp fixtures, determining a lamp identifier of each of the sub-lamp fixtures;
[0043] Detecting the splicing information of the lamp splicing points on each of the sub-lamp, the lamp splicing points are used to splice the sub-lamp with other sub-lamp, and each of the sub-lamp includes at least one of the lamp splicing points;
[0044] Determine the relative position parameter of each sub-lamp according to the splicing information of each of the lamp splicing points on each of the sub-lamp and the lamp identification of each of the sub-lamp;
[0045] The lamp splicing method of the combined lamp is determined according to the relative position parameters of each of the sub-lamp.
[0046] As an optional implementation, in the second aspect of the present invention, the scene lighting requirements include scene light and shadow angle requirements and scene lighting color requirements, and the lighting control parameters include lighting response sequence control parameters and color control parameters;
[0047] The acquisition module generates the lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements, specifically including:
[0048] Determine the lighting logic of the combined lamps according to the lamp splicing mode and the scene light and shadow angle requirements, and generate a lamp response sequence control parameter for the combined lamps according to the lamp lighting logic;
[0049] According to the scene lighting color requirement, a color control parameter for the combined lamp is generated.
[0050] As an optional implementation, in the second aspect of the present invention, the acquisition module determines the lighting logic of the lamp corresponding to the combined lamp according to the lamp splicing method and the scene light and shadow angle requirement, specifically including:
[0051] According to the lamp splicing method, at least one lighting logic matching the lamp splicing method is selected from a preset lamp lighting logic database;
[0052] Determining a target lighting logic in each lighting logic according to the scene light and shadow angle requirements;
[0053] A lighting logic adjustment instruction input by a user is received, and according to the lighting logic adjustment instruction and the target lighting logic, a lamp lighting logic corresponding to the combined lamp is determined.
[0054] As an optional implementation, in the second aspect of the present invention, each of the sub-lamp includes at least one lamp color block, and the scene lighting color requirement includes a scene lighting distribution requirement and a lighting color requirement;
[0055] The acquisition module generates the color control parameters for the combined lamp according to the scene illumination color requirement, specifically including:
[0056] Determine the color block position parameter of each of the lamp color blocks in each of the sub-lamp according to the relative position parameter of each of the sub-lamp;
[0057] Determine at least one color block area of the target lamp according to the scene illumination distribution requirement and the color block position parameters of each of the lamp color blocks, each of the color block areas including a pure color block area and / or a gradient color block area;
[0058] According to the illumination color requirement, a regional color control parameter for each of the color block areas is determined, and according to the regional color control parameter for each of the color block areas, a color control parameter for the combined lamp is generated.
[0059] As an optional implementation, in the second aspect of the present invention, the lighting color requirement includes a light source requirement, a light effect requirement, and a color requirement;
[0060] The acquisition module determines the regional color control parameter for each color block area according to the illumination color requirement, specifically including:
[0061] According to the light source requirement, determining a target light source for each color block area, wherein the target light source includes a tungsten light source, an incandescent light source, or a halogen light source;
[0062] Determine light effect information and color information of each color block area according to the target light source of each color block area, the light effect requirement and the color requirement, wherein the light effect information includes light effect type information and light effect change information, and the color information includes at least one of brightness information, color temperature information and hue information;
[0063] According to the target light source, the light effect information and the color information of each color block area, a regional color control parameter for each color block area is determined.
[0064] As an optional implementation, in the second aspect of the present invention, when the lamp quantity information indicates that the combined lamp includes one sub-lamp, the scene lamp requirement includes a single lamp illumination distribution requirement and a single lamp color requirement;
[0065] The acquisition module generates the lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements, specifically including:
[0066] According to the single lamp illumination distribution requirement, selecting at least one target color block to be lit in the sub-lamp;
[0067] Determine the target color block position parameters of each target color block, and determine the color control parameters for each target lamp bead in each target color block according to the target color block position parameters of each target color block and the single lamp color requirement, wherein each target color block includes at least one target lamp bead;
[0068] According to the target color block position parameter of each target color block and the color control parameter of each target lamp bead in each target color block, a lamp control parameter for the target lamp is generated.
[0069] The third aspect of the present invention discloses another operation control device for a combined lamp, the device comprising:
[0070] A memory storing executable program code;
[0071] a processor coupled to the memory;
[0072] The processor calls the executable program code stored in the memory to execute the operation control method of the combined lamp disclosed in the first aspect of the present invention.
[0073] A fourth aspect of the present invention discloses a computer storage medium, wherein the computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the operation control method of the combined lamp disclosed in the first aspect of the present invention.
[0074] Compared with the prior art, the embodiments of the present invention have the following beneficial effects:
[0075] In the embodiment of the present invention, a lamp access signal of a modular lamp is received, and according to the lamp access signal, lamp access information of the modular lamp is determined, and according to the lamp quantity information, the lamp splicing mode of the modular lamp is detected, the scene lamp demand of the use scene corresponding to the modular lamp is obtained, and according to the lamp splicing mode and the scene lamp demand, lamp control parameters for the modular lamp are generated. It can be seen that the implementation of the present invention can improve the convenience and efficiency of lamp control operation, improve the accuracy of multi-lamp control, improve the accuracy of light irradiation, and thus improve the user experience. BRIEF DESCRIPTION OF THE DRAWINGS
[0076] In order to more clearly illustrate the technical solutions in the embodiments of the present invention, the following briefly introduces the drawings required for use in the description of the embodiments. Obviously, the drawings described below are only some embodiments of the present invention. For ordinary technicians in this field, other drawings can be obtained based on these drawings without creative work.
[0077] Figure 1 It is a flow chart of an operation control method of a combined lamp disclosed in an embodiment of the present invention;
[0078] Figure 2 is a flow chart of another operation control method of a combined lamp disclosed in an embodiment of the present invention;
[0079] Figure 3 It is a structural schematic diagram of an operation control device of a combined lamp disclosed in an embodiment of the present invention;
[0080] Figure 4 It is a structural schematic diagram of another operation control device of a combined lamp disclosed in an embodiment of the present invention. DETAILED DESCRIPTION
[0081] In order to enable those skilled in the art to better understand the scheme of the present invention, the technical scheme in the embodiments of the present invention will be clearly and completely described below in conjunction with the drawings in the embodiments of the present invention. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without creative work are within the scope of protection of the present invention.
[0082] The terms "first", "second", etc. in the specification and claims of the present invention and the above-mentioned drawings are used to distinguish different objects rather than to describe a specific order. In addition, the terms "including" and "having" and any variations thereof are intended to cover non-exclusive inclusions. For example, a process, method, device, product or end including a series of steps or units is not limited to the listed steps or units, but may optionally include steps or units that are not listed, or may optionally include other steps or units inherent to these processes, methods, products or ends.
[0083] Reference to "embodiments" herein means that a particular feature, structure, or characteristic described in conjunction with the embodiments may be included in at least one embodiment of the present invention. The appearance of the phrase in various places in the specification does not necessarily refer to the same embodiment, nor is it an independent or alternative embodiment that is mutually exclusive with other embodiments. It is explicitly and implicitly understood by those skilled in the art that the embodiments described herein may be combined with other embodiments.
[0084] The present invention discloses an operation control method and device for a combined lamp, which can improve the control operation convenience and control efficiency of the lamp, improve the accuracy of multi-lamp control, improve the precision of light irradiation, and thus improve the user experience. The following are detailed descriptions.
[0085] Embodiment 1
[0086] See also Figure 1 , Figure 1 1 is a flow chart of an operation control method of a combined lamp disclosed in an embodiment of the present invention. Figure 1 The described method for operating and controlling a modular lamp can be applied to an operating and controlling device for a modular lamp, wherein the operating and controlling device for a modular lamp may include any one of a user device, an intelligent server, or an intelligent platform for controlling the modular lamp, wherein the user device includes but is not limited to at least one of a smart phone (Android phone, iOS phone, etc.), a tablet computer, etc., and the intelligent server includes a local server or a cloud server, which is not limited in the embodiments of the present invention. Figure 1 As shown, the operation control method of the combined lamp may include the following operations:
[0087] 101. Receive a lamp access signal of the combined lamp, and determine lamp access information of the combined lamp according to the lamp access signal.
[0088] In an embodiment of the present invention, optionally, the combination lamp may include at least one sub-lamp, and the lamp access signal of the combination lamp may include an access signal of each sub-lamp. The lamp access signal may include an electrical signal or a wireless signal. When the plug of the sub-lamp is connected to the system, the access electrical signal transmitted by the plug of the sub-lamp can be received. The user can graphically set parameters of the combination lamp through a display device based on a wired connection to achieve control of the combination lamp. For example, the user can connect the combination lamp to the computer by wire and control the combination lamp on the computer. The user can also graphically set parameters of the combination lamp through a display device based on a wireless connection to achieve control of the combination lamp. For example, the user can wirelessly connect to the combination lamp through a mobile phone device, such as a Bluetooth connection, and graphically set parameters of the combination lamp through the mobile phone device. The present invention does not limit this.
[0089] In the embodiment of the present invention, optionally, the lamp access information of the combined lamp can be determined according to the lamp access signal, and the lamp access information can include lamp quantity information, that is, the number of sub-lamps in the combined lamp, which is not limited in the present invention.
[0090] 102. Detect the lamp splicing method of the combined lamp based on the lamp quantity information.
[0091] In the embodiment of the present invention, optionally, the lamp splicing method of the combination lamp can be detected according to the lamp quantity information. Specifically, the relative position parameters of the sub-lamps in the combination lamp can be determined according to the lamp quantity information, and then the lamp splicing method of the combination lamp can be determined. When the combination lamp includes only one sub-lamp, the lamp splicing method includes the relative position parameters of the sub-lamp. When the combination lamp includes at least two sub-lamp, the lamp splicing method includes the relative position parameters of each sub-lamp and also includes the lamp splicing shape of the combination lamp, such as the positive direction, triangle, trapezoid, straight line, etc., which is not limited by the present invention.
[0092] 103. Obtain scene lighting requirements of usage scenarios corresponding to the combined lighting, and generate lighting control parameters for the combined lighting according to the lighting splicing method and the scene lighting requirements.
[0093] In an embodiment of the present invention, optionally, the usage scenarios corresponding to the combined lamps may include at least one of public lighting scenes, outdoor lighting scenes, indoor lighting scenes, photographic lighting scenes, landscape lighting scenes, stage lighting scenes, etc., and the scene lamp requirements may include scene light and shadow angle requirements and scene lighting color requirements, which are not limited by the present invention.
[0094] In an embodiment of the present invention, optionally, the lamp control parameters for the combination lamp may include a lamp response sequence control parameter and a color control parameter. The lamp response sequence control parameter can be used to control the working response sequence of each sub-lamp in the combination lamp, and the color control parameter can be used to control one or more combinations of parameters such as color temperature, brightness, color, hue, and light effect of the combination lamp, which is not limited by the present invention.
[0095] It can be seen that the implementation Figure 1 The described operation control method of the combined lamp can receive a lamp access signal of the combined lamp, and determine the lamp access information of the combined lamp according to the lamp access signal, detect the lamp splicing method of the combined lamp according to the lamp quantity information, obtain the scene lamp requirements of the usage scenario corresponding to the combined lamp, and generate lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements, which can improve the convenience and efficiency of the control operation of the lamp, improve the accuracy of multi-lamp control, improve the accuracy of light irradiation, and thereby improve the user experience.
[0096] In an optional embodiment, the scene lamp requirements include scene light and shadow angle requirements and scene lighting color requirements, and the lamp control parameters include lamp response sequence control parameters and color control parameters;
[0097] According to the lighting splicing method and scene lighting requirements, generating lighting control parameters for combined lighting may include the following operations:
[0098] Determine the lighting logic of the combined lamps according to the lamp splicing method and the scene light and shadow angle requirements, and generate the lamp response sequence control parameters for the combined lamps according to the lamp lighting logic;
[0099] Generate color control parameters for combined lamps based on scene lighting color requirements.
[0100] In this optional embodiment, optionally, the scene lighting requirements may include scene light and shadow angle requirements and scene lighting color requirements, the lighting control parameters may include lighting response sequence control parameters and color control parameters, the scene light and shadow angle requirements may include at least one of the scene light and shadow angle, the scene light and shadow angle change, and the scene light and shadow angle duration, etc., and the lighting logic of the lighting corresponding to the combination lighting can be determined according to the lighting splicing method and the scene light and shadow angle requirements, and the lighting logic of the lighting meets the scene light and shadow angle requirements. The lighting response sequence control parameters may include the lighting sequence parameters of each sub-lamp in the combination lighting, and may also include the power sequence parameters of each lamp bead in each sub-lamp, which is not limited in this embodiment.
[0101] In this optional embodiment, optionally, the scene lighting color requirement may include at least one of a scene lighting color parameter requirement, a scene lighting color change requirement, etc., and color control parameters for the combination lamp may be generated according to the scene lighting color requirement, which is not limited in this embodiment.
[0102] It can be seen that the implementation of this optional embodiment can determine the lamp lighting logic corresponding to the combination lamp according to the lamp splicing method and the scene light and shadow angle requirements, and generate the lamp response sequence control parameters for the combination lamp according to the lamp lighting logic, and generate the color control parameters for the combination lamp according to the scene lighting color requirements. It can determine the lamp corresponding sequence control parameters and color control parameters for the combination lamp, improve the control operation convenience and control efficiency of the combination lamp, improve the accuracy of multi-lamp control, improve the accuracy of lighting irradiation, and thus improve the user experience.
[0103] In another optional embodiment, according to the lamp splicing method and the scene light and shadow angle requirements, determining the lamp lighting logic corresponding to the combined lamp may include the following operations:
[0104] According to the lamp splicing method, at least one lighting logic matching the lamp splicing method is selected from a preset lamp lighting logic database;
[0105] Determine the target lighting logic in each lighting logic according to the scene light and shadow angle requirements;
[0106] Receive the lighting logic adjustment instruction input by the user, and determine the lighting logic of the lamp corresponding to the combined lamp according to the lighting logic adjustment instruction and the target lighting logic.
[0107] In this optional embodiment, optionally, the preset lamp lighting logic database may include at least one lamp lighting logic corresponding to each lamp splicing method, specifically, may include at least one lamp lighting logic corresponding to each lamp splicing shape, such as positive direction, rectangle, straight line, trapezoid, triangle, etc., and according to the lamp splicing method, at least one lighting logic matching the lamp splicing method can be filtered in the preset lamp lighting logic database. For example, when the lamp splicing method indicates that the lamp splicing shape of the combination lamp is a triangle, each lighting logic corresponding to the triangle is filtered in the preset lamp lighting logic database, and each lighting logic can achieve a light and shadow angle effect under this lamp splicing shape, which is not limited in this embodiment.
[0108] In this optional embodiment, optionally, the target lighting logic can be determined in each lighting logic according to the scene light and shadow angle requirements, and the target lighting logic can meet the scene light and shadow angle requirements, or the light and shadow angle effect achieved by the target lighting logic has the highest degree of match with the scene light and shadow angle requirements, which is not limited in this embodiment.
[0109] In this optional embodiment, optionally, after determining the target lighting logic, the user can adjust the target lighting logic according to actual conditions or special needs, that is, the lighting logic adjustment instruction input by the user can be received, and the lighting logic corresponding to the combination lamp can be determined according to the lighting logic adjustment instruction and the target lighting logic, which is not limited in this embodiment.
[0110] In this optional embodiment, optionally, when there is no lighting logic matching the lamp splicing method in the preset lamp lighting logic database, the lighting logic for the lamp splicing method can be generated according to the scene light and shadow angle requirements, and the generated lighting logic can be modified based on the lighting logic adjustment instructions input by the user to obtain the final lamp lighting logic, which is not limited in this embodiment.
[0111] It can be seen that the implementation of this optional embodiment can screen at least one lighting logic that matches the lamp splicing method in the preset lamp lighting logic database according to the lamp splicing method, determine the target lighting logic in each lighting logic according to the scene light and shadow angle requirements, receive the lighting logic adjustment instructions input by the user, and determine the lamp lighting logic corresponding to the combination lamp according to the lighting logic adjustment instructions and the target lighting logic, which can improve the accuracy and reliability of the determined lamp lighting logic, thereby improving the control efficiency and accuracy of the combination lamp.
[0112] In yet another optional embodiment, each sub-lamp includes at least one lamp color block, and the scene lighting color requirement includes a scene lighting distribution requirement and a lighting color requirement;
[0113] According to the scene lighting color requirements, generating color control parameters for the combined lamps may include the following operations:
[0114] Determine the color block position parameter of each color block of each lamp in each sub-lamp according to the relative position parameter of each sub-lamp;
[0115] Determine at least one color block area of the target lamp according to the scene illumination distribution requirement and the color block position parameters of each lamp color block, each color block area includes a pure color block area and / or a gradient color block area;
[0116] According to the lighting color requirement, the regional color control parameters for each color block area are determined, and according to the regional color control parameters for each color block area, the color control parameters for the combined lamp are generated.
[0117] In this optional embodiment, optionally, the scene lighting color requirement may include scene lighting distribution requirements and lighting color requirements, and the color block position parameters of each lamp color block in each sub-lamp may be determined based on the relative position parameters of each sub-lamp. Each sub-lamp may include at least one lamp color block, and the color parameters of each lamp color block may be individually adjusted, which is not limited in this embodiment.
[0118] In this optional embodiment, optionally, at least one color block area of the target lamp can be determined based on the scene lighting distribution requirements and the color block position parameters of each lamp color block. The color block area can represent the area that needs to be illuminated and operated, that is, all color blocks in a sub-lamp can be illuminated, or part of the color blocks can be illuminated. Each color block area can include a pure color block area and / or a gradient color block area, that is, the colors of different color block areas in a sub-lamp can be different, which is not limited in this embodiment.
[0119] In this optional embodiment, optionally, regional color control parameters for each color block area can be determined according to lighting color requirements, and the regional color control parameters may include at least one of light source control parameters, light effect control parameters and color control parameters. Color control parameters for the combination lamp are generated based on the regional color control parameters of each color block area, which is not limited in this embodiment.
[0120] It can be seen that the implementation of this optional embodiment can determine the color block position parameters of each lamp color block in each sub-lamp according to the relative position parameters of each sub-lamp, determine at least one color block area of the target lamp according to the scene lighting distribution requirements and the color block position parameters of each lamp color block, determine the regional color control parameters for each color block area according to the lighting color requirements, and generate color control parameters for the combined lamp according to the regional color control parameters of each color block area, which can determine the regional color control parameters of each color block area in the sub-lamp, and then determine the color control parameters of the combined lamp, thereby improving the accuracy of color control of the combined lamp, improving the degree of color control diversification of the combined lamp, and then improving the accuracy of lighting illumination, thereby improving the user experience.
[0121] In yet another optional embodiment, the lighting color requirement includes a light source requirement, a light effect requirement, and a color requirement;
[0122] According to the lighting color requirement, determining the regional color control parameters for each color block area may include the following operations:
[0123] According to the light source requirements, determine the target light source for each color block area, the target light source includes tungsten light source, incandescent light source or halogen light source;
[0124] Determine light effect information and color information of each color block area according to the target light source, light effect requirement and color requirement of each color block area, where the light effect information includes light effect type information and light effect change information, and the color information includes at least one of brightness information, color temperature information and hue information;
[0125] According to the target light source, light effect information and color information of each color block area, the regional color control parameters for each color block area are determined.
[0126] In this optional embodiment, optionally, the lighting color requirement may include light source requirements, light effect requirements and color requirements. The target light source of each color block area can be determined according to the light source requirements. The target light source can include a tungsten filament light source, an incandescent light source or a halogen light source. The light effect information and color information of each color block area can be determined according to the target light source, light effect requirements and color requirements of each color block area. The light effect information can include light effect type information and light effect change information. The color information can include at least one of brightness information, color temperature information and hue information. Among them, the light effect type information can include one of a firelight effect, a paparazzi light effect and a faulty bulb. The light effect change information can include one or more combinations of light effect brightness, light effect color temperature, light effect running speed, light effect change speed, light effect stop time, etc., which are not limited in this embodiment.
[0127] It can be seen that the implementation of this optional embodiment can determine the target light source of each color block area according to the light source requirements, determine the light effect information and color information of each color block area according to the target light source, light effect requirements and color requirements of each color block area, and determine the regional color control parameters for each color block area according to the target light source, light effect information and color information of each color block area. This can accurately control the light source, light effect and color of the combination lamp, improve the control accuracy of the combination lamp, improve the control diversity of the combination lamp, thereby improving the accuracy of lighting illumination, and thereby improving the user experience.
[0128] Embodiment 2
[0129] See also Figure 2 , Figure 2 1 is a flow chart of an operation control method of a combined lamp disclosed in an embodiment of the present invention. Figure 2 The described method for operating and controlling a modular lamp can be applied to an operating and controlling device for a modular lamp, wherein the operating and controlling device for a modular lamp may include any one of a user device, an intelligent server, or an intelligent platform for controlling the modular lamp, wherein the user device includes but is not limited to at least one of a smart phone (Android phone, iOS phone, etc.), a tablet computer, etc., and the intelligent server includes a local server or a cloud server, which is not limited in the embodiments of the present invention. Figure 2 As shown, the operation control method of the combined lamp may include the following operations:
[0130] 201. Receive a lamp access signal of a modular lamp, and determine lamp access information of the modular lamp according to the lamp access signal.
[0131] 202. When the lamp quantity information indicates that the combined lamp includes at least two sub-lamps, determine a lamp identification of each sub-lamps.
[0132] In an embodiment of the present invention, optionally, the lamp identifier can represent a unique identification identifier of the sub-lamp. When the lamp quantity information indicates that the combination lamp includes at least two sub-lamp components, the sub-lamp can be identified by the lamp identifier of each sub-lamp and relevant information of the sub-lamp can be obtained, such as at least one of the type of the sub-lamp, lighting parameters, number of lamp beads, etc., which is not limited in this embodiment.
[0133] 203. Detect splicing information of a lamp splicing point on each sub-lamp, where the lamp splicing point is used to splice the sub-lamp with other sub-lamp, and each sub-lamp includes at least one lamp splicing point.
[0134] In the embodiment of the present invention, optionally, the lamp splicing point can be used to splice the sub-lamp with other sub-lamp, and the splicing method between the sub-lamp may include at least one of a bolt splicing method, a plug-in method, a snap-on splicing method, a lock splicing method and a bonding method, etc. The lamp splicing point can transmit electrical signals. When sub-lamp A is spliced with sub-lamp B, the lamp splicing point A on sub-lamp A is connected to the lamp splicing point B on sub-lamp B. When the combined lamp is powered on, the lamp splicing point A is also powered on and connected to the lamp splicing point B, and then the electrical signals can be transmitted through the lamp splicing points A and B. Each sub-lamp may include at least one lamp splicing point, and the splicing information may include connection information of each lamp splicing point on the sub-lamp.
[0135] 204. Determine a relative position parameter of each sub-lamp according to the splicing information of each lamp splicing point on each sub-lamp and the lamp identification of each sub-lamp.
[0136] In an embodiment of the present invention, optionally, the relative position parameters of each sub-lamp can be determined based on the splicing information of each luminaire splicing point on each sub-lamp and the luminaire identification of each sub-lamp. Specifically, a sub-lamp in the combined luminaire can be used as a reference luminaire, and the relative position parameters of each sub-lamp relative to the reference luminaire can be determined based on the splicing information of each luminaire splicing point on each sub-lamp and the luminaire identification of each sub-lamp. The relative position parameters may include coordinate parameters, which are not limited by the present invention.
[0137] 205. Determine the lamp splicing method of the combined lamp according to the relative position parameters of each sub-lamp.
[0138] In the embodiment of the present invention, optionally, the overall shape parameters of the combined lamp formed by splicing each sub-lamp can be determined according to the relative position parameters of each sub-lamp, and then the lamp splicing method of the combined lamp can be obtained. The lamp splicing method of the combined lamp can include the relative position parameters of each sub-lamp in the combined lamp and the overall shape parameters of the combined lamp, which is not limited by the present invention.
[0139] 206. Obtain scene lighting fixture requirements for usage scenarios corresponding to the combined lighting fixture, and generate lighting fixture control parameters for the combined lighting fixture according to the lighting fixture splicing method and the scene lighting fixture requirements.
[0140] In the embodiment of the present invention, for other descriptions of step 201 and step 206, please refer to the detailed description of step 101 and step 103 in the first embodiment of the present invention, and the embodiment of the present invention will not be repeated.
[0141] It can be seen that implementation Figure 2 The described operation control method of the combined lamp is capable of receiving a lamp access signal of the combined lamp, and determining the lamp access information of the combined lamp according to the lamp access signal, and when the lamp quantity information indicates that the combined lamp includes at least two sub-lamp fixtures, determining the lamp identification of each sub-lamp fixture, detecting the splicing information of the lamp splicing point on each sub-lamp fixture, the lamp splicing point being used to splice the sub-lamp fixture with other sub-lamp fixtures, each sub-lamp fixture including at least one lamp splicing point, and determining each lamp splicing point according to the splicing information of each lamp splicing point on each sub-lamp fixture and the lamp identification of each sub-lamp fixture. The relative position parameters of the sub-luminaires are used to determine the splicing method of the combined luminaires according to the relative position parameters of each sub-luminaire, thereby improving the accuracy of determining the splicing method of the combined luminaires, thereby improving the accuracy and convenience of controlling the combined luminaires, obtaining the scene luminaire requirements of the usage scenarios corresponding to the combined luminaires, and generating luminaire control parameters for the combined luminaires according to the splicing method of the luminaires and the scene luminaire requirements, which can improve the convenience and efficiency of the luminaire control operation, improve the accuracy of multi-lamp control, improve the accuracy of lighting irradiation, and thereby improve the user experience.
[0142] In an optional embodiment, when the lamp quantity information indicates that the combined lamp includes one sub-lamp, the scene lamp requirement includes a single lamp illumination distribution requirement and a single lamp color requirement;
[0143] According to the lighting splicing method and scene lighting requirements, generating lighting control parameters for combined lighting may include the following operations:
[0144] According to the single lamp illumination distribution requirements, select at least one target color block that needs to be lit in the sub-lamp;
[0145] Determine the target color block position parameters of each target color block, and determine the color control parameters of each target lamp bead in each target color block according to the target color block position parameters of each target color block and the color requirements of a single lamp, wherein each target color block includes at least one target lamp bead;
[0146] According to the target color block position parameter of each target color block and the color control parameter of each target lamp bead in each target color block, a lamp control parameter for the target lamp is generated.
[0147] In this optional embodiment, the sub-lamp can be optionally divided into multiple color block areas, and the size of each color block area can be the same or different. When the lamp quantity information indicates that the combination lamp includes a sub-lamp, the scene lamp requirement can include a single lamp lighting distribution requirement and a single lamp color requirement. According to the single lamp lighting distribution requirement, at least one target color block to be illuminated can be screened in the sub-lamp, that is, all color block areas in the sub-lamp can be illuminated, or only part of the color block areas in the sub-lamp can be illuminated, which is not limited in this embodiment.
[0148] In this optional embodiment, optionally, the target color block position parameters of each target color block can be determined, and then the color control parameters for each target lamp bead in each target color block can be determined based on the target color block position parameters of each target color block and the color requirements of a single lamp. Each target color block includes at least one target lamp bead, that is, the working colors of the target lamp beads in the same target color block can be the same or different. The lamp control parameters for the target lamp can be generated based on the target color block position parameters of each target color block and the color control parameters for each target lamp bead in each target color block. This embodiment is not limited to this.
[0149] It can be seen that the implementation of this optional embodiment can screen at least one target color block that needs to be lit in the sub-lamp according to the single lamp illumination distribution requirement, determine the target color block position parameters of each target color block, and determine the color control parameters of each target lamp bead in each target color block according to the target color block position parameters of each target color block and the single lamp color requirement. According to the target color block position parameters of each target color block and the color control parameters of each target lamp bead in each target color block, the lamp control parameters for the target lamp are generated, and when the combination lamp includes a sub-lamp, the color blocks and the lamp in the sub-lamp can be precisely controlled, thereby improving the control efficiency and accuracy of the combination lamp, thereby improving the accuracy of the lighting illumination, and thereby improving the user experience.
[0150] Embodiment 3
[0151] See also Figure 3 , Figure 3 : is a schematic diagram of the structure of an operation control device for a combined lamp disclosed in an embodiment of the present invention. Figure 3 The described combined lamp operation control device may include any one of a user device, an intelligent server or an intelligent platform for controlling the combined lamp, the user device includes but is not limited to at least one of a smart phone (Android phone, iOS phone, etc.), a tablet computer, etc., and the intelligent server includes a local server or a cloud server, which is not limited in the embodiment of the present invention. Figure 3 As shown, the operating control device of the combined lamp may include:
[0152] The receiving module 301 is used to receive a lamp access signal of the combined lamp, and determine the lamp access information of the combined lamp according to the lamp access signal, where the lamp access information includes the lamp quantity information;
[0153] The detection module 302 is used to detect the lamp splicing mode of the combined lamp according to the lamp quantity information;
[0154] The acquisition module 303 is used to acquire the scene lamp requirements of the usage scene corresponding to the combined lamp, and generate lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements.
[0155] It can be seen that the implementation Figure 3 The described operation control device of the combined lamp can receive the lamp access signal of the combined lamp, and determine the lamp access information of the combined lamp according to the lamp access signal, detect the lamp splicing method of the combined lamp according to the lamp quantity information, obtain the scene lamp requirements of the usage scenario corresponding to the combined lamp, and generate lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements, which can improve the convenience and efficiency of the control operation of the lamp, improve the accuracy of multi-lamp control, improve the accuracy of lighting illumination, and thus improve the user experience.
[0156] In an optional embodiment, if Figure 3 As shown, the specific method of the detection module 302 detecting the lamp splicing method of the combined lamp according to the lamp quantity information includes:
[0157] When the lamp quantity information indicates that the combined lamp includes at least two sub-lamp fixtures, determining the lamp identification of each sub-lamp fixture;
[0158] Detecting the splicing information of the lamp splicing points on each sub-lamp, where the lamp splicing points are used to splice the sub-lamp with other sub-lamp, and each sub-lamp includes at least one lamp splicing point;
[0159] Determine the relative position parameters of each sub-luminaire according to the splicing information of each luminaire splicing point on each sub-luminaire and the luminaire identification of each sub-luminaire;
[0160] The lamp splicing method of the combined lamp is determined according to the relative position parameters of each sub-lamp.
[0161] It can be seen that implementation Figure 3 The described combined lamp operation control device is capable of receiving a lamp access signal of the combined lamp, and determining the lamp access information of the combined lamp according to the lamp access signal, and when the lamp quantity information indicates that the combined lamp includes at least two sub-lamps, determining the lamp identification of each sub-lamp, detecting the splicing information of the lamp splicing point on each sub-lamp, the lamp splicing point is used to splice the sub-lamp with other sub-lamps, each sub-lamp includes at least one lamp splicing point, and determining each according to the splicing information of each lamp splicing point on each sub-lamp and the lamp identification of each sub-lamp. The relative position parameters of the sub-luminaires are used to determine the splicing method of the combined luminaires according to the relative position parameters of each sub-luminaire, thereby improving the accuracy of determining the splicing method of the combined luminaires, thereby improving the accuracy and convenience of controlling the combined luminaires, obtaining the scene luminaire requirements of the usage scenarios corresponding to the combined luminaires, and generating luminaire control parameters for the combined luminaires according to the splicing method of the luminaires and the scene luminaire requirements, which can improve the convenience and efficiency of the luminaire control operation, improve the accuracy of multi-lamp control, improve the accuracy of lighting irradiation, and thereby improve the user experience.
[0162] In another optional embodiment, Figure 3 As shown, the scene lighting requirements include scene light and shadow angle requirements and scene lighting color requirements, and the lighting control parameters include lighting response sequence control parameters and color control parameters;
[0163] The specific method of the acquisition module 303 generating the lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements includes:
[0164] Determine the lighting logic of the combined lamps according to the lamp splicing method and the scene light and shadow angle requirements, and generate the lamp response sequence control parameters for the combined lamps according to the lamp lighting logic;
[0165] Generate color control parameters for combined lamps based on scene lighting color requirements.
[0166] It can be seen that implementation Figure 3The described combined lamp operation control device can determine the lamp lighting logic corresponding to the combined lamp according to the lamp splicing method and the scene light and shadow angle requirements, and generate lamp response sequence control parameters for the combined lamp according to the lamp lighting logic, and generate color control parameters for the combined lamp according to the scene lighting color requirements. It can determine the lamp corresponding sequence control parameters and color control parameters for the combined lamp, improve the control operation convenience and control efficiency of the combined lamp, improve the accuracy of multi-lamp control, improve the accuracy of lighting irradiation, and thus improve the user experience.
[0167] In yet another optional embodiment, Figure 3 As shown, the specific method of obtaining module 303 to determine the lighting logic of the lamp corresponding to the combined lamp according to the lamp splicing method and the scene light and shadow angle requirements includes:
[0168] According to the lamp splicing method, at least one lighting logic matching the lamp splicing method is selected from a preset lamp lighting logic database;
[0169] Determine the target lighting logic in each lighting logic according to the scene light and shadow angle requirements;
[0170] Receive the lighting logic adjustment instruction input by the user, and determine the lighting logic of the lamp corresponding to the combined lamp according to the lighting logic adjustment instruction and the target lighting logic.
[0171] It can be seen that implementation Figure 3 The described operation control device of the combination lamp can screen at least one lighting logic that matches the lamp splicing method in a preset lamp lighting logic database according to the lamp splicing method, determine the target lighting logic in each lighting logic according to the scene light and shadow angle requirements, receive the lighting logic adjustment instructions input by the user, and determine the lamp lighting logic corresponding to the combination lamp according to the lighting logic adjustment instructions and the target lighting logic, which can improve the accuracy and reliability of the determined lamp lighting logic, thereby improving the control efficiency and accuracy of the combination lamp.
[0172] In yet another optional embodiment, Figure 3 As shown, each sub-lamp includes at least one lamp color block, and the scene lighting color requirement includes the scene lighting distribution requirement and the lighting color requirement;
[0173] The specific method of the acquisition module 303 generating the color control parameters for the combined lamp according to the scene lighting color requirements includes:
[0174] Determine the color block position parameter of each color block of each lamp in each sub-lamp according to the relative position parameter of each sub-lamp;
[0175] Determine at least one color block area of the target lamp according to the scene illumination distribution requirement and the color block position parameters of each lamp color block, each color block area includes a pure color block area and / or a gradient color block area;
[0176] According to the lighting color requirement, the regional color control parameters for each color block area are determined, and according to the regional color control parameters for each color block area, the color control parameters for the combined lamp are generated.
[0177] It can be seen that implementation Figure 3 The described operation control device of the combined lamp can determine the color block position parameters of each lamp color block in each sub-lamp according to the relative position parameters of each sub-lamp, determine at least one color block area of the target lamp according to the scene lighting distribution requirements and the color block position parameters of each lamp color block, determine the regional color control parameters for each color block area according to the lighting color requirements, and generate the color control parameters for the combined lamp according to the regional color control parameters of each color block area. The regional color control parameters of each color block area in the sub-lamp can be determined, and then the color control parameters of the combined lamp can be determined, thereby improving the accuracy of color control of the combined lamp, improving the degree of diversification of color control of the combined lamp, thereby improving the accuracy of lighting irradiation, and thereby improving the user experience.
[0178] In yet another optional embodiment, Figure 3 As shown, lighting color requirements include light source requirements, lighting effect requirements and color requirements;
[0179] The specific method in which the acquisition module 303 determines the regional color control parameters for each color block area according to the illumination color requirement includes:
[0180] According to the light source requirements, determine the target light source for each color block area, the target light source includes tungsten light source, incandescent light source or halogen light source;
[0181] Determine light effect information and color information of each color block area according to the target light source, light effect requirement and color requirement of each color block area, where the light effect information includes light effect type information and light effect change information, and the color information includes at least one of brightness information, color temperature information and hue information;
[0182] According to the target light source, light effect information and color information of each color block area, the regional color control parameters for each color block area are determined.
[0183] It can be seen that implementation Figure 3The operating control device of the described combination lamp can determine the target light source of each color block area according to the light source requirement, determine the light effect information and color information of each color block area according to the target light source, light effect requirement and color requirement of each color block area, and determine the regional color control parameters for each color block area according to the target light source, light effect information and color information of each color block area. It can accurately control the light source, light effect and color of the combination lamp, improve the control accuracy of the combination lamp, improve the control diversity of the combination lamp, thereby improving the accuracy of lighting irradiation, and thereby improving the user experience.
[0184] In yet another optional embodiment, Figure 3 As shown, when the lamp quantity information indicates that the combined lamp includes one sub-lamp, the scene lamp requirement includes a single lamp illumination distribution requirement and a single lamp color requirement;
[0185] The acquisition module 303 generates the lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements. The specific methods include:
[0186] According to the single lamp illumination distribution requirements, select at least one target color block that needs to be lit in the sub-lamp;
[0187] Determine the target color block position parameters of each target color block, and determine the color control parameters of each target lamp bead in each target color block according to the target color block position parameters of each target color block and the color requirements of a single lamp, wherein each target color block includes at least one target lamp bead;
[0188] According to the target color block position parameter of each target color block and the color control parameter of each target lamp bead in each target color block, a lamp control parameter for the target lamp is generated.
[0189] It can be seen that the implementation Figure 3 The described operation control device of the combined lamp can screen at least one target color block that needs to be lit in the sub-lamp according to the illumination distribution requirement of a single lamp, determine the target color block position parameters of each target color block, and determine the color control parameters of each target lamp bead in each target color block according to the target color block position parameters of each target color block and the color requirement of the single lamp. According to the target color block position parameters of each target color block and the color control parameters of each target lamp bead in each target color block, the lamp control parameters for the target lamp are generated. When the combined lamp includes a sub-lamp, the color blocks and the lamp in the sub-lamp can be precisely controlled, thereby improving the control efficiency and accuracy of the combined lamp, thereby improving the accuracy of the lighting illumination, and thereby improving the user experience.
[0190] Embodiment 4
[0191] See also Figure 4 , Figure 4 FIG. 1 is a schematic diagram of the structure of another operation control device of a combined lamp disclosed in an embodiment of the present invention. Figure 4 As shown, the operating control device of the combined lamp may include:
[0192] A memory 401 storing executable program codes;
[0193] a processor 402 coupled to the memory 401;
[0194] The processor 402 calls the executable program code stored in the memory 401 to execute the steps in the operation control method of the combined lamp described in the first embodiment of the present invention or the second embodiment of the present invention.
[0195] Embodiment 5
[0196] An embodiment of the present invention discloses a computer storage medium storing computer instructions. When the computer instructions are called, they are used to execute the steps in the operation control method of the combined lamp described in the first embodiment or the second embodiment of the present invention.
[0197] Embodiment 6
[0198] An embodiment of the present invention discloses a computer program product, which includes a non-transitory computer-readable storage medium storing a computer program, and the computer program is operable to enable a computer to execute the steps in the operation control method of the combined lamp described in the first or second embodiment.
[0199] The device embodiments described above are only illustrative, wherein the modules described as separate components may or may not be physically separated, and the components displayed as modules may or may not be physical modules, i.e., they may be located in one place, or they may be distributed on multiple network modules. Some or all of the modules may be selected according to actual needs to achieve the purpose of the scheme of this embodiment. Those of ordinary skill in the art may understand and implement it without creative work.
[0200] Through the specific description of the above embodiments, those skilled in the art can clearly understand that each implementation method can be implemented by means of software plus a necessary general hardware platform, and of course, it can also be implemented by hardware. Based on such an understanding, the above technical solution can be essentially or partly contributed to the prior art in the form of a software product, and the computer software product can be stored in a computer-readable storage medium, and the storage medium includes a read-only memory (ROM), a random access memory (RAM), a programmable read-only memory (PROM), an erasable programmable read-only memory (EPROM), a one-time programmable read-only memory (OTPROM), an electronically erasable rewritable read-only memory (EEPROM), a compact disc (CD-ROM) or other optical disc storage, magnetic disk storage, magnetic tape storage, or any other computer-readable medium that can be used to carry or store data.
[0201] Finally, it should be noted that the operation control method and device of a combined lamp disclosed in the embodiment of the present invention only discloses the preferred embodiment of the present invention, which is only used to illustrate the technical solution of the present invention, rather than to limit it. Although the present invention has been described in detail with reference to the aforementioned embodiments, it should be understood by those skilled in the art that the technical solutions described in the aforementioned embodiments can still be modified, or some of the technical features therein can be replaced by equivalents. However, these modifications or replacements do not deviate the essence of the corresponding technical solutions from the spirit and scope of the technical solutions of the various embodiments of the present invention.
Claims
1. An operation control method of a combined lamp, characterized in that: The method comprises: receiving a lamp access signal of a combined lamp, and determining lamp access information of the combined lamp according to the lamp access signal, wherein the lamp access information includes lamp quantity information; According to the lamp quantity information, detecting a lamp splicing mode of the combined lamp, wherein the lamp splicing mode includes relative position parameters of sub-lamps in the combined lamp; A scene lamp requirement of a usage scene corresponding to the combined lamp is obtained, and a lamp control parameter for the combined lamp is generated according to the lamp splicing method and the scene lamp requirement.
2. The operation control method of the combined lamp according to claim 1, characterized in that: The detecting, according to the lamp quantity information, the lamp splicing mode of the combined lamp comprises: When the lamp quantity information indicates that the combined lamp includes at least two sub-lamp fixtures, determining a lamp identifier of each of the sub-lamp fixtures; Detecting the splicing information of the lamp splicing points on each of the sub-lamp, the lamp splicing points are used to splice the sub-lamp with other sub-lamp, and each of the sub-lamp includes at least one of the lamp splicing points; Determine the relative position parameter of each sub-lamp according to the splicing information of each of the lamp splicing points on each of the sub-lamp and the lamp identification of each of the sub-lamp; The lamp splicing method of the combined lamp is determined according to the relative position parameters of each of the sub-lamp.
3. The operation control method of the combined lamp according to claim 1 or 2, characterized in that: The scene lamp requirements include scene light and shadow angle requirements and scene lighting color requirements, and the lamp control parameters include lamp response sequence control parameters and color control parameters; Generating a lamp control parameter for the combined lamp according to the lamp splicing mode and the scene lamp requirement includes: Determine the lighting logic of the combined lamps according to the lamp splicing mode and the scene light and shadow angle requirements, and generate a lamp response sequence control parameter for the combined lamps according to the lamp lighting logic; According to the scene lighting color requirement, a color control parameter for the combined lamp is generated.
4. The operation control method of the combined lamp according to claim 3, characterized in that: The step of determining the lighting logic of the lamp corresponding to the combined lamp according to the lamp splicing mode and the scene light and shadow angle requirements includes: According to the lamp splicing method, at least one lighting logic matching the lamp splicing method is selected from a preset lamp lighting logic database; Determining a target lighting logic in each lighting logic according to the scene light and shadow angle requirements; A lighting logic adjustment instruction input by a user is received, and according to the lighting logic adjustment instruction and the target lighting logic, a lamp lighting logic corresponding to the combined lamp is determined.
5. The operation control method of the combined lamp according to claim 3 or 4, characterized in that: Each of the sub-lamp includes at least one lamp color block, and the scene lighting color requirement includes a scene lighting distribution requirement and a lighting color requirement; The step of generating color control parameters for the combined lamp according to the scene illumination color requirement includes: Determine the color block position parameter of each of the lamp color blocks in each of the sub-lamp according to the relative position parameter of each of the sub-lamp; Determine at least one color block area of the target lamp according to the scene illumination distribution requirement and the color block position parameters of each of the lamp color blocks, each of the color block areas including a pure color block area and / or a gradient color block area; According to the illumination color requirement, a regional color control parameter for each of the color block areas is determined, and according to the regional color control parameter for each of the color block areas, a color control parameter for the combined lamp is generated.
6. The operation control method of the combined lamp according to claim 5, characterized in that: The lighting color requirements include light source requirements, lighting effect requirements and color requirements; The step of determining the regional color control parameter for each color block region according to the illumination color requirement includes: According to the light source requirement, determining a target light source for each color block area, wherein the target light source includes a tungsten light source, an incandescent light source, or a halogen light source; Determine light effect information and color information of each color block area according to the target light source of each color block area, the light effect requirement and the color requirement, wherein the light effect information includes light effect type information and light effect change information, and the color information includes at least one of brightness information, color temperature information and hue information; According to the target light source, the light effect information and the color information of each color block area, a regional color control parameter for each color block area is determined.
7. The operation control method of the combined lamp according to any one of claims 2, 4 and 6, characterized in that: When the lamp quantity information indicates that the combined lamp includes one sub-lamp, the scene lamp requirement includes a single lamp illumination distribution requirement and a single lamp color requirement; Generating a lamp control parameter for the combined lamp according to the lamp splicing mode and the scene lamp requirement includes: According to the single lamp illumination distribution requirement, selecting at least one target color block to be lit in the sub-lamp; Determine the target color block position parameters of each target color block, and determine the color control parameters for each target lamp bead in each target color block according to the target color block position parameters of each target color block and the single lamp color requirement, wherein each target color block includes at least one target lamp bead; According to the target color block position parameter of each target color block and the color control parameter of each target lamp bead in each target color block, a lamp control parameter for the target lamp is generated.
8. An operation control device for a combined lamp, characterized in that: The device comprises: A receiving module, used to receive a lamp access signal of a combined lamp, and determine lamp access information of the combined lamp according to the lamp access signal, wherein the lamp access information includes lamp quantity information; A detection module, used for detecting a lamp splicing mode of the combined lamp according to the lamp quantity information; The acquisition module is used to acquire the scene lamp requirements of the usage scene corresponding to the combined lamp, and generate lamp control parameters for the combined lamp according to the lamp splicing method and the scene lamp requirements.
9. An operation control device for a combined lamp, characterized in that: The device comprises: A memory storing executable program code; a processor coupled to the memory; The processor calls the executable program code stored in the memory to execute the operation control method of the combined lamp according to any one of claims 1 to 7.
10. A computer storage medium, characterized in that: The computer storage medium stores computer instructions, and when the computer instructions are called, they are used to execute the operation control method of the combined lamp according to any one of claims 1 to 7.