Controllable illuminant and dynamic video light performance system and method
By performing compressed data transmission on a single channel, the problem of wireless channel bandwidth limitation is solved, and real-time playback of high-resolution dynamic video of large-scale controllable luminous objects is achieved, thereby improving the display effect of dynamic video.
Patent Information
- Application Number
- CN202511075300.0
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-08-01
- Publication Date
- 2025-09-16
AI Technical Summary
Existing technologies are unable to achieve real-time playback of high-resolution dynamic videos of large-scale controllable luminous objects under the condition of limited wireless channel bandwidth, and are unable to realize lighting performances in the form of dynamic videos.
By performing compressed data transmission in a single channel and utilizing wireless communication between the lighting performance controller and the luminous controller, the data volume is compressed to improve data transmission efficiency and achieve real-time lighting control of controllable luminous objects.
It improves the data transmission volume in single-channel wireless communication, enables real-time lighting control of large-scale controllable luminous objects, and improves the image display resolution and dynamic display effect of dynamic video.
Smart Images

Figure CN120659196A_ABST
Abstract
Description
Technical Field
[0001] The present application relates to the field of light source control technology, and in particular to a controllable luminous object, dynamic video lighting performance system and method. Background Art
[0002] At present, controllable luminous objects, such as glow sticks, have been widely used in a variety of large venues, smart buildings, home homes and other scenarios. For example, at concerts, competitions, etc., each audience member can bring a controllable luminous object, and controllable luminous objects can be installed on the exterior walls of high-rise buildings, etc., in the hope of completing lighting performances to create an atmosphere, express and stimulate emotions, etc.
[0003] However, due to channel bandwidth limitations, it is currently impossible to achieve dynamic video light performances when performing wireless real-time lighting control of controllable luminous objects. This type of light performance uses continuously changing image sequences to simulate motion visual effects, for example, a video consisting of continuous playback of more than 20 frames per second.
[0004] Due to the limitation of wireless channel bandwidth, current support solutions cannot achieve real-time playback of high-resolution videos. Common methods include: Performing partitioned control on controllable luminous objects to reduce the number of simultaneous controls on a single channel in order to overcome channel bandwidth limitations. Therefore, it is not possible to control a large number (e.g., thousands or more) of controllable luminous objects on a single channel at this time. For each scene (or lighting scheme, for example), grouping information for controllable light objects is pre-stored, along with preset lighting schemes. For example, text and patterns are grouped as foreground, while background elements are grouped as background, with control performed on a group-by-group basis. Pre-set scenes or lighting schemes are then called upon to control the display based on specific needs. However, the need to pre-store grouping information makes it impossible to change it in real-time based on site needs. While it is possible to utilize idle wireless bandwidth to transmit the information needed to change settings, this idle bandwidth is often not fixed or can't be allocated in real-time, making it impossible to respond to site changes and play video in real time.
[0005] Moreover, after grouping, the number of controlled luminous objects in each group is still very limited, and the display resolution is insufficient, making it impossible to achieve real-time playback of high-resolution videos. Summary of the Invention
[0006] In view of this, embodiments of the present application provide a controllable luminous object, a dynamic video lighting performance system, and a method for dynamic video lighting performance to solve at least one problem existing in the background technology.
[0007] In a first aspect, an embodiment of the present application provides a controllable luminous object for a dynamic video light show, the controllable luminous object comprising: a housing and a light-emitting component disposed within the housing; The light emitting assembly includes one or more controllable light emitting modules and a light emitting controller; The lighting controller is connected to the controllable lighting module and is configured to, in response to receiving compressed data sent by the lighting show controller through at least a single channel, decompress the compressed data to obtain display information of the controllable lighting object, and control the controllable lighting module to generate a lighting display state corresponding to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
[0008] In conjunction with the first aspect, in an optional implementation, The housing is provided with at least a mode switching switch, which is connected to the light controller and is used to switch the working mode of the controllable light-emitting object; And / or, the shape of the controllable luminous object includes at least one of the following: rod-shaped, ring-shaped.
[0009] In conjunction with the first aspect, in an optional implementation, The operating mode of the controllable luminous object includes at least one of the following: group control mode, single control mode, automatic control mode, sleep mode, and off mode; And / or, the mode switching switch includes at least one of the following: a push button switch, a knob switch, a start button, a toggle switch, a micro switch, a membrane switch, a touch switch set at a predetermined position on the touch screen, and a switch with an induction function.
[0010] In conjunction with the first aspect, in an optional implementation, A power supply module is also provided in the housing of the controllable luminous object for providing power supply; And / or, the light display state includes at least one of the following: a switch physical state, a dynamic change state, and a color state.
[0011] In conjunction with the first aspect, in an optional implementation, The wireless communication connection between the controllable luminous object and the light show controller includes at least one of the following: Bluetooth connection, WIFI connection, ZigBee connection; Wherein, the lighting show controller includes at least one of the following: serving as a master device in a wireless communication network; serving as a relay node in a wireless communication network.
[0012] In a second aspect, an embodiment of the present application provides a dynamic video lighting performance system, the dynamic video lighting performance system comprising: One or more groups of controllable luminous objects, each group of controllable luminous objects comprising a plurality of controllable luminous objects for dynamic video lighting performances as described in the first aspect; a lighting show controller wirelessly connected to each of the one or more groups of controllable light objects via at least a single channel, for simultaneously sending compressed data to each controllable light object to provide real-time lighting control of each controllable light object to achieve a dynamic video lighting show; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.
[0013] In conjunction with the second aspect, in an optional implementation, The light show controller uses single-channel wireless communication to connect one or more groups of controllable light-emitting objects.
[0014] In a third aspect, an embodiment of the present application provides a dynamic video light performance method, the dynamic video light performance method comprising: The controllable light object, in response to receiving compressed data sent by the light show controller through at least a single channel, decompresses the compressed data to obtain display information of the controllable light object; The controllable luminous object generates a light display state corresponding to the display information according to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
[0015] In a fourth aspect, an embodiment of the present application provides a dynamic video light performance method, the dynamic video light performance method comprising: The lighting show controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; The light show controller sends the compressed data to each controllable light object simultaneously through at least a single channel, so as to control the light display state of each controllable light object in real time and complete the light show of the dynamic video; The compressed data is obtained by compressing the light data containing the display information of each controllable light-emitting object, so that the controllable light-emitting object can obtain the display information corresponding to its light display state by decompressing the compressed data.
[0016] In a fifth aspect, an embodiment of the present application provides a dynamic video light performance method, the dynamic video light performance method comprising: The lighting show controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; The light show controller simultaneously sends the compressed data to each controllable light object through at least a single channel, so as to control the light display state of each controllable light object in real time; In response to receiving the compressed data, the controllable light object decompresses the compressed data to obtain display information of the controllable light object; and generates a light display state corresponding to the display information according to the display information, so as to participate in completing the light show of the dynamic video; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.
[0017] The technical solutions provided by the embodiments of the present application provide the following beneficial effects: by transmitting compressed data between the lighting performance controller and the lighting controller over at least a single channel, the amount of compressed data is significantly reduced compared to the original lighting data containing display information of all controllable luminous objects, thereby greatly increasing the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication. Consequently, for each frame of an image, the number of controllable luminous objects that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable luminous objects, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters, and improving the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can also be significantly increased, thereby enhancing dynamic display effects and enabling dynamic video lighting performances containing multiple display elements.
[0018] Additional aspects and advantages of the embodiments of the present application will be given in part in the description below, and in part will become apparent from the description below, or will be learned through practice of the embodiments of the present application. BRIEF DESCRIPTION OF THE DRAWINGS
[0019] The drawings described herein are used to provide a further understanding of the present application and constitute a part of the present application. The drawings are not necessarily drawn to scale, and local features may be enlarged or reduced to more clearly show the details of the local features. The illustrative embodiments of the present application and their descriptions are used to explain the present application and do not constitute an improper limitation of the present application. In the drawings: Figure 1 A schematic diagram showing a specific example of the scale of a single display element; Figure 2 This is a schematic structural diagram of a specific example of a controllable luminous object for dynamic video lighting performances in an embodiment of the present application; Figure 3 This is a schematic diagram of a principle block diagram of a specific example of a dynamic video lighting performance system in an embodiment of the present application; Figure 4 This is a schematic diagram of a specific example of grouping of controllable light-emitting objects in an embodiment of the present application; Figure 5 This is a schematic diagram of another specific example of grouping of controllable light-emitting objects in an embodiment of the present application; Figure 6 This is a schematic structural diagram of another specific example of a controllable luminous object for dynamic video lighting performances in an embodiment of the present application; Figure 7 This is a flow chart of Example 1 of the dynamic video lighting performance method in an embodiment of the present application; Figure 8 This is a flow chart of Example 2 of the dynamic video lighting performance method in an embodiment of the present application; Figure 9 This is a flow chart of Example 3 of the dynamic video lighting performance method in an embodiment of the present application; Figure 10 This is a schematic diagram of a principle block diagram of a specific example of a light emitting control device in an embodiment of the present application; Figure 11 This is a schematic diagram of a principle block diagram of a specific example of a lighting performance control device in an embodiment of the present application; Figure 12 This is a schematic diagram of a principle block diagram of a specific example of an electronic device in an embodiment of the present application.
[0020] Reference numerals: 100. Display element; 10. Controllable luminous object; 201. Housing; 202. Light-emitting component; 203. Controllable luminous module; 204. Lighting controller; 205. Mode switching switch; 501. Controllable luminous object group; 502. Lighting performance controller; 601. First processing module; 602. Second processing module; 701. Third processing module; 702. Fourth processing module. DETAILED DESCRIPTION
[0021] To make the technical solutions and beneficial effects of this application more clearly understood, the following detailed description is given by way of specific embodiments. The accompanying drawings are not necessarily drawn to scale, and local features may be enlarged or reduced to more clearly illustrate the details of the local features. Unless otherwise defined, the technical and scientific terms used herein have the same meanings as those in the technical field to which this application belongs.
[0022] The embodiments of the present application are not exhaustive, but are merely illustrative of some embodiments and are not intended to be a specific limitation on the scope of protection of the present application. In the absence of contradiction, each step in a certain embodiment can be implemented as an independent embodiment, and the steps can be arbitrarily combined. For example, a solution after removing some steps in a certain embodiment can also be implemented as an independent embodiment, and the order of the steps in a certain embodiment can be arbitrarily exchanged. In addition, the optional implementations in a certain embodiment can be arbitrarily combined; in addition, the embodiments can be arbitrarily combined. For example, some or all of the steps in different embodiments can be arbitrarily combined, and a certain embodiment can be arbitrarily combined with the optional implementations of other embodiments.
[0023] In each embodiment of the present application, unless otherwise specified or there is any logical conflict, the terms and / or descriptions between the embodiments are consistent and can be referenced by each other. The technical features in different embodiments can be combined to form a new embodiment based on their inherent logical relationships.
[0024] The terms used in the embodiments of the present application are only for the purpose of describing specific embodiments and are not intended to limit the present application.
[0025] In the embodiments of the present application, unless otherwise specified, elements expressed in the singular, such as "a", "an", "the", "above", "said", "the", "the", etc., can mean "one and only one", or "one or more", "at least one", etc. For example, when using articles such as "a", "an", "the" in English in translation, the noun following the article can be understood as a singular expression or a plural expression.
[0026] In the embodiments of the present application, “plurality” may refer to two or more.
[0027] In some embodiments, terms such as "at least one (or at least one, at least one item, at least one)", "one or more", "a plurality" and the like can be used interchangeably.
[0028] The prefixes such as "first" and "second" in the embodiments of the present application are only used to distinguish different description objects and do not constitute any restriction on the position, order, priority, numerical value or content of the description objects. For the statement of the description objects, please refer to the description of the context in the embodiments, and no unnecessary restriction should be constituted due to the use of prefixes. For example, the numerical value of the description object is not limited by the ordinal number and can be one or more. Taking "first device" as an example, the numerical value of "device" can be one or more. In addition, the objects modified by different prefixes can be the same or different. For example, if the description object is "device", then "first device" and "second device" can be the same device or different devices, and their types can be the same or different.
[0029] In some embodiments, the term "connection" may indicate the transmission of electrical signals or data between a connected end and a connected end, and may be understood as "electrical connection," "communication connection," etc. A "connection" may be a direct connection between two components, an indirect connection established through other components, internal connectivity between two components, or any other possible connection form.
[0030] This specification provides method steps such as those in the embodiments or flowcharts, but more or fewer steps may be included based on routine or non-inventive work. The order of steps listed in the embodiments is merely one of many possible execution sequences and does not represent the only execution sequence. When implemented in an actual device, system, or server product, the methods may be executed sequentially according to the embodiments or the accompanying drawings, or in parallel (e.g., in a parallel processor or multi-threaded processing environment).
[0031] During the implementation of this application, the inventors discovered that there are at least the following problems in the related art: Generally speaking, controllable light-emitting objects can be controlled by wireless communication to emit light in different groups, colors, and at different times. This type of light control method can generally be divided into real-time control and non-real-time control methods.
[0032] Non-real-time control methods often require configuring a controllable light source with a predetermined lighting pattern before it can illuminate according to the predetermined lighting pattern. These predetermined lighting patterns can include settings for different groups, colors, and timings, corresponding to different scenarios. For example, scenario 1 uses a controllable light source to display the text "Come on" with a blue background in the foreground, while scenario 2 uses a partitioned display, with the text "Come on" displayed in each partition with a blue background. For example, a color sequence can be pre-set for the controllable light source, and the light source can simply illuminate according to this color sequence; alternatively, the display can be controlled based on predetermined groups. Therefore, this non-real-time control method cannot provide real-time response on-site. While in some cases, the configuration of the predetermined lighting pattern can be updated or modified to allow the controllable light source to temporarily change its lighting pattern on-site, such temporary changes in lighting patterns do not provide real-time response.
[0033] Real-time control typically allows for real-time lighting control of controllable luminous objects, enabling them to respond in real time. For example, the controllable luminous object acquires lighting data in real time and then changes its lighting state based on that data. Therefore, compared to non-real-time control, real-time control offers better real-time response.
[0034] However, due to limited channel bandwidth and the limited amount of data that can be transmitted, wireless real-time lighting control cannot achieve high-resolution dynamic video display of simultaneous lighting control of a large number of controllable light-emitting objects.
[0035] In some examples, each seat in a large venue is regarded as a pixel, and each seat is provided with a controllable light source. Figure 1A schematic diagram illustrates a specific example of the scale of a single display element. As shown, a single display element 100 typically requires at least 16×16 pixels to display a relatively complex image discernible to the human eye, such as a region within an image, a letter, or a Chinese character. Therefore, when wireless communication is used to achieve real-time lighting control of a controllable light source 10, the 144 Mbps rate provided by a single 20 MHz bandwidth channel in the 2.4 GHz band is sufficient to transmit only the lighting data for the original video coordinate position of a single display element, assuming 20 frames per second. For example, 16×16 = 256 pixels, and the color display of each pixel typically requires 24 bits of lighting data to control. For example, for continuous playback of a dynamic video at 20 frames per second, a transmission rate of 20×256×24 = 122,880 bps is required. Compared to the 144 Mbps rate in a 20 MHz bandwidth, this means that only approximately 20 frames per second of continuous playback of a single display element 100 can be displayed.
[0036] However, in order to display a complete image or dozens of letters or Chinese characters in each frame, multiple display elements 100 must be displayed simultaneously, which is difficult to achieve when the channel bandwidth is limited. Furthermore, when the channel bandwidth is limited, it is also very difficult to increase the number of frames that can be transmitted per second.
[0037] Therefore, it is currently impossible to perform simultaneous real-time lighting control on a large number of controllable luminous objects under limited channel bandwidth (such as within a single channel) to achieve lighting performances of dynamic videos including multiple display elements, such as real-time controlled lighting performances of dynamic videos of people, lighting performances of dynamic subtitles containing more than a dozen words, etc.
[0038] In the embodiments of the present application, controllable luminous objects may include, but are not limited to, luminous cheering objects and lamps. Luminous cheering objects may include, but are not limited to, light signs, glow sticks, luminous bracelets, luminous armbands, light headwear, and light clothing. Controllable luminous objects may include, but are not limited to, electroluminescent light sources, such as semiconductor light emitting diodes (LEDs).
[0039] To this end, an embodiment of the present application provides a controllable luminous object for dynamic video lighting performances, which is applied to the support solution of the present application and can realize dynamic video lighting performances under real-time control. Figure 2 The following is a schematic diagram showing a specific example of a controllable luminous object for dynamic video light performances according to an embodiment of the present application. As shown in the figure, the controllable luminous object 10 includes: a housing 201 and a light emitting component 202 disposed within the housing 201; The light emitting assembly 202 includes one or more controllable light emitting modules and a light emitting controller; The light controller 204 is connected to the controllable light module 203 and is configured to, in response to receiving compressed data sent by the light show controller through at least a single channel, decompress the compressed data to obtain display information of the controllable light object 10, and control the controllable light module 203 to generate a light display state corresponding to the display information; Among them, the controllable light-emitting object 10 is any one of a plurality of controllable light-emitting objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video when the light show controller controls each controllable light-emitting object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable light-emitting object.
[0040] Thus, the support scheme of the present application transmits compressed data between the lighting performance controller and the lighting controller over at least a single channel. This transmission can be point-to-point. Since the compressed data is significantly smaller than the original lighting data containing display information for all controllable light-emitting objects, the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication is greatly increased. Consequently, for each frame of image, the number of controllable light-emitting objects that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable light-emitting objects, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters. This also improves the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can be significantly increased, thereby enhancing dynamic display effects and enabling dynamic video lighting performances containing multiple display elements.
[0041] In the supporting solution of the present application, for example, the large-scale number of controllable light-emitting objects can be 2,000, 4,000, 10,000 or more, and so on.
[0042] In the embodiments of the present application, those skilled in the art should understand that "simultaneously", "real-time", etc. can be understood as two or more events occurring within a tolerable time deviation. The setting of the tolerable time deviation can be set according to actual needs. "Simultaneously" and "not simultaneously", "real-time" and "non-real-time" are relative values, and are not limited to absolute values. For example, it can be set with reference to the reaction time of the human eye to changes in light brightness. When the tolerable time deviation is less than 40ms, the time interval between the lighting action of one controllable light-emitting object and the lighting action of another controllable light-emitting object is within 40ms, then the two controllable light-emitting objects can be considered to be controlled simultaneously.
[0043] In embodiments of the present application, the lighting data can be data representing each coordinate position in the original video and can include color information, such as pixel data. Pixel data refers to the information set representing the smallest processable unit of an image and can include parameters such as pixel location coordinates and color attributes (color information). It is a digital representation of image information. Compressed data can be obtained by compressing the lighting data in the original video. The controllable light-emitting object can obtain its own display information by decompressing this compressed data. Therefore, the lighting display state of each controllable light-emitting object can be directly controlled in real time, directly displaying the color information at each coordinate position in the dynamic video. That is, each controllable light-emitting object can correspond to a coordinate position in the video. Consequently, regardless of changes in the number or grouping of controllable light-emitting objects, the lighting performance of the dynamic video can be displayed on the controlled light-emitting objects to adapt to these changes. For example, as the number of controllable light-emitting objects increases and the area they form expands, a zoomed-in dynamic video lighting performance can be displayed. From this, it can be seen that compared with related technologies, such as non-real-time control methods, each scene switching requires the configuration of each controllable light-emitting object in advance according to the scene requirements, such as configuring the grouping of each controllable light-emitting object, etc., and then each controllable light-emitting object can display the required scene. Therefore, the related technology does not have the ability to respond to on-site changes in real time to display real-time playback of high-resolution video.
[0044] In an optional embodiment, the housing 201 is provided with at least a mode switching switch 205 , which is connected to the light controller 204 and is used to switch the working mode of the controllable light-emitting object 10 .
[0045] In an optional embodiment, the operating mode of the controllable light-emitting object 10 includes at least one of the following: group control mode, single control mode, automatic control mode, sleep mode, and off mode.
[0046] In an embodiment of the present application, in group control mode, the controllable light-emitting object 10 can be wirelessly connected to the lighting performance controller and participate in completing a lighting performance of a dynamic video containing multiple display elements under the real-time lighting control of the lighting performance controller, especially under single-channel real-time lighting control.
[0047] In single-control mode, the controllable light-emitting object 10 can be wirelessly connected to a device with wireless communication function, such as a mobile phone, computer, smart speaker, smart TV, car terminal, etc., and display the light display status under the control of the device.
[0048] In the self-control mode, the controllable light-emitting object 10 can light up or turn off the controllable light-emitting module 203 by itself, or can execute a program pre-stored in the light controller 204 to display the light display state of the controllable light-emitting module 203 .
[0049] In the sleep mode, the controllable light-emitting object 10 can be powered normally and can be in a standby state.
[0050] In the off mode, the controllable light-emitting module 203 of the controllable light-emitting object 10 can be turned off, the wireless communication connection with the light show controller can be disconnected, and the power can be turned off.
[0051] In an optional embodiment, the mode switch 205 is at least used to disconnect the wireless communication connection with the lighting show controller.
[0052] In this way, by setting the mode switching switch 205, the working mode of the controllable light-emitting object can be switched, so that when the real-time light control through the light performance controller is not needed, the wireless communication connection with the light performance controller can be disconnected, so that the controllable light-emitting object can be adapted to a variety of usage scenarios, expand the scope of application, and improve the user experience.
[0053] In some possible implementations, the mode switching switch 205 includes at least one of the following: a push button switch; a knob switch; a start button; a toggle switch; a micro switch; a membrane switch; a touch switch set at a predetermined position on the touch screen; or a switch with a sensing function.
[0054] In some examples, a power module is further provided in the housing of the controllable light-emitting object for providing power supply. For example, a battery may be placed in the housing.
[0055] In the embodiment of the present application, a wireless communication connection between the controllable light-emitting object 10 and the light show controller can be established through the wireless communication module of the light controller 204 of the controllable light-emitting object 10.
[0056] In some examples, the light controller 204 may include a processor with signal processing capabilities. In one implementation, the processor may be a circuit with instruction reading and execution capabilities, such as a central processing unit (CPU), a microprocessor, a graphics processing unit (GPU) (which can be understood as a microprocessor), or a digital signal processor (DSP). In another implementation, the processor may implement certain functions through the logical relationship of a hardware circuit. The logical relationship of the above-mentioned hardware circuit is fixed or reconfigurable. For example, the processor is a hardware circuit implemented by an application-specific integrated circuit (ASIC) or a programmable logic device (PLD), such as an FPGA. In a reconfigurable hardware circuit, the process of the processor loading a configuration document to implement the hardware circuit configuration can be understood as the process of the processor loading instructions to implement the above functions. In addition, the processor can also be a hardware circuit designed for artificial intelligence, which can be understood as an ASIC, such as a neural network processing unit (NPU), a tensor processing unit (TPU), a deep learning processing unit (DPU), etc.
[0057] In some examples, the lighting show controller may include but is not limited to a wireless communication main device, a relay node, etc., or may also include but is not limited to devices with wireless communication capabilities, such as mobile phones, computers, smart speakers, smart TVs, car terminals, etc.
[0058] In some examples, the wireless communication connection between the lighting show controller and the controllable light-emitting object may include but is not limited to a short-range communication connection, for example, a Bluetooth connection, a WIFI connection, a ZigBee connection, etc., and may use a 2.4 GHz frequency band, etc.
[0059] In some examples, the method of compressing data can be selected according to the actual situation. It is not the inventive point of the invention and will not be described in detail in this application. The purpose of compression is to reduce the amount of data. Then, the decompression method can be selected and adapted according to the compression method actually adopted. The display information corresponding to the controllable luminous object 10 can be obtained by decompression. For example, taking the controllable luminous object 10 as a fluorescent stick as an example, the display information corresponding to each fluorescent stick can be obtained by decompression based on the venue seat number corresponding to the fluorescent stick. Then, the controllable light-emitting module 203 of the controllable luminous object 10 can emit the light display state that the light show controller expects to control, thereby realizing real-time light control, such as light show of dynamic video of characters, light show of high-resolution dynamic video containing dynamic subtitles of more than a dozen words, etc.
[0060] In the embodiment of the present application, the size of the compressed data is smaller than the size of the lighting data including the display information of each controllable light-emitting object.
[0061] In some examples, the light display states that can be generated by the controllable light-emitting module 203 may include, but are not limited to, at least one of the following: a physical switch state, a dynamic change state, and a color state. The physical switch state is used to represent on or off. The dynamic change state is used to represent a gradual change process, a flickering frequency, etc. The color state is used to represent the physical intensity combination of the three primary colors of red, green, and blue, such as RGB values. For example, by using different light display states, the LED lamp beads that serve as the controllable light-emitting module 203 can emit light effects such as flashing red or gradient red.
[0062] In an optional embodiment, the shape of the controllable luminous object includes at least one of the following: rod-shaped, ring-shaped.
[0063] In this way, by providing the controllable luminous object with various shapes, it can provide users with a variety of usage methods, such as being handheld or wearable, further enhancing the user experience.
[0064] As a specific example, see Figure 2 The controllable luminous object may be in the shape of a rod. Those skilled in the art will appreciate that a rod may have at least two free ends that are not connected to each other, and the rod shape may include but is not limited to a straight rod shape, a curved rod shape, a T-shaped rod shape, and the like.
[0065] As another specific example, Figure 6 A structural schematic diagram shows another specific example of a controllable luminous object for dynamic video lighting performances in an embodiment of the present application. As shown in the figure, the shape of the controllable luminous object can be ring-shaped, which is more suitable for wearing on the arm or head, etc.
[0066] Those skilled in the art should understand that the shape of the controllable luminous object may also be a combination of a rod and a ring.
[0067] The embodiment of the present application also provides a dynamic video lighting performance system, which is applied to the support solution of the present application and can realize a dynamic video lighting performance under real-time control. Figure 3 The following is a schematic block diagram of a specific example of a dynamic video light show system in an embodiment of the present application. As shown in the figure, the dynamic video light show system includes: One or more controllable light-emitting object groups 501, each controllable light-emitting object group 501 including a plurality of controllable light-emitting objects 10 for dynamic video light performances as described in the above embodiment; A lighting show controller 502 is wirelessly connected to each of the controllable light objects 10 in the one or more controllable light object groups 501 via at least a single channel, and is configured to simultaneously send compressed data to each controllable light object 10 to provide real-time lighting control of each controllable light object 10 to achieve a dynamic video lighting show; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.
[0068] Thus, the support scheme of the present application utilizes a dynamic video lighting performance system comprising one or more controllable light-emitting devices and a lighting performance controller. The lighting performance controller and the lighting controller transmit compressed data over at least a single channel. Since the compressed data is significantly smaller than the original light data containing display information for all controllable light-emitting devices, the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication is significantly increased. Consequently, for each frame of an image, the number of controllable light-emitting devices that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable light-emitting devices, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters. This also improves the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can be significantly increased, thereby enhancing the dynamic display effects of the dynamic video lighting performance system and enabling dynamic video lighting performances containing multiple display elements.
[0069] In an optional embodiment, the light show controller 502 uses single-channel wireless communication to connect one or more groups of controllable light-emitting objects 501 to complete a dynamic video light show with real-time light control.
[0070] In an optional embodiment, a group of controllable light emitting objects 501 corresponds to multiple partitions of seats; The lighting performance controller 502 uses at least single-channel real-time lighting to control a group of controllable light-emitting object groups 501, so that multiple partitions as a whole present a lighting performance of a dynamic video containing multiple display elements, and / or different partitions present the same or different lighting performances of a dynamic video containing multiple display elements.
[0071] In some examples, the multiple partitions of seats mentioned above may be all partitions of seats on the venue, or may be several partitions among all partitions, and may be set according to actual needs.
[0072] In some examples, seats may include, but are not limited to, seats within a venue, and locations where controllable lighting objects are installed.
[0073] In some examples, Figure 4 A schematic diagram shows a specific example of the grouping of controllable light-emitting object groups in an embodiment of the present application. As shown in the figure, in any application scenario of the dynamic video lighting performance system, the application scenario may include but is not limited to various large venues, smart buildings, and home scenes. For example, in a stadium 600, the seats are divided into N zones, such as the first zone to the Nth zone. A group of controllable light-emitting object groups corresponds to multiple zones of the seats. For example, a group of controllable light-emitting object groups can correspond to N zones, or can also correspond to several zones less than N zones. Then, through real-time lighting control based on compressed data transmission, the lighting performance controller can simultaneously control all groups of controllable light-emitting object groups 501 in the N zones through a single channel, thereby completing an overall dynamic video lighting performance containing multiple display elements in the N zones.
[0074] In some examples, reference Figure 4 Through real-time lighting control based on compressed data transmission, the lighting show controller can also utilize multiple channels. A single channel can simultaneously control controllable light groups 501 in one or n zones of N, where n < N, thereby completing a dynamic video lighting show containing multiple display elements for multiple seating areas. The dynamic video content displayed by the controllable light groups 501 simultaneously controlled by a single channel can be the same as or different from the dynamic video content displayed by the controllable light groups 501 simultaneously controlled by another single channel.
[0075] In an optional embodiment, a partition of seats corresponds to one or more groups of controllable light emitting objects 501; The lighting performance controller 502 uses at least single-channel real-time lighting to control one or more groups of controllable light-emitting object groups 501, so that a partition as a whole presents a lighting performance of a dynamic video containing multiple display elements, and / or presents a lighting performance of a dynamic video containing multiple display elements grouped by the controllable light-emitting object groups 501, with each group being the same or different.
[0076] In some examples, Figure 5 A schematic diagram illustrates another specific example of grouping controllable light-emitting object groups in an embodiment of the present application. As shown, the i-th zone can be any zone from the first to the N-th zones, and M groups of controllable light-emitting objects can be arranged within the i-th zone, such as the first to the M-th groups. A single channel can simultaneously control all M groups of controllable light-emitting objects, or one or p groups of controllable light-emitting objects within the M groups, where p < M. This allows for a group-controlled dynamic video lighting show containing multiple display elements within a seating area, displaying the same or different dynamic videos for each group within the seating area.
[0077] In this way, by connecting one or more groups of controllable light-emitting objects through single-channel wireless communication, the lighting performance controller can simultaneously control multiple group combinations of controllable light-emitting objects in real time, enriching the lighting performance effects of dynamic videos and greatly improving the user experience.
[0078] In an optional embodiment, the light show controller 502 includes at least one of the following: serving as a master device in a wireless communication network; serving as a relay node in a wireless communication network.
[0079] In this way, the lighting performance controller can be used to compress the lighting data containing the display information of each controllable light-emitting object to obtain compressed data, and can also forward the compressed data from the main device, thereby increasing the network structure, expanding the scope of application, and further increasing the lighting performance range of dynamic video.
[0080] As a specific example, the light show controller 502 can be a master device or a relay node in a Bluetooth network. The master device can coordinate communication timing, allocate channel resources, and control multiple slave devices (such as controllable light objects). The relay node can forward data and expand coverage.
[0081] The embodiment of the present application also provides a dynamic video lighting performance method, which is applied to the support scheme of the present application and can be applied to controllable luminous objects, and can realize dynamic video lighting performances under real-time control. Figure 7 A flowchart of Example 1 of a dynamic video light performance method according to an embodiment of the present application is shown. As shown in the figure, the dynamic video light performance method includes: Step S101: In response to receiving compressed data sent by a lighting show controller through at least a single channel, the controllable light-emitting object decompresses the compressed data to obtain display information of the controllable light-emitting object; Step S102: the controllable luminous object generates a light display state corresponding to the display information according to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
[0082] Thus, the support scheme of the present application transmits compressed data between the lighting performance controller and the lighting controller over at least a single channel. Since the compressed data is significantly smaller than the original lighting data containing display information for all controllable light-emitting objects, the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication is greatly increased. Consequently, for each frame of an image, the number of controllable light-emitting objects that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable light-emitting objects, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters. This also improves the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can be significantly increased, thereby enhancing dynamic display effects and enabling dynamic video lighting performances containing multiple display elements.
[0083] The embodiment of the present application also provides a dynamic video lighting performance method, which is applied to the support scheme of the present application and can be applied to a lighting performance controller, and can realize a dynamic video lighting performance under real-time control. Figure 8 A flow chart of Example 2 of a dynamic video light performance method according to an embodiment of the present application is shown. As shown in the figure, the dynamic video light performance method includes: Step S201: The lighting performance controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; Step S202: The light show controller simultaneously sends the compressed data to each controllable light source through at least a single channel, thereby controlling the light display state of each controllable light source in real time and completing the light show of the dynamic video; The compressed data is obtained by compressing the light data containing the display information of each controllable light-emitting object, so that the controllable light-emitting object can obtain the display information corresponding to its light display state by decompressing the compressed data.
[0084] Thus, the support scheme of the present application transmits compressed data between the lighting performance controller and the lighting controller over at least a single channel. Since the compressed data is significantly smaller than the original lighting data containing display information for all controllable light-emitting objects, the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication is greatly increased. Consequently, for each frame of an image, the number of controllable light-emitting objects that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable light-emitting objects, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters. This also improves the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can be significantly increased, thereby enhancing dynamic display effects and enabling dynamic video lighting performances containing multiple display elements.
[0085] In an optional embodiment, the light show controller in step S202 simultaneously sends the compressed data to each controllable light-emitting object through at least a single channel, including: Step S211: the light show controller compresses the light data including the display information of each controllable light-emitting object to obtain the compressed data; Step S212: The lighting show controller sends the compressed data to each controllable light-emitting object simultaneously through at least a single channel.
[0086] In this way, the lighting performance controller can serve as the main device to realize real-time lighting control of the lighting display status of each controllable light object and complete the lighting performance of the dynamic video.
[0087] In an optional embodiment, the light show controller in step S202 simultaneously sends the compressed data to each controllable light-emitting object through at least a single channel, including: Step S221: the lighting performance controller obtains the compressed data; Step S222: The lighting show controller sends the compressed data to each controllable light-emitting object simultaneously through at least a single channel.
[0088] In this way, the lighting show controller can act as a relay node to forward the compressed data from the main device, realize real-time lighting control of the lighting display status of each controllable light object, and complete the lighting show of the dynamic video.
[0089] In an optional embodiment, the lighting show controller of step S202 sends the compressed data to each controllable light-emitting object simultaneously through at least a single channel, further comprising: Step S231: The light show controller uses at least a single-channel real-time light to control a group of the controllable light-emitting objects 501, so that the multiple partitions present a light show including a dynamic video of multiple display elements as a whole, and / or different partitions present the same or different light shows including the dynamic video of multiple display elements; A group of controllable light-emitting objects 501 corresponds to multiple partitions of seats.
[0090] In an optional embodiment, the lighting show controller of step S202 sends the compressed data to each controllable light-emitting object simultaneously through at least a single channel, further comprising: Step S241: The light show controller uses at least a single-channel real-time light control to control one or more groups of controllable light-emitting object groups 501, so that a subarea as a whole presents a light show of a dynamic video containing multiple display elements, and / or presents a light show of a dynamic video containing multiple display elements that is grouped by the controllable light-emitting object groups 501, with each group being the same or different; One partition of the seats corresponds to one or more groups of controllable light-emitting objects 501 .
[0091] The embodiment of the present application also provides a dynamic video lighting performance method, which is applied to the support scheme of the present application and can be applied to a dynamic video lighting performance system, and can realize a dynamic video lighting performance under real-time control. Figure 9 A flow chart of Example 3 of a dynamic video light performance method according to an embodiment of the present application is shown. As shown in the figure, the dynamic video light performance method includes: Step S301: The lighting performance controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; Step S302: The light show controller simultaneously sends the compressed data to each controllable light-emitting object through at least a single channel, so as to control the light display state of each controllable light-emitting object in real time; Step S303: In response to receiving the compressed data, the controllable light object decompresses the compressed data to obtain display information of the controllable light object; and generates a light display state corresponding to the display information according to the display information to participate in completing the light show of the dynamic video; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.
[0092] Thus, the support scheme of the present application transmits compressed data between the lighting performance controller and the lighting controller over at least a single channel. Since the compressed data is significantly smaller than the original lighting data containing display information for all controllable light-emitting objects, the amount of data that can be transmitted per unit time (e.g., per second) in single-channel wireless communication is greatly increased. Consequently, for each frame of an image, the number of controllable light-emitting objects that can be simultaneously controlled can be increased during real-time lighting control, thereby enabling image display in situations requiring a large number of controllable light-emitting objects, such as a complete image containing multiple display elements, or dozens of letters or Chinese characters. This also improves the resolution of the image display. Furthermore, the number of frames that can be transmitted per second can be significantly increased, thereby enhancing dynamic display effects and enabling dynamic video lighting performances containing multiple display elements.
[0093] In an optional embodiment, the lighting performance controller in step S302 sends the compressed data to each controllable light-emitting object simultaneously through at least a single channel. The specific steps and effects can be found above and will not be repeated here.
[0094] As a specific example, the typical compression ratio of a normal image can range from 10:1 to 20:1. If the compression ratio of the light data containing the display information of all controllable light-emitting objects is 10:1, then for a single display element with 16×16=256 pixels, when data compression is not performed for transmission, the 20MHz bandwidth of a single channel in the 2.4GHz frequency band can only transmit about 20 frames of data per second for a single display element; in contrast, when the data is compressed and transmitted, the amount of data that can be transmitted can be increased by at least 10 times, so that at least 20 frames of data can be transmitted per second for more than ten display elements, realizing a light show of dynamic video including multiple display elements with single-channel real-time lighting control.
[0095] The embodiment of the present application also provides a light control device, which is applied to the support scheme of the present application and can be implemented on a light controller of a controllable light object, and can realize a dynamic video form of light performance under real-time control. Figure 10 A schematic block diagram of a specific example of a light emitting control device in an embodiment of the present application is shown. As shown in the figure, the light emitting control device includes: A first processing module 601 is configured to, in response to receiving compressed data sent by a light show controller through at least a single channel, decompress the compressed data to obtain display information of the controllable light object; A second processing module 602 is configured to generate a light display state corresponding to the display information according to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
[0096] The embodiment of the present application also provides a lighting performance control device, which is applied to the support solution of the present application and can be implemented on a lighting performance controller to realize a dynamic video form of lighting performance under real-time control. Figure 11 A schematic block diagram of a specific example of a lighting performance control device in an embodiment of the present application is shown. As shown in the figure, the lighting performance control device includes: The third processing module 701 is configured to establish a wireless communication connection with one or more groups of controllable light emitting objects, wherein each group of controllable light emitting objects includes a plurality of controllable light emitting objects; The fourth processing module 702 is configured to simultaneously send the compressed data to each controllable light source through at least a single channel, thereby controlling the light display state of each controllable light source in real time and completing the light show of the dynamic video; The compressed data is obtained by compressing the light data containing the display information of each controllable light-emitting object, so that the controllable light-emitting object can obtain the display information corresponding to its light display state by decompressing the compressed data.
[0097] In an optional implementation, the fourth processing module 702 includes: a compression module, configured to compress the light data including the display information of each controllable light-emitting object to obtain the compressed data; The first transmission module is configured to simultaneously send the compressed data to each controllable light-emitting object through at least a single channel.
[0098] In an optional implementation, the fourth processing module 702 includes: An acquisition module, configured to acquire the compressed data; The second transmission module is configured to simultaneously send the compressed data to each controllable light-emitting object through at least a single channel.
[0099] In an optional implementation, the fourth processing module 702 further includes: A first zone control module is configured to control a group of controllable light objects 501 using at least a single-channel real-time lighting control, so that the multiple zones as a whole present a lighting show of a dynamic video including multiple display elements, and / or different zones present the same or different lighting shows of a dynamic video including multiple display elements; A group of controllable light-emitting objects 501 corresponds to multiple partitions of seats.
[0100] In an optional implementation, the fourth processing module 702 further includes: A second zone control module is configured to control one or more groups of controllable light objects 501 using at least a single channel of real-time lighting control, so that a zone as a whole presents a light show of a dynamic video containing multiple display elements, and / or presents a light show of a dynamic video containing multiple display elements that is the same or different between groups of controllable light objects 501; One partition of the seats corresponds to one or more groups of controllable light-emitting objects 501 .
[0101] Regarding the above-mentioned device embodiment, the specific manner in which each module performs operations and the technical effects can be referred to the corresponding description in the above-mentioned method embodiment, and will not be elaborated here.
[0102] It should be understood that the division of the various units or modules in the above-described apparatus is merely a division of logical functions. In actual implementation, they may be fully or partially integrated into a single physical entity, or they may be physically separate. Furthermore, the units or modules in the apparatus may be implemented in the form of a processor invoking software: for example, the apparatus includes a processor connected to a memory storing instructions, and the processor invokes the instructions stored in the memory to implement any of the above-described methods or the functions of the various units or modules in the apparatus.
[0103] The embodiment of the present application further provides an electronic device, which is applied to the support solution of the present application. Figure 12 The following is a schematic block diagram of a specific example of an electronic device according to an embodiment of the present application. As shown in the figure, the electronic device includes: a memory storing instructions; and A processor is configured to execute the instructions to implement the dynamic video lighting performance method applied to a controllable luminous object or the dynamic video lighting performance method applied to a lighting performance controller of the above embodiment.
[0104] As a specific example, Figure 12As shown, the electronic device may include but is not limited to a processor, a memory, a network interface, a display and an input device connected via a system bus. The processor may be used to provide computing and control capabilities. The memory may include a non-volatile storage medium and an internal memory. The non-volatile storage medium may store an operating system and a computer program. The internal memory may provide an environment for the operation of the operating system and the computer program in the non-volatile storage medium. The network interface may be used to communicate with an external terminal via a network connection. The display may be a liquid crystal display or an electronic ink display. The input device may be a touch layer covering the display, or a button, trackball or touchpad provided on the housing of the electronic device, or an external keyboard, touchpad or mouse.
[0105] Those skilled in the art will understand that Figure 12 The structure shown in the figure is only a block diagram of a part of the structure related to the solution of the present application, and does not constitute a limitation on the electronic device to which the solution of the present application is applied. The specific electronic device may include more or fewer components than shown in the figure, or combine certain components, or have a different component arrangement.
[0106] The present application also provides a computer-readable storage medium having a computer program stored therein. When the computer program is executed, the computer program can implement the corresponding functions described in the dynamic video light performance method applied to a controllable luminous object or the dynamic video light performance method applied to a light performance controller in the above method embodiment. The computer program can also be used in the following manner: Figure 12 The memory of the electronic device contains various program modules constituting the above-mentioned light control device or light show control device. When the computer program composed of the various program modules is executed, it can realize the functions corresponding to the various steps in the method described in the above embodiment.
[0107] Those skilled in the art will appreciate that all or part of the processes in the above-described embodiments can be implemented by instructing the relevant hardware through a computer program, which can be stored in a non-volatile computer-readable storage medium. Any reference to memory, storage, database, or other media used in the various embodiments provided herein may include non-volatile and / or volatile memory. Non-volatile memory may include read-only memory (ROM), programmable ROM (PROM), electrically programmable ROM (EPROM), electrically erasable programmable ROM (EEPROM), or flash memory. Volatile memory may include random access memory (RAM) or external cache memory. By way of illustration and not limitation, RAM is available in various forms, such as static RAM (SRAM), dynamic RAM (DRAM), synchronous DRAM (SDRAM), double data rate SDRAM (DDRSDRAM), enhanced SDRAM (ESDRAM), synchronous link DRAM (SLDRAM), RAMbus direct RAM (RDRAM), direct RAMbus dynamic RAM (DRDRAM), and RAMbus dynamic RAM (RDRAM).
[0108] It should be understood that the above embodiments are exemplary and are not intended to encompass all possible implementations of the present application. Various modifications and variations may be made based on the above embodiments without departing from the scope of the present disclosure. Similarly, the various technical features of the above embodiments may be arbitrarily combined to form additional embodiments of the present application that may not be explicitly described. Therefore, the above embodiments merely illustrate several implementations of the present application and do not limit the scope of protection of the present patent application.
Claims
1. A controllable luminous object for dynamic video light performance, characterized in that: The controllable luminous object comprises: a housing and a light-emitting component arranged in the housing; The light emitting assembly includes one or more controllable light emitting modules and a light emitting controller; The lighting controller is connected to the controllable lighting module and is configured to, in response to receiving compressed data sent by the lighting show controller through at least a single channel, decompress the compressed data to obtain display information of the controllable lighting object, and control the controllable lighting module to generate a lighting display state corresponding to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
2. The controllable luminous object according to claim 1, characterized in that: The housing is provided with at least a mode switching switch, which is connected to the light controller and is used to switch the working mode of the controllable light-emitting object; And / or, the shape of the controllable luminous object includes at least one of the following: rod-shaped, ring-shaped.
3. The controllable luminous object according to claim 2, characterized in that: The operating mode of the controllable luminous object includes at least one of the following: group control mode, single control mode, automatic control mode, sleep mode, and off mode; And / or, the mode switching switch includes at least one of the following: a push button switch, a knob switch, a start button, a toggle switch, a micro switch, a membrane switch, a touch switch set at a predetermined position on the touch screen, and a switch with an induction function.
4. The controllable luminous object according to any one of claims 1 to 3, characterized in that: A power supply module is also provided in the housing of the controllable luminous object for providing power supply; And / or, the light display state includes at least one of the following: a switch physical state, a dynamic change state, and a color state.
5. The controllable luminous object according to any one of claims 1 to 3, characterized in that: The wireless communication connection between the controllable luminous object and the light show controller includes at least one of the following: Bluetooth connection, WIFI connection, ZigBee connection; Wherein, the lighting show controller includes at least one of the following: serving as a master device in a wireless communication network; serving as a relay node in a wireless communication network.
6. A dynamic video lighting performance system, characterized in that: The dynamic video lighting performance system includes: One or more groups of controllable luminous objects, each group of controllable luminous objects comprising a plurality of controllable luminous objects for dynamic video lighting performances according to any one of claims 1 to 5; a lighting show controller wirelessly connected to each of the one or more groups of controllable light objects via at least a single channel, for simultaneously sending compressed data to each controllable light object to provide real-time lighting control of each controllable light object to achieve a dynamic video lighting show; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.
7. The dynamic video lighting performance system according to claim 6, characterized in that: The light show controller uses single-channel wireless communication to connect one or more groups of controllable light-emitting objects.
8. A dynamic video lighting performance method, characterized in that: The dynamic video lighting performance method comprises: The controllable light object, in response to receiving the compressed data sent by the light show controller through at least a single channel, decompresses the compressed data to obtain display information of the controllable light object; The controllable luminous object generates a light display state corresponding to the display information according to the display information; The controllable luminous object is any one of a plurality of controllable luminous objects wirelessly connected to the light show controller, so as to participate in completing the light show of the dynamic video under the condition that the light show controller controls each controllable luminous object in real time; the compressed data is obtained by compressing the light data containing the display information of each controllable luminous object.
9. A dynamic video lighting performance method, characterized in that: The dynamic video lighting performance method comprises: The lighting show controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; The light show controller sends the compressed data to each controllable light object simultaneously through at least a single channel, so as to control the light display state of each controllable light object in real time and complete the light show of the dynamic video; The compressed data is obtained by compressing the light data containing the display information of each controllable light-emitting object, so that the controllable light-emitting object can obtain the display information corresponding to its light display state by decompressing the compressed data.
10. A dynamic video lighting performance method, characterized in that: The dynamic video lighting performance method comprises: The lighting show controller establishes a wireless communication connection with one or more groups of controllable light-emitting objects; wherein each group of controllable light-emitting objects includes a plurality of controllable light-emitting objects; The light show controller simultaneously sends the compressed data to each controllable light object through at least a single channel, so as to control the light display state of each controllable light object in real time; In response to receiving the compressed data, the controllable light object decompresses the compressed data to obtain display information of the controllable light object; and generates a light display state corresponding to the display information according to the display information, so as to participate in completing the light show of the dynamic video; The compressed data is obtained by compressing the light data including the display information of each controllable light-emitting object.