Intelligent atmosphere lighting control method and system based on full-light-emitting bulb lamp

By generating instructions and parameter data, combining control circuits and intelligent interfaces, the intelligent linkage between the full-luminous bulb and the scene atmosphere is realized, solving the problems of complex control and single mode of existing atmosphere lighting, and providing a variety of dynamic color light modes suitable for a variety of scenes.

CN120640481APending Publication Date: 2025-09-12DONGGUAN OLIGHT E COMMERCE TECH CO LTD
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Patent Information

Application Number
CN202510794612.0
Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
Filing Date
2025-06-13
Publication Date
2025-09-12

AI Technical Summary

Technical Problem

The existing atmosphere lighting control is complex and the mode is single. It is impossible to achieve intelligent control and change the corresponding atmosphere lighting according to the usage scenario. It lacks dynamic color light mode and cannot be linked with the scene.

Method used

By generating and acquiring command data and parameter data, combined with control circuits and intelligent interfaces, it can control the linkage between full-luminous bulbs and scene atmosphere lighting in real time, supporting multiple atmosphere lighting mode switching and music rhythm, including manual mechanical and remote wireless control.

Benefits of technology

It realizes intelligent control of the full-luminous bulb lighting and linkage with the scene atmosphere according to the usage scenario, simplifies operation, and provides a variety of dynamic color light modes. It is suitable for scenes such as home, camping, and parties to create a colorful and cool lighting atmosphere.

✦ Generated by Eureka AI based on patent content.

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Abstract

The invention discloses an intelligent atmosphere lighting control method and system based on a full-light-emitting bulb lamp. The method comprises the following steps: generating and acquiring at least one piece of first instruction data switched with atmosphere illumination to be switched, and generating corresponding first control data according to the first instruction data; on the basis of the first instruction data, first parameter data corresponding to the environment where the to-be-adjusted atmosphere illuminating lamp is located is generated and obtained; according to the first parameter data and the first control data, linkage of illumination of the all-sided light-emitting bulb lamp and scene illumination of the scene atmosphere is controlled in real time, and the system, the platform and the storage medium corresponding to the method can realize conversion of corresponding atmosphere illumination according to the use scene, that is, the operation is more convenient, and the user experience is improved. The dynamic colorful light modes are diversified, so that the dynamic colorful light is suitable for different scenes such as home furnishing, camping and gathering, and different atmospheres are created; therefore, a colorful cool lighting atmosphere can be created.
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Description

Technical Field

[0001] The present invention belongs to the technical field of intelligent atmosphere lighting processing, and in particular relates to an intelligent atmosphere lighting control method and system based on a full-luminous bulb. Background Art

[0002] At present, the working state control of atmosphere lighting is complex and the mode is single, that is, the control operation is cumbersome and inconvenient. Moreover, the existing atmosphere lighting cannot make the operation more convenient, lacks dynamic color light mode, and cannot realize the corresponding atmosphere lighting according to the usage scenario, that is, it is impossible to realize the intelligent control of full-luminous bulb lighting and the linkage of the scene atmosphere lighting.

[0003] Therefore, in view of the above, the current working state control of atmosphere lighting is complex and the mode is single, that is, the control operation is cumbersome and inconvenient. Moreover, the existing atmosphere lighting cannot achieve more convenient operation, lacks dynamic color light mode, and cannot achieve the corresponding atmosphere lighting according to the usage scenario, that is, it is impossible to achieve intelligent control of the full-luminous bulb lighting and the atmosphere scene lighting of the scene. There are technical problems and defects. It is urgent to design and develop an intelligent atmosphere lighting control method and system based on the full-luminous bulb. Summary of the Invention

[0004] In order to overcome the shortcomings and difficulties of the above-mentioned prior art, the purpose of the present invention is to provide an intelligent atmosphere lighting control method, system, platform and storage medium based on a full-luminous bulb lamp, so as to realize the corresponding change of atmosphere lighting according to the usage scenario, that is, to realize the intelligent control of the full-luminous bulb lamp lighting and the atmosphere scene lighting of the scene in which it is located.

[0005] The first purpose of the present invention is to provide an intelligent atmosphere lighting control method based on a full-luminous bulb; the second purpose of the present invention is to provide an intelligent atmosphere lighting control system based on a full-luminous bulb; the third purpose of the present invention is to provide an intelligent atmosphere lighting control platform based on a full-luminous bulb; the fourth purpose of the present invention is to provide a computer-readable storage medium.

[0006] The first object of the present invention is achieved in that the method comprises the steps of:

[0007] Generate and obtain at least one first instruction data corresponding to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0008] Based on the first instruction data, first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is generated and obtained; wherein the first parameter data is ambient light data of the circumference of the installation or placement location of the full-light bulb;

[0009] According to the first parameter data and in combination with the first control data, the full-illuminated bulb lighting is controlled in real time to be linked with the scene atmosphere lighting.

[0010] Furthermore, the generating and acquiring of at least one first instruction data related to the atmosphere lighting to be switched, and generating corresponding first control data according to the first instruction data, further includes:

[0011] Generate and obtain first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched;

[0012] Based on the first activation data, creating at least one intelligent control interface for a fully luminous bulb in real time;

[0013] Through the intelligent control interface of the full-light bulb, the full-light bulb can be remotely controlled in real time to operate in conjunction with the scene atmosphere lighting of the scene in which it is located.

[0014] Furthermore, the generating and acquiring of first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located further includes:

[0015] Based on the first instruction data, generating and acquiring second parameter data corresponding to the full-light bulb; wherein the second parameter data is the device status data of the full-light bulb;

[0016] Based on the first instruction data, generating and acquiring third parameter data corresponding to the full-light bulb; wherein the third parameter data is external environment data of the full-light bulb;

[0017] The characteristic lighting state of the full-illuminated bulb is controlled in real time according to the second parameter data and the third parameter data in combination with the first control data.

[0018] Furthermore, the real-time control of the lighting of the full-length light bulb and the scene atmosphere lighting thereof in conjunction with the first control data according to the first parameter data also includes:

[0019] generating and acquiring second control data for controlling a music rhythm mode of the fully luminous bulb lamp to be adjusted based on the first parameter data;

[0020] According to the second control data, the ambient music output of the music rhythm mode of the fully luminous bulb to be adjusted is controlled; wherein, the ambient music is music in the local device memory or the built-in database of the remote mobile control terminal.

[0021] Furthermore, the real-time control of the lighting of the full-length light bulb and the scene atmosphere lighting thereof in conjunction with the first control data according to the first parameter data also includes:

[0022] Based on the control circuit provided in the full-light bulb, the working state of the full-light bulb lighting and the scene atmosphere lighting thereof are controlled in real time;

[0023] The control circuit includes a first control circuit for controlling the working state of the full-light bulb;

[0024] The control circuit also includes a second control circuit electrically connected to the first control circuit and used to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and used to dim the full-light bulb lamp.

[0025] Furthermore, the third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light;

[0026] The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor;

[0027] The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

[0028] The second object of the present invention is achieved as follows: the system is used to implement the intelligent atmosphere lighting control method based on the full-light bulb; the system includes:

[0029] a first data generating unit, configured to generate and obtain at least one first instruction data corresponding to the atmosphere lighting to be switched, and to generate corresponding first control data according to the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; and the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0030] a second data generating unit, configured to generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located based on the first instruction data; wherein the first parameter data is ambient light data of the circumferential environment where the full-light bulb is installed or placed;

[0031] The atmosphere linkage control unit is used to control the linkage between the full-light bulb lighting and the atmosphere scene lighting of the scene in real time based on the first parameter data and in combination with the first control data.

[0032] Furthermore, the first data generating unit further includes:

[0033] A first generating module is configured to generate and obtain first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched;

[0034] A first creation module, configured to create at least one intelligent control interface for a full-illuminated bulb in real time based on the first activation data;

[0035] A first control module is used to remotely control the full-light bulb in real time through the intelligent control interface of the full-light bulb to coordinate lighting operations with the scene atmosphere;

[0036] And / or, the second data generating unit further includes:

[0037] a second generating module, configured to generate and obtain second parameter data corresponding to the full-light bulb based on the first instruction data; wherein the second parameter data is device status data of the full-light bulb;

[0038] A third generating module is configured to generate and obtain third parameter data corresponding to the full-light bulb based on the first instruction data; wherein the third parameter data is external environment data of the full-light bulb;

[0039] a second control module, configured to control the characteristic lighting state of the full-illuminated bulb in real time according to the second parameter data and the third parameter data in combination with the first control data;

[0040] And / or, the atmosphere linkage control unit further includes:

[0041] A fourth generating module is configured to generate and obtain second control data for controlling a music rhythm mode of the fully luminous bulb lamp to be adjusted according to the first parameter data;

[0042] a third control module, configured to control the output of ambient music in the music rhythm mode of the fully luminous bulb to be adjusted according to the second control data; wherein the ambient music is music stored in the local device memory or in a database built into the remote mobile control terminal;

[0043] A fourth control module is used to control the working state of the full-light bulb lighting in conjunction with the scene atmosphere lighting in real time based on the control circuit provided in the full-light bulb;

[0044] The control circuit includes a first control circuit for controlling the working state of the full-light bulb;

[0045] The control circuit further includes a second control circuit electrically connected to the first control circuit and configured to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and configured to dim the full-light bulb lamp;

[0046] The third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light;

[0047] The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor;

[0048] The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

[0049] The third object of the present invention is achieved as follows: it includes a processor, a memory and an intelligent atmosphere lighting control platform control program based on a full-light bulb; wherein the processor executes the intelligent atmosphere lighting control platform control program based on a full-light bulb, the intelligent atmosphere lighting control platform control program based on a full-light bulb is stored in the memory, and the intelligent atmosphere lighting control platform control program based on a full-light bulb implements the intelligent atmosphere lighting control method based on a full-light bulb.

[0050] The fourth object of the present invention is achieved as follows: the computer-readable storage medium stores a control program for an intelligent atmosphere lighting control platform based on a full-luminous bulb, and the control program for an intelligent atmosphere lighting control platform based on a full-luminous bulb implements the intelligent atmosphere lighting control method based on a full-luminous bulb.

[0051] The present invention generates and obtains at least one first instruction data corresponding to the ambient lighting to be switched, and generates corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling a full-light bulb to switch between multiple ambient lighting modes; based on the first instruction data, generates and obtains first parameter data corresponding to the environment in which the ambient lighting is to be adjusted; wherein the first parameter data is ambient light data of the ambient light around the installation or placement location of the full-light bulb; based on the first parameter data and in combination with the first control data, the full-light bulb is controlled in real time to be linked to the ambient lighting of the scene in which it is located; and the system, platform, and storage medium corresponding to the method can achieve the change of ambient lighting corresponding to the usage scenario, that is, achieve intelligent control of the full-light bulb lighting and the ambient lighting of the scene in which it is located. Moreover, the present invention provides simple control of the ambient lighting operating state and multiple modes, which makes operation more convenient, and the dynamic color light modes are diverse, suitable for different scenarios such as home, camping, and gatherings, creating different atmospheres, and thus achieving a colorful and cool lighting atmosphere. BRIEF DESCRIPTION OF THE DRAWINGS

[0052] 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.

[0053] Figure 1 This is a flow chart of an intelligent atmosphere lighting control method based on a full-light bulb according to the present invention;

[0054] Figure 2 This is a schematic diagram of the control circuit structure of an intelligent atmosphere lighting control based on a full-light bulb lamp of the present invention;

[0055] Figure 3 This is a schematic diagram of MCU reset of a control circuit for intelligent atmosphere lighting control based on a full-illuminated bulb according to the present invention;

[0056] Figure 4 This is a voltage stabilization schematic diagram of a control circuit for intelligent atmosphere lighting control based on a full-light bulb according to the present invention;

[0057] Figure 5 This is a schematic diagram of the SWD debugging interface of a control circuit for intelligent atmosphere lighting control based on a full-light bulb according to the present invention;

[0058] Figure 6This is a schematic diagram of a first control circuit of a control circuit for intelligent atmosphere lighting control based on a full-light bulb lamp according to the present invention;

[0059] Figure 7 This is a schematic diagram of a third control circuit of a control circuit for intelligent atmosphere lighting control based on a full-illuminated bulb according to the present invention;

[0060] Figure 8 This is a schematic diagram of the architecture of an intelligent atmosphere lighting control system based on a full-light bulb according to the present invention;

[0061] Figure 9 This is a schematic diagram of the architecture of an intelligent atmosphere lighting control platform based on a full-light bulb according to the present invention;

[0062] Figure 10 A schematic diagram of a computer-readable storage medium architecture in one embodiment of the present invention;

[0063] In the figure: U3-third control chip; U7-seventh control chip; L2-second inductor; L3-third inductor; R14-fourteenth resistor; R15-fifteenth resistor; R16-sixteenth resistor; C5-fifth capacitor; C8-eighth capacitor; R3-third resistor; R4-fourth resistor; R5-fifth resistor; R8-eighth resistor; R9-ninth resistor; R10-tenth resistor; R11-eleventh resistor; R13-thirteenth resistor; R30-thirtieth resistor; Q3-third MOS tube; Q6-sixth MOS tube; C1-first capacitor; C2-second capacitor; C3-third capacitor; C4-fourth capacitor; C7-seventh capacitor; C21-twenty-first capacitor; C32-thirty-second capacitor; C33-thirty-third capacitor; C34-thirty-fourth capacitor; C35-thirty-fifth capacitor; C36-thirty-sixth capacitor. DETAILED DESCRIPTION

[0064] In order to better understand the purpose, technical solutions and advantages of the present invention, the present invention is further described below with reference to the accompanying drawings and specific embodiments. Those skilled in the art can easily understand other advantages and effects of the present invention from the contents disclosed in this specification.

[0065] The present invention may also be implemented or applied through other different specific examples, and the details in this specification may also be modified and changed in various ways based on different viewpoints and applications without departing from the spirit of the present invention.

[0066] It should be noted that if the embodiments of the present invention involve directional indications (such as up, down, left, right, front, back, etc.), the directional indications are only used to explain the relative position relationship, movement status, etc. between the various components under a certain specific posture (as shown in the accompanying drawings). If the specific posture changes, the directional indications will also change accordingly.

[0067] In addition, if there are descriptions involving "first", "second", etc. in the embodiments of the present invention, the descriptions of "first", "second", etc. are only for descriptive purposes and cannot be understood as indicating or implying their relative importance or implicitly indicating the number of the indicated technical features. Therefore, the features defined as "first" and "second" may explicitly or implicitly include at least one of such features. Secondly, the technical solutions between the various embodiments can be combined with each other, but this must be based on the fact that ordinary technicians in this field can implement them. When the combination of technical solutions is contradictory or cannot be implemented, it should be deemed that such a combination of technical solutions does not exist and is not within the scope of protection required by the present invention.

[0068] Preferably, the intelligent ambient lighting control method based on a fully luminous bulb of the present invention is applied to one or more terminals or servers. The terminal is a device that can automatically perform numerical calculations and / or information processing according to pre-set or stored instructions, and its hardware includes but is not limited to a microprocessor, an application-specific integrated circuit (ASIC), a field-programmable gate array (FPGA), a digital signal processor (DSP), an embedded device, etc.

[0069] The terminal can be a computing device such as a desktop computer, notebook, PDA, cloud server, etc. The terminal can interact with the client through a keyboard, mouse, remote control, touchpad, or voice control device.

[0070] The present invention is to realize an intelligent atmosphere lighting control method, system, platform and storage medium based on a fully luminous bulb.

[0071] like Figure 1 , which is a flow chart of an intelligent atmosphere lighting control method based on a full-illuminated bulb provided by an embodiment of the present invention.

[0072] In this embodiment, the intelligent atmosphere lighting control method based on the full-luminous bulb can be applied to terminals with display functions or fixed terminals. The terminals are not limited to personal computers, smart phones, tablet computers, desktop computers or all-in-one computers equipped with cameras, etc.

[0073] The intelligent ambient lighting control method based on a fully luminous bulb can also be applied to a hardware environment consisting of a terminal and a server connected to the terminal via a network. The network includes, but is not limited to, a wide area network, a metropolitan area network, or a local area network. The intelligent ambient lighting control method based on a fully luminous bulb according to the present invention can be executed by a server, a terminal, or both.

[0074] For example, for a terminal that needs to perform intelligent atmosphere lighting control based on a fully luminous bulb, the intelligent atmosphere lighting control function based on a fully luminous bulb provided by the method of the present invention can be directly integrated on the terminal, or a client for implementing the method of the present invention can be installed. For another example, the method provided by the present invention can also be run on a server or other device in the form of a software development kit (SDK), and an interface for the intelligent atmosphere lighting control function based on a fully luminous bulb is provided in the form of the SDK. The terminal or other device can implement the intelligent atmosphere lighting control function based on the fully luminous bulb through the provided interface. The present invention is further explained below in conjunction with the accompanying drawings.

[0075] like Figure 1 As shown, the present invention provides an intelligent atmosphere lighting control method based on a full-light bulb, the method comprising the following steps:

[0076] S1. Generate and obtain at least one first instruction data related to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0077] S2. Based on the first instruction data, generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located; wherein the first parameter data is ambient light data of the surrounding environment where the full-illuminated bulb is installed or placed;

[0078] S3. Based on the first parameter data and in combination with the first control data, control the linkage between the full-light bulb lighting and the scene atmosphere lighting in real time.

[0079] The generating and acquiring at least one first instruction data for the atmosphere lighting to be switched, and generating corresponding first control data according to the first instruction data, further includes:

[0080] S11, generating and acquiring first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched;

[0081] S12. Creating at least one intelligent control interface for a fully luminous bulb in real time based on the first activation data;

[0082] S13. Through the intelligent control interface of the full-luminous bulb, the full-luminous bulb is remotely controlled in real time to operate in conjunction with the scene atmosphere lighting.

[0083] The generating and acquiring first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located also includes:

[0084] S21. Generate and acquire second parameter data corresponding to the full-light bulb based on the first instruction data; wherein the second parameter data is device status data of the full-light bulb;

[0085] S22. Generate and acquire third parameter data corresponding to the full-light bulb based on the first instruction data; wherein the third parameter data is external environment data of the full-light bulb;

[0086] S23: Control the characteristic lighting state of the full-illuminated bulb in real time according to the second parameter data and the third parameter data in combination with the first control data.

[0087] The method of controlling the lighting of the full-scale light bulb and the scene atmosphere lighting thereof in real time based on the first parameter data and in combination with the first control data further includes:

[0088] S31. Generate and obtain second control data for controlling a music rhythm mode of the fully luminous bulb to be adjusted based on the first parameter data;

[0089] S32. Control the output of ambient music of the music rhythm mode of the fully luminous bulb lamp to be adjusted according to the second control data; wherein the ambient music is music in the local device memory or the built-in database of the remote mobile control terminal.

[0090] The method of controlling the lighting of the full-scale light bulb and the scene atmosphere lighting thereof in real time based on the first parameter data and in combination with the first control data further includes:

[0091] S33, based on the control circuit provided in the full-light bulb, controlling the working state of the full-light bulb lighting linked with the scene atmosphere lighting in real time;

[0092] The control circuit includes a first control circuit for controlling the working state of the full-light bulb;

[0093] The control circuit also includes a second control circuit electrically connected to the first control circuit and used to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and used to dim the full-light bulb lamp.

[0094] The third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light;

[0095] The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor;

[0096] The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

[0097] Specifically, in an embodiment of the present invention, first, at least one first instruction data corresponding to the atmosphere lighting to be switched is generated and obtained, and corresponding first control data is generated according to the first instruction data; wherein, the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes; then, based on the first instruction data, first parameter data corresponding to the environment in which the atmosphere lighting to be adjusted is generated and obtained; wherein, the first parameter data is ambient light data of the circumferential environment at the installation or placement location of the full-light bulb; then, according to the first parameter data and in combination with the first control data, the full-light bulb lighting is controlled in real time to be linked to the atmosphere scene lighting of the scene in which it is located. That is, the solution of the present invention is used to realize the transformation of the corresponding atmosphere lighting according to the usage scenario, that is, to realize the intelligent control of the full-light bulb lighting and the atmosphere scene lighting of the scene in which it is located to be linked.

[0098] Among them, the full-light bulb provided by the solution of the present invention is a spherical rechargeable lighting tool that combines white light and dazzling colors (hereinafter referred to as the bulb). The upgraded "full-sphere" light output mode and three-dimensional light-emitting effects create a colorful and cool lighting atmosphere. The bulb shell is made of high-temperature resistant and highly light-transmitting PC material, and adopts a transparent + foggy double-layer lampshade design. The white light output is 75 lumens, and a single charge can provide 3 hours of lighting. The low-brightness mode (1LM) can achieve an ultra-long battery life of 40 hours, and 7 modes are optional: white light, red light, red flash, color light 1, color light 2, color light 3, and color light 4. The bulb supports Bluetooth control, and when used with the new OLIGHT APP, it can realize group control functions such as switch, brightness, color, mode, and music rhythm. With the gateway, it can be linked with other smart devices of OLIGHT, DIY various automation scenes, and realize Internet of Things control.

[0099] The bulb features a magnetic charging port at the bottom, allowing it to automatically align and connect to a magnetic charger. The bulb also attaches to iron surfaces, providing convenient mobile lighting. The newly designed flame light and dynamic color light modes create a unique atmosphere for home, camping, and gatherings. The bulb can be charged using MCC (MCC1A and MCC3) cables and Omino charging cables, allowing for long-term use while charging. The bulb's center of gravity is located at the bottom, allowing it to remain illuminated on any flat surface (a tumbler design). With an IP56 waterproof rating, it floats on water, providing excellent illumination for swimming.

[0100] The door lock in this invention utilizes a fully illuminated bulb that emits global light, creating a colorful and cool lighting atmosphere. It can be controlled by an IoT app, supporting device and scene linkage and cross-platform interoperability. It also features a music rhythm mode. It also supports countdown and cloud timing settings. It emits global light, with a double-layer, three-dimensional lampshade design; it also offers seven new and cool lighting modes. It can be controlled by an intelligent IoT app, enabling rich linkage control with other smart devices. It supports custom linkage logic to meet the diverse user needs. It also features a music rhythm mode. It can be charged via MCC (MCC1A and MCC3) cables and OLIGHT's proprietary Omino charging system, allowing for easy access to power sources. It can be used for both lighting and creating an atmosphere. The built-in battery provides up to 40 hours of illumination at low brightness. It also features a magnetic suction function and a lightweight design that can be used on various iron surfaces. It also offers excellent drop and waterproof performance, is reliable and resistant to drops, and can even float on water for illumination.

[0101] The corresponding host specifications are shown in the following table.

[0102]

[0103] In the solution of the present invention, when the bulb is used for the first time, it is necessary to charge and activate the product with a charger before it can be used normally.

[0104] Bulb UI operation: The bulb switch is located at the bottom. Press the bottom surface or press the top of the ball (when the bulb is placed on a hard surface) to operate the switch;

[0105] Power on / off: Single-click to turn on, double-click to turn on / off. When turned on, it works in memory mode and brightness. If it is the first time to turn on, the default is low white light.

[0106] Mode switch: Click to switch modes, the order is white light → red light → red flashing → color light 1 → color light 2 → color light 3 → color light 4 → white light →…

[0107] In the default lighting mode, except for white light, red light and red flashing, other lighting modes can be replaced with static color or dynamic color modes in the app.

[0108] Replacement method: Select the mode you like in the replaceable mode app, then turn off the bulb, and the bulb will automatically remember the mode.

[0109] Brightness adjustment: Long press for infinite dimming. The first long press increases the brightness, the second long press decreases the brightness, and the brightness remains constant after release (Brightness limit reminder: When the bulb is in low battery or high temperature limit state, if the brightness adjustment of the APP exceeds the brightness limit range, the bulb will flash as a reminder).

[0110] Key lock: In the off state, combined with the control circuit, press and hold the button for 2 seconds until the default white light turns off to enter the key lock state. In the key lock state, press the button and the power indicator light flashes once and then goes out.

[0111] Unlock: In the key lock state, combined with the control circuit, press and hold the button for 1s until the white light is on to release the key lock. After unlocking, the default white light is on at low brightness.

[0112] Special key lock mode: In order to ensure that the lighting phenomenon is triggered correctly during shipment and transportation, a special key lock mode has been added. After locking the key, it needs to be recharged to activate it (specific operation method: in the off state, quickly press more than 10 times (inclusive) and keep pressing for 5 seconds until the red flash goes out to enter the special key lock state. After entering, any key operation will be invalid and it needs to be recharged to activate it). A reminder card is added to remind users that charging is required for first use.

[0113] Automatic Sleep Mode: Combined with the control circuit, the bulb automatically enters sleep mode after 30 minutes of inactivity. After sleep, the mobile app cannot control the bulb; you must wake it up again. It can be revived by charging or pressing any button on the bulb.

[0114] Home Management: In the App, all devices are in the "Home" where you can add "Rooms" and "Family Members" to facilitate device operation.

[0115] Smart Scene: Create a smart scene on the "Scene" page. When used with the Olight Obounds gateway, you can create a smart scene on the "Scene" page to achieve linkage between devices and device status, external environment, geographic location, and timing functions, and customize various favorite execution effects.

[0116] Group control: Enter the device management page to create a group. After the group is successfully created, all devices in the group can be uniformly controlled.

[0117] Restore factory lighting mode: Click "Restore factory lighting mode" on the APP to restore the device to factory mode.

[0118] Light whack-a-mole function: Light interaction simulates whack-a-mole. The bulb lights up randomly, and when you hit the light, a flashing prompt will appear.

[0119] You can exit this mode by pressing the bulb button 5 or more times in a row; it will automatically exit this mode after 30 seconds of no operation; you can turn on / off this mode in the APP device panel; after exiting, the work will resume in the memory mode before entering.

[0120] Factory aging test mode: Enter the mode by pressing the "special lock key" in the charging state. Test mode description: Total time 1 hour and 45 minutes, white light 1 hour --- red light 15 minutes --- green light 15 minutes --- blue light 15 minutes --- end (shutdown);

[0121] Exit method: Press any button to exit (turn off the light directly after exiting).

[0122] Battery level display: After power off, the battery level is displayed dynamically from top to bottom: 50%-100% green; 10%-49% yellow; <10% red.

[0123] Remote mobile phone APP control: Operation process: The bulb enters the network distribution mode → Turn on Bluetooth and enable location services on the mobile phone, start the APP application → APP search and add the device → Add successfully → Complete.

[0124] Entering Network Configuration Mode: With the device powered on (not in Whack-a-Mole mode), quickly tap the button three or more times until it flashes green, and the bulb enters Network Configuration Mode. You can now use the mobile app to search and add devices. Network Configuration Mode only lasts for three minutes. If you don't complete adding devices using the app after three minutes, the bulb automatically exits Network Configuration Mode. You can also exit Network Configuration Mode by pressing any button.

[0125] A bulb that has been networked cannot be searched by other phones outside of the network it is networked with. If you need to control it with another phone, you can use the "Device Sharing" function in the app to share device control, or put the bulb back into network mode and make a new network connection. When the bulb is locked, it cannot be controlled by the app. If you need to control it with the mobile phone app, unlock the bulb first.

[0126] To achieve the above object, the present invention also provides an intelligent atmosphere lighting control system based on a full-light bulb, the system is used to implement the intelligent atmosphere lighting control method based on a full-light bulb; Figure 8 As shown, the system specifically includes:

[0127] a first data generating unit, configured to generate and obtain at least one first instruction data corresponding to the atmosphere lighting to be switched, and to generate corresponding first control data according to the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; and the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0128] a second data generating unit, configured to generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located based on the first instruction data; wherein the first parameter data is ambient light data of the circumferential environment where the full-light bulb is installed or placed;

[0129] The atmosphere linkage control unit is used to control the linkage between the full-light bulb lighting and the atmosphere scene lighting of the scene in real time based on the first parameter data and in combination with the first control data.

[0130] The first data generating unit further includes:

[0131] A first generating module is configured to generate and obtain first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched;

[0132] A first creation module, configured to create at least one intelligent control interface for a full-illuminated bulb in real time based on the first activation data;

[0133] A first control module is used to remotely control the full-light bulb in real time through the intelligent control interface of the full-light bulb to coordinate lighting operations with the scene atmosphere;

[0134] And / or, the second data generating unit further includes:

[0135] a second generating module, configured to generate and obtain second parameter data corresponding to the full-light bulb based on the first instruction data; wherein the second parameter data is device status data of the full-light bulb;

[0136] A third generating module is configured to generate and obtain third parameter data corresponding to the full-light bulb based on the first instruction data; wherein the third parameter data is external environment data of the full-light bulb;

[0137] a second control module, configured to control the characteristic lighting state of the full-illuminated bulb in real time according to the second parameter data and the third parameter data in combination with the first control data;

[0138] And / or, the atmosphere linkage control unit further includes:

[0139] A fourth generating module is configured to generate and obtain second control data for controlling a music rhythm mode of the fully luminous bulb lamp to be adjusted according to the first parameter data;

[0140] a third control module, configured to control the output of ambient music in the music rhythm mode of the fully luminous bulb to be adjusted according to the second control data; wherein the ambient music is music stored in the local device memory or in a database built into the remote mobile control terminal;

[0141] A fourth control module is used to control the working state of the full-light bulb lighting in conjunction with the scene atmosphere lighting in real time based on the control circuit provided in the full-light bulb;

[0142] The control circuit includes a first control circuit for controlling the working state of the full-light bulb;

[0143] The control circuit further includes a second control circuit electrically connected to the first control circuit and configured to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and configured to dim the full-light bulb lamp;

[0144] The third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light;

[0145] The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor;

[0146] The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

[0147] In the system solution embodiment of the present invention, the method steps involved in the intelligent atmosphere lighting control based on the full-luminous bulb have been described above in detail. That is to say, the functional modules in the system are used to implement the steps or sub-steps in the above method embodiment, which will not be repeated here.

[0148] To achieve the above objectives, the present invention also provides an intelligent atmosphere lighting control platform based on a full-light bulb, such as Figure 9 As shown, it includes a processor, a memory, and a control program for an intelligent atmosphere lighting control platform based on a fully luminous bulb; wherein, the processor executes the control program for the intelligent atmosphere lighting control platform based on a fully luminous bulb, and the control program for the intelligent atmosphere lighting control platform based on a fully luminous bulb is stored in the memory, and the control program for the intelligent atmosphere lighting control platform based on a fully luminous bulb implements the steps of the intelligent atmosphere lighting control method based on a fully luminous bulb. For example:

[0149] S1. Generate and obtain at least one first instruction data related to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0150] S2. Based on the first instruction data, generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located; wherein the first parameter data is ambient light data of the surrounding environment where the full-illuminated bulb is installed or placed;

[0151] S3. Based on the first parameter data and in combination with the first control data, control the linkage between the full-light bulb lighting and the scene atmosphere lighting in real time.

[0152] The specific details of the steps have been explained above and will not be repeated here.

[0153] In an embodiment of the present invention, the built-in processor of the intelligent atmosphere lighting control platform based on the full-illuminated bulb can be composed of an integrated circuit, such as a single packaged integrated circuit or a plurality of packaged integrated circuits with the same or different functions, including one or more central processing units (CPUs), microprocessors, digital processing chips, graphics processors, and a combination of various control chips. The processor utilizes various interfaces and circuits to connect to various components, and executes or runs programs or units stored in memory, as well as calls data stored in memory, to perform various functions of the intelligent atmosphere lighting control based on the full-illuminated bulb and process data.

[0154] The memory is used to store program codes and various data. It is installed in the intelligent atmosphere lighting control platform based on the full-luminous bulb and can automatically access the program or data at high speed during operation.

[0155] The memory includes read-only memory (ROM), random access memory (RAM), programmable read-only memory (PROM), erasable programmable read-only memory (EPROM), one-time programmable read-only memory (OTPROM), electronically erasable programmable read-only memory (EEPROM), compact disc read-only memory (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.

[0156] To achieve the above object, the present invention also provides a computer readable storage medium, such as Figure 10 As shown, the computer-readable storage medium stores a control program for an intelligent atmosphere lighting control platform based on a full-illuminated bulb. The control program for an intelligent atmosphere lighting control platform based on a full-illuminated bulb implements the steps of the intelligent atmosphere lighting control method based on a full-illuminated bulb, for example:

[0157] S1. Generate and obtain at least one first instruction data related to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0158] S2. Based on the first instruction data, generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located; wherein the first parameter data is ambient light data of the surrounding environment where the full-illuminated bulb is installed or placed;

[0159] S3. Based on the first parameter data and in combination with the first control data, control the linkage between the full-light bulb lighting and the scene atmosphere lighting in real time.

[0160] The specific details of the steps have been explained above and will not be repeated here.

[0161] In the description of the embodiments of the present invention, it should be noted that any process or method description in the flowchart or otherwise described herein can be understood as representing a module, fragment or portion of code that includes one or more executable instructions for implementing specific logical functions or steps of the process, and the scope of the preferred embodiments of the present invention includes additional implementations, in which functions may not be performed in the order shown or discussed, including performing functions in a substantially simultaneous manner or in the reverse order depending on the functions involved, which should be understood by technicians in the technical field to which the embodiments of the present invention belong.

[0162] The logic and / or steps represented in the flowcharts or otherwise described herein, for example, can be considered as a sequenced list of executable instructions for implementing the logical functions, and can be embodied in any computer-readable medium for use by, or in conjunction with, an instruction execution system, apparatus, or device (e.g., a computer-based system, a system including a processing module, or other system that can fetch instructions from and execute instructions on an instruction execution system, apparatus, or device). For purposes of this specification, a "computer-readable medium" can be any device that can contain, store, communicate, propagate, or transport a program for use by, or in conjunction with, an instruction execution system, apparatus, or device. More specific examples (a non-exhaustive list) of computer-readable media include the following: an electrical connection having one or more wires (electronic devices), a portable computer disk cartridge (magnetic device), a random access memory (RAM), a read-only memory (ROM), an erasable and programmable read-only memory (EPROM or flash memory), a fiber optic device, and a portable compact disc read-only memory (CDROM).

[0163] Furthermore, the computer-readable medium may even be paper or other suitable medium on which the program is printed, since the program may be obtained electronically, for example, by optically scanning the paper or other medium and then editing, interpreting or processing it in another suitable manner if necessary, and then storing it in a computer memory.

[0164] In an embodiment of the present invention, to achieve the above-mentioned objectives, the present invention further provides a chip system, which includes at least one processor. When program instructions are executed in the at least one processor, the chip system performs the steps of the intelligent atmosphere lighting control method based on the full-illuminated bulb, for example:

[0165] S1. Generate and obtain at least one first instruction data related to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes;

[0166] S2. Based on the first instruction data, generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located; wherein the first parameter data is ambient light data of the surrounding environment where the full-illuminated bulb is installed or placed;

[0167] S3. Based on the first parameter data and in combination with the first control data, control the linkage between the full-light bulb lighting and the scene atmosphere lighting in real time.

[0168] The specific details of the steps have been explained above and will not be repeated here.

[0169] Those skilled in the art will appreciate that the units and algorithm steps of each example described in conjunction with the embodiments disclosed herein can be implemented in electronic hardware, or a combination of computer software and electronic hardware. Whether these functions are performed in hardware or software depends on the specific application and design constraints of the technical solution. Professional and technical personnel can use different methods to implement the described functions for each specific application, but such implementation should not be considered to be beyond the scope of this application. Those skilled in the art will clearly understand that, for the convenience and brevity of description, the specific working processes of the systems, devices and units described above can refer to the corresponding processes in the aforementioned method embodiments and will not be repeated here.

[0170] The present invention generates and obtains at least one first instruction data corresponding to the ambient lighting to be switched, and generates corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling a full-light bulb to switch between multiple ambient lighting modes; based on the first instruction data, generates and obtains first parameter data corresponding to the environment in which the ambient lighting is to be adjusted; wherein the first parameter data is ambient light data of the ambient light around the installation or placement location of the full-light bulb; based on the first parameter data and in combination with the first control data, the full-light bulb is controlled in real time to be linked to the ambient lighting of the scene in which it is located; and the system, platform, and storage medium corresponding to the method can achieve the change of ambient lighting corresponding to the usage scenario, that is, achieve intelligent control of the full-light bulb lighting and the ambient lighting of the scene in which it is located. Moreover, the present invention provides simple control of the ambient lighting operating state and multiple modes, which makes operation more convenient, and the dynamic color light modes are diverse, suitable for different scenarios such as home, camping, and gatherings, creating different atmospheres, and thus achieving a colorful and cool lighting atmosphere.

[0171] The above-described embodiments merely illustrate several implementations of the present invention, and while their descriptions are relatively specific and detailed, they should not be construed as limiting the scope of the present invention. It should be noted that a person skilled in the art would be able to make numerous variations and improvements without departing from the spirit of the present invention, all of which fall within the scope of protection of the present invention. Therefore, the scope of protection of the present invention shall be determined by the appended claims.

Claims

1. An intelligent atmosphere lighting control method based on a full-light bulb, characterized in that: The method comprises: Generate and obtain at least one first instruction data corresponding to the atmosphere lighting to be switched, and generate corresponding first control data based on the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes; Based on the first instruction data, first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is generated and obtained; wherein the first parameter data is ambient light data of the circumference of the installation or placement location of the full-light bulb; According to the first parameter data and in combination with the first control data, the full-illuminated bulb lighting is controlled in real time to be linked with the scene atmosphere lighting.

2. The intelligent atmosphere lighting control method based on a full-light bulb according to claim 1, characterized in that: The generating and acquiring at least one first instruction data for the atmosphere lighting to be switched, and generating corresponding first control data according to the first instruction data, further includes: Generate and obtain first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched; Based on the first activation data, creating at least one intelligent control interface for a fully luminous bulb in real time; Through the intelligent control interface of the full-light bulb, the full-light bulb can be remotely controlled in real time to operate in conjunction with the scene atmosphere lighting of the scene in which it is located.

3. The intelligent atmosphere lighting control method based on a full-light bulb according to claim 1, characterized in that: The generating and acquiring first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located also includes: Based on the first instruction data, generating and acquiring second parameter data corresponding to the full-light bulb; wherein the second parameter data is the device status data of the full-light bulb; Based on the first instruction data, generating and acquiring third parameter data corresponding to the full-light bulb; wherein the third parameter data is external environment data of the full-light bulb; The characteristic lighting state of the full-illuminated bulb is controlled in real time according to the second parameter data and the third parameter data in combination with the first control data.

4. The intelligent atmosphere lighting control method based on a full-light bulb according to claim 1, characterized in that: The method of controlling the lighting of the full-scale light bulb and the scene atmosphere lighting thereof in real time based on the first parameter data and in combination with the first control data further includes: generating and acquiring second control data for controlling a music rhythm mode of the fully luminous bulb lamp to be adjusted based on the first parameter data; According to the second control data, the ambient music output of the music rhythm mode of the fully luminous bulb to be adjusted is controlled; wherein, the ambient music is music in the local device memory or the built-in database of the remote mobile control terminal.

5. The intelligent atmosphere lighting control method based on a full-light bulb according to claim 1 or 4, characterized in that: The method of controlling the lighting of the full-scale light bulb and the scene atmosphere lighting thereof in real time based on the first parameter data and in combination with the first control data further includes: Based on the control circuit provided in the full-light bulb, the working state of the full-light bulb lighting and the scene atmosphere lighting thereof are controlled in real time; The control circuit includes a first control circuit for controlling the working state of the full-light bulb; The control circuit also includes a second control circuit electrically connected to the first control circuit and used to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and used to dim the full-light bulb lamp.

6. The intelligent atmosphere lighting control method based on a full-light bulb according to claim 5, characterized in that: The third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light; The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor; The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

7. An intelligent atmosphere lighting control system based on a full-light bulb, characterized in that: The system is applied to an intelligent atmosphere lighting control method based on a full-illuminated bulb as described in any one of claims 1 to 6; the system comprises: a first data generating unit, configured to generate and obtain at least one first instruction data corresponding to the atmosphere lighting to be switched, and to generate corresponding first control data according to the first instruction data; wherein the first instruction data includes manual mechanical control data and remote wireless instruction data; and the first control data is control data for controlling the full-light bulb to switch between multiple atmosphere lighting modes; a second data generating unit, configured to generate and obtain first parameter data corresponding to the environment in which the ambient lighting lamp to be adjusted is located based on the first instruction data; wherein the first parameter data is ambient light data of the circumferential environment where the full-light bulb is installed or placed; The atmosphere linkage control unit is used to control the linkage between the full-light bulb lighting and the atmosphere scene lighting of the scene in real time based on the first parameter data and in combination with the first control data.

8. The intelligent atmosphere lighting control system based on the full-light bulb according to claim 7, characterized in that: The first data generating unit further includes: A first generating module is configured to generate and obtain first activation data corresponding to the interface control of the full-light bulb; wherein the first activation data is sensing data after the intelligent control interface of the full-light bulb is touched; A first creation module, configured to create at least one intelligent control interface for a full-illuminated bulb in real time based on the first activation data; A first control module is used to remotely control the full-light bulb in real time through the intelligent control interface of the full-light bulb to coordinate lighting operations with the scene atmosphere; And / or, the second data generating unit further includes: a second generating module, configured to generate and obtain second parameter data corresponding to the full-light bulb based on the first instruction data; wherein the second parameter data is device status data of the full-light bulb; A third generating module is configured to generate and obtain third parameter data corresponding to the full-light bulb based on the first instruction data; wherein the third parameter data is external environment data of the full-light bulb; a second control module, configured to control the characteristic lighting state of the full-illuminated bulb in real time according to the second parameter data and the third parameter data in combination with the first control data; And / or, the atmosphere linkage control unit further includes: A fourth generating module is configured to generate and obtain second control data for controlling a music rhythm mode of the fully luminous bulb lamp to be adjusted according to the first parameter data; a third control module, configured to control the output of ambient music in the music rhythm mode of the fully luminous bulb to be adjusted according to the second control data; wherein the ambient music is music stored in the local device memory or in a database built into the remote mobile control terminal; A fourth control module is used to control the working state of the full-light bulb lighting in conjunction with the scene atmosphere lighting in real time based on the control circuit provided in the full-light bulb; The control circuit includes a first control circuit for controlling the working state of the full-light bulb; The control circuit further includes a second control circuit electrically connected to the first control circuit and configured to detect the battery voltage of the full-light bulb lamp, and a third control circuit electrically connected to the first control circuit and configured to dim the full-light bulb lamp; The third control circuit is respectively provided with a fourth control circuit for controlling the full-light bulb to adjust the color light; The fourth control circuit is provided with a third MOS tube; the source of the third MOS tube is respectively connected to the lamp board end for controlling the color light dimming, one end of the third capacitor, and one end of the fourth capacitor; The other end of the third capacitor, the other end of the fourth capacitor and the other end of the fifth resistor are commonly grounded; the gate of the third MOS tube is respectively connected to the collector of the seventh transistor and one end of the third resistor; the drain of the third MOS tube is respectively connected to the lamp board end and the other end of the third resistor.

9. An intelligent atmosphere lighting control platform based on full-light bulb, characterized in that: It includes a processor, a memory and a control program of an intelligent atmosphere lighting control platform based on a full-light bulb; wherein, the processor executes the control program of the intelligent atmosphere lighting control platform based on the full-light bulb, and the control program of the intelligent atmosphere lighting control platform based on the full-light bulb is stored in the memory. The control program of the intelligent atmosphere lighting control platform based on the full-light bulb implements the intelligent atmosphere lighting control method based on the full-light bulb as described in any one of claims 1 to 6.

10. A computer-readable storage medium, characterized in that: The computer-readable storage medium stores a control program for an intelligent atmosphere lighting control platform based on a full-luminous bulb. The control program for an intelligent atmosphere lighting control platform based on a full-luminous bulb implements the intelligent atmosphere lighting control method based on a full-luminous bulb as described in any one of claims 1 to 6.

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