System and method for controlling a multi-color LED lighting system

By controlling the color, brightness, and light pattern of multi-color LED light strips through a computing unit, the problem of limited color and effects in existing multi-color LED lighting systems is solved, achieving rich color expression and dynamic effects, suitable for indoor and outdoor decoration and holiday celebrations.

CN122029937APending Publication Date: 2026-05-12GLOBAL INDUSTRIES HOLDINGS LTD
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Patent Information

Authority / Receiving Office
CN · China
Patent Type
Applications(China)
Current Assignee / Owner
GLOBAL INDUSTRIES HOLDINGS LTD
Filing Date
2024-05-30
Publication Date
2026-05-12

AI Technical Summary

Technical Problem

Existing multicolor LED lighting systems have limited color output and usable effects, and cost constraints restrict the diversity and performance of light strings.

Method used

A multi-color LED lighting system and its control method are provided. The system obtains input commands through a computing unit, determines the color, brightness and light pattern, and outputs power level and control data to achieve the dynamic effect of the multi-color LED light strip.

Benefits of technology

It achieves rich color expression and dynamic effects of multi-color LED light strips, enhancing decorative appeal and festive atmosphere, and meeting the thematic needs of different festivals.

✦ Generated by Eureka AI based on patent content.

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Abstract

A method, a computing device, and a non-transitory computer readable storage medium for controlling a multicolor light emitting diode (LED) lighting system are provided. The method may be applied to a control unit that may acquire an input command. The control unit may also determine at least one color to be displayed on the LED lighting system based on the input command. The LED lighting system may include a plurality of LEDs connected in series. The control unit may further determine a brightness level to be displayed on the LED lighting system based on the input command. The control unit may also determine a light pattern to be displayed on the LED lighting system based on the input command. The control unit may further output a power level to power the LED lighting system. The control unit may also output control data to display the at least one color and the light pattern on the LED lighting system. The LED lighting system may be, for example, an LED strip.
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Description

Cross-referencing relevant application data

[0001] This application claims the benefit and priority of U.S. Provisional Patent Application Serial No. 63 / 508,412, filed June 15, 2023, the entire disclosure of which is incorporated herein by reference. Background Technology

[0002] This disclosure relates to a system and method for controlling a multicolor light-emitting diode (LED) lighting system.

[0003] With technological advancements, LED lights have improved in efficiency, brightness, and color quality. They have also become more affordable and readily available. LED lights have been incorporated into LED strings, which consist of a series of small, energy-efficient LED lights linked together to form strings, chains, or strips. However, due to cost considerations, the color output of LED strings and the available effects or patterns for illuminating such lighting systems have remained limited.

[0004] Therefore, it is desirable to provide a multi-color LED lighting system and a method for controlling the LED lighting system. Summary of the Invention

[0005] According to various embodiments, a system and method for controlling a multicolor light-emitting diode (LED) lighting system are provided.

[0006] In one aspect, a method for controlling a multi-color LED lighting system is provided. The method is applicable to a computing unit. The computing unit can acquire input commands. The input commands may include light output selection. The computing unit can determine, based on the input commands, at least one color to be displayed on the LED lighting system. The LED lighting system may include a plurality of LEDs connected in series. The computing unit can determine, based on the input commands, a brightness level to be displayed on the LED lighting system. The computing unit can determine, based on the input commands, a light pattern to be displayed on the LED lighting system. The computing unit can output a power level to power the lighting system. The computing unit can output control data to display the at least one color and the light pattern on the LED lighting system. The LED lighting system may be an LED light strip.

[0007] In a second aspect, a computing device is provided for controlling a multicolor LED lighting system. The computing device may include one or more processors and a non-transitory computer-readable memory storing instructions executable by the one or more processors. The one or more processors may be configured to acquire input commands. The input commands may include light output selection. The one or more processors may be further configured to determine, based on the input commands, at least one color to be displayed on the LED lighting system. The LED lighting system may include a plurality of LEDs connected in series.

[0008] The one or more processors may be further configured to determine a brightness level to be displayed on the LED lighting system based on the input command. The one or more processors may be further configured to determine a light pattern to be displayed on the LED lighting system based on the input command. The one or more processors may be further configured to output a power level to power the lighting system. The one or more processors may be further configured to output control data to display the at least one color and the light pattern on the LED lighting system. The LED lighting system may be an LED light strip.

[0009] In a third aspect, a non-transitory computer-readable storage medium storing instructions is provided. When executed by one or more processors of a computing device, the instructions cause the computing device to perform an operation of acquiring an input command. The input command may include light output selection. The instructions may further cause the computing device to perform an operation based on the input command to determine at least one color to be displayed on the LED lighting system. The LED lighting system may include a plurality of LEDs connected in series.

[0010] The instructions may further cause the computing device to perform an operation based on the input command to determine the brightness level to be displayed on the LED lighting system. The instructions may further cause the computing device to perform an operation based on the input command to determine the light pattern to be displayed on the LED lighting system. The instructions may further cause the computing device to perform an operation to output a power level to supply power to the lighting system. The instructions may further cause the computing device to perform an operation to output control data to display the at least one color and the light pattern on the LED lighting system. The LED lighting system may be an LED light strip.

[0011] The foregoing general description and the following detailed description are exemplary only and are not intended to limit this disclosure. Attached Figure Description

[0012] The benefits and advantages of the embodiments described herein will become more apparent to those skilled in the art upon reading the following detailed description and accompanying drawings: Figure 1 This is a front view of a multicolor LED lighting system illustrated as a light strip according to one embodiment; Figure 2 yes Figure 1 Circuit diagram of a multi-color LED light strip; Figure 3A This is a top-level circuit diagram of a control unit according to one embodiment; Figure 3B yes Figure 3A The underlying circuit diagram of the control unit; Figure 4 This is a top view of a controller according to one embodiment; Figure 5 This is a top view of a controller according to one embodiment; Figure 6A This is a top-level circuit diagram of a controller according to one embodiment; Figure 6B yes Figure 3A The underlying circuit diagram of the controller; Figure 7 This is an example of a method for controlling a multicolor LED lighting system according to the present disclosure; Figure 8 This is an example of a method for controlling a multicolor LED lighting system according to the present disclosure; Figure 9 This is a schematic diagram of a computing environment coupled with a user interface, based on an example of this disclosure; Figure 10 This is a front view of a multicolor LED lighting system illustrated as a light strip according to one embodiment; Figure 11 yes Figure 10 Circuit diagram of a multi-color LED light strip; Figure 12 This is a circuit diagram of a multi-color LED lighting system according to one embodiment; Figure 13A This is a top-level circuit diagram of a control unit according to one embodiment; and Figure 13B yes Figure 13A The underlying circuit diagram of the control unit. Detailed Implementation

[0013] While this disclosure is permitted to be embodied in various forms, the presently preferred embodiments are shown in the accompanying drawings and will be described below. It is to be understood that this disclosure should be considered illustrative and not intended to limit it to the specific embodiments illustrated. The terms “an” or “a” should be understood to include both the singular and the plural. Conversely, any reference to a plural item should include the singular where appropriate.

[0014] This disclosure provides a system and method for controlling a multicolor light-emitting diode (LED) lighting system. LEDs can be arranged in series to form LED strips, strings, bars, etc., and these LEDs can be powered to output light. The LEDs may include multicolor LEDs capable of outputting multiple colors. The LED lights can be further controlled to output specific patterns or brightness levels. These multicolor LED lighting systems can be used to decorate indoor and outdoor spaces, not only for illumination but also for celebrating festivals, celebrations, etc.

[0015] For example, a multi-color LED lighting system can be installed on the exterior of a house to output red and green for Christmas. Similarly, a multi-color LED lighting system can be controlled to output flashing patterns via Christmas daylight lights, thereby creating a Christmas atmosphere on the exterior of a residence. For example, Christmas daylight lights can include light outputs of constant red, constant green, constant orange, constant purple, constant blue, constant white, constant warm white, and combinations of constant red, green, orange, purple, blue, white, and warm white.

[0016] In another example, a multi-color LED lighting system can output orange, purple, green, and orange colors for Halloween. For instance, Halloween lighting could include constant orange, constant purple, constant green, and combinations of constant orange, purple, and green light output.

[0017] In yet another example, a multi-color LED lighting system can output blue, red, white, and blue colors for Independence Day. For instance, Independence Day could include constant blue, constant red, constant white, and a combination of constant blue / red / white light output.

[0018] In one embodiment, a multi-color LED lighting system can be a high-voltage or low-voltage point-controlled RGB surface mount LED strip with rich colors. In another embodiment, a multi-color LED lighting system can be a high-voltage or low-voltage point-controlled RGB surface mount device (SMD) LED strip. The multi-color LED lighting system can output various colors via a control unit. This can add more color to users' increasingly beautiful lives. The multi-color LED lighting system can include predefined themes or holidays. For example, holidays could be Independence Day, Halloween, and Christmas.

[0019] Now refer to the attached diagram, Figure 1 A multi-color LED lighting system, illustrated as light strip 10, is shown. According to... Figure 1In the exemplary embodiment shown, the multi-color LED light strip 10 may include a power connector / plug 12, a control unit 14, a first LED strip 16, a second LED strip 18, a power cord 20, an LED driver 22, a power connector 24, a first connection terminal 26, a second connection terminal 28, and a third connection terminal 30. The plug 12 may have two or three metal prongs that can be connected to a power source (e.g., a wall socket). The power cord 20 can supply power from the plug 12 to the control unit 14. The control unit 14 can provide power and control data to the multi-color LED light strip 10 via the LED driver 22. The power connector 24 can be connected to the LED driver 22.

[0020] The first LED strip 16 can be fixedly connected to the power connector 24. The first LED strip 16 can be connected to additional LED strips using the first connection terminal 26. The second LED strip 18 can be connected to the multi-color LED strip 10 using the second connection terminal 28 and its first connection terminal 26. Similarly, the third connection terminal 30 can be further connected to other LED strips. In one embodiment, the multi-color LED strip 10 can be a high-voltage LED strip. In one embodiment, the positions of the control unit 14 and the LED driver 22 can be interchanged, such that the LED driver 22 is located upstream of the control unit 14.

[0021] In one embodiment, the connecting ends 26, 28, and 30 may be snap-fit ​​connectors, screw-in connectors, snap-on connectors, or plug-in connectors. In one embodiment, the power connector 24 may be non-fixedly connected to the first LED strip 16. The power connector 24 may have a connecting end that can connect to a second connecting end on the first LED strip 16. In one embodiment, the multi-color LED strip 10 may include one, two, three, four, or more LED strips. In one embodiment, the multi-color LED strip 10 may emit white light when powered.

[0022] Figure 2 A circuit diagram of a multi-color LED lighting system, illustrated as a light strip 110, is shown. According to... Figure 2In the exemplary embodiment shown, the multi-color LED light strip 110 may include a control unit 112, a first LED unit 114, a second LED unit 116, a third LED unit 118, a fourth LED unit 120, a data connector 122, a V+ connector 124, and a V- connector 126. The control unit 112 can provide power and control data to the LED units 114, 116, 118, and 120 through the V+ connector 124, V- connector 126, and data connector 122. In one embodiment, the first LED unit 114 and the second LED unit 116 may be part of a first light strip 16. The third LED unit 118 and the fourth LED unit 120 may be part of a second LED light strip 18. Those skilled in the art will understand that any number of LED units 114, 116, 118, and 120 and light strips 16 and 18 can be used.

[0023] In one embodiment, the control units 14, 112 may include, for example: Figure 3A and 3B The circuit shown. Figure 3A The circuit diagram of the top layer of the control unit is shown. Figure 3B The circuit diagram of the control unit's underlying layer is shown. In one embodiment, control units 14 and 112 may be part of a high-voltage LED light strip.

[0024] In one embodiment, control units 14, 112, and 414 may use radio frequency (RF) technology to receive commands from a controller (controller 210). For example, the RF signal may include command key codes modulated with a 38kHz carrier wave and transmitted by the infrared remote controller 210. When the key code transmitted by the infrared remote controller 210 matches the key code of the controller, the controller may transmit corresponding data to control the output light of the multi-color LED strip 10 according to the received command. Other types of wireless communication are contemplated, including infrared (IR), Bluetooth, Wi-Fi, Zigbee, Z-Wave, LoRaWAN, near field communication (NFC), and ultra-wideband (UWB) technologies.

[0025] In one embodiment, control units 14, 112, and 414 can receive user input commands from controller 210.

[0026] Figure 4 and Figure 5Controllers 210 and 310 according to several embodiments are shown. The controllers 210 and 310 shown may include power buttons 212 and 312, first color adjustment buttons 214 and 314, second color adjustment buttons 216 and 316, a first color indicator 218 and 318, acceleration buttons 220 and 320, deceleration buttons 222 and 322, first special light effect buttons 224 and 324, second special light effect buttons 226 and 326, third special light effect buttons 228 and 328, and at least one sequence button 230 and 330. Power button 212 can turn the LED light output of the multi-color LED light strip 10 on and off. Color adjustment buttons 214, 314, 216, and 316 can be used to switch between a set of colors output by the multi-color LED lighting system 10.

[0027] For example, a user can switch between red, yellow, green, cyan, blue, purple, and white. First color indicators 218 and 318 indicate the color sequence when the user switches color output using first color adjustment buttons 214 and 314 and second color adjustment buttons 216 and 316. In one embodiment, the first color adjustment buttons 214 and 314 can be used to move counter-clockwise along the color on the first color indicators 218 and 318, and the second color adjustment buttons 216 and 316 can be used to move counter-clockwise.

[0028] In another embodiment, the first color indicators 218, 318 may be a plurality of color buttons 218, which can be used to cause the multicolor LED lighting system 10 to output a specific color. For example, the first color indicators 218, 318 may be a blue button that causes the multicolor LED lighting system 10 to output blue. In another example, the first color indicators 218, 318 may include a plurality of buttons, each of which, when pressed, causes the multicolor LED lighting system 10 to emit a specific color.

[0029] In one embodiment, controllers 210 and 310 may include a red light on each of the first special light effect buttons 224 and 324, the second special light effect buttons 226 and 326, and the third special light effect buttons 228 and 328 to indicate the current selection. When one of the buttons is selected, the red light may illuminate and remain illuminated for a predetermined time. For example, the red light may remain illuminated for three minutes.

[0030] Figure 4 A front view of the controller 210 is shown. According to... Figure 4 In the exemplary embodiment shown, the first color indicator 218 can indicate a color sequence including red, yellow, green, cyan, blue, purple, and white.

[0031] Figure 5 A front view of the controller 310 is shown. According to... Figure 5 In the exemplary embodiment shown, the controller 310 may include a second color indicator 319. The first color indicator 318 may indicate a color sequence including various shades of red, yellow, green, cyan, and blue. The second color indicator 319 may indicate a color sequence including various shades of pink, purple, and blue.

[0032] Figure 6A The top-level circuitry of controllers 210 and 310 is shown. Figure 6B The underlying circuitry of controllers 210 and 310 is shown.

[0033] Figure 7 A method 700 for controlling an LED light strip is shown. This method can be applied to control units, computing devices, mobile devices, personal computers, or servers.

[0034] In step 710, the control unit may acquire an input command, wherein the input command includes optical output selection.

[0035] In step 720, the control unit may determine, based on an input command, at least one color to be displayed on the LED lighting system, wherein the LED lighting system comprises a plurality of LEDs connected in series.

[0036] In step 730, the control unit can determine the brightness level to be displayed on the LED lighting system based on the input command.

[0037] In step 740, the control unit can determine the light pattern to be displayed on the LED lighting system based on the input command.

[0038] In step 750, the control unit can output a power level to supply power to the lighting system.

[0039] In step 760, the control unit may output control data to display the at least one color and the light pattern on the LED lighting system.

[0040] Figure 8 A method 800 for controlling an LED lighting system is shown. This method can be applied to control units, computing devices, mobile devices, personal computers, or servers.

[0041] In step 810, the control unit may acquire an input command. The input command may include optical output selection.

[0042] In step 820, the control unit may determine a predefined theme based on the input command. The predefined theme may include a predefined color, a predefined brightness level, and a predefined light pattern to be displayed on the LED lighting system. For example, the predefined theme could be a festival with a corresponding representative color. Each color may correspond to eight dynamic effect variations. For example, the eight dynamic effect variations may include moving patterns or effects, gradient patterns or effects, soft flash patterns or effects, shooting star patterns or effects, star flash patterns or effects, strobe patterns or effects, fireworks patterns or effects, and wave patterns or effects, as well as other patterns or effects.

[0043] In one embodiment, a motion animation effect can move the corresponding color output when selected. A gradient animation effect can apply a gradient change to the corresponding output color. For example, it can output an output that gradually and smoothly changes the brightness, color, or intensity of the light output. A soft flash animation effect can jump to the corresponding output color. For example, it can output a flashing or soft flashing visual effect by rapidly and intermittently changing the brightness, color, or intensity of the light output in a random or semi-random pattern. A meteor animation effect can output a meteor effect corresponding to the selected output color. For example, it can output an effect that rapidly and intermittently changes the brightness, color, or intensity of the light output in a linear or cascaded pattern. A star flash animation effect can flash the corresponding output color. For example, it can output a star flashing or flashing visual effect by rapidly and intermittently changing the brightness, color, or intensity of the light output.

[0044] Strobe effects can flash corresponding output colors. For example, repeatedly switching the light output on and off at a specific frequency creates a flickering or strobe visual effect. Firework effects can flash corresponding output colors. For example, by rapidly changing the brightness, color, and intensity of the light output, an output that mimics the visual effect of fireworks can be created. Wave effects can output wave-like changes in corresponding output colors. For example, by gradually and smoothly changing the brightness, color, or intensity of the light output, an output that simulates the visual effect of waves can be created.

[0045] In one embodiment, the predefined theme or holiday may include a National Day theme. The National Day theme may include red, white, blue, and a combination of blue, red, and white colors. These four colors, when combined with eight dynamic effect variations selected using at least one sequence button 230, 330, can correspond to 32 different dynamic effect variations.

[0046] In one embodiment, the predefined theme or holiday may include a Halloween theme. A Halloween theme may include orange, purple, green, and combinations of orange, purple, and green. These four colors, when combined with eight dynamic effect variations selected using at least one sequence button 230, 330, can correspond to 32 different dynamic effect variations.

[0047] In one embodiment, the predefined theme or holiday may include a Christmas theme. The Christmas theme may include red, green, orange, purple, blue, white, warm white, and combinations of red, green, orange, purple, blue, white, and warm white. These eight colors, when combined with eight dynamic effect variations selected using at least one sequence button 230, 330, can correspond to 64 dynamic effect variations.

[0048] In step 830, the control unit may determine, based on an input command, at least one color to be displayed on the LED lighting system, wherein the LED lighting system comprises a plurality of LEDs connected in series.

[0049] In step 840, the control unit can determine the brightness level to be displayed on the LED lighting system based on the input command.

[0050] In step 850, the control unit can determine the light pattern to be displayed on the LED lighting system based on the input command.

[0051] In step 860, the control unit can output a power level to power the LED lighting system.

[0052] In step 870, the control unit may output control data to display the at least one color and the light pattern on the LED lighting system.

[0053] In one embodiment, the control unit can output 28 colors with eight dynamic effect variations, including movement, gradient, soft sparkle, shooting star, star flash, strobe, fireworks, and waves, as well as other dynamic effects.

[0054] Figure 9 A computing system 900 is shown. According to... Figure 9 In the exemplary embodiment shown schematically, computing system 900 may include computing environment 910 coupled to user interface 950 and communication unit 960. Computing environment 910 may include processor 920, memory 930, and I / O (input / output) interface 940. Computing environment 910 may be coupled to user interface 950 and communication unit 960 via I / O interface 940.

[0055] Processor 920 typically controls the overall operation of computing environment 910, such as operations related to data acquisition, data processing, and data communication. Processor 920 may include one or more processors to execute instructions to perform all or part of the steps in the methods described above. Furthermore, processor 920 may include one or more modules that facilitate interaction between processor 920 and other components. The processor may be or include a central processing unit (CPU), microprocessor, single-chip computer, graphics processing unit (GPU), or the like.

[0056] Memory 930 can store various types of data to support the operation of computing environment 910. Memory 930 may contain predefined software 931. Examples of such data include instructions, data, user-input commands, etc., for any application or method running on computing environment 910. Memory 930 can be implemented using any type of volatile or non-volatile memory device or any combination thereof, such as static random access memory (SRAM), electrically erasable programmable read-only memory (EEPROM), erasable programmable read-only memory (EPROM), programmable read-only memory (PROM), read-only memory (ROM), magnetic storage, flash memory, magnetic disk, or optical disk.

[0057] I / O interface 940 provides an interface between processor 920 and peripheral interface modules, such as RF circuitry, external ports, proximity sensors, audio and speaker circuitry, video and camera circuitry, microphones, accelerometers, display controllers, optical sensor controllers, intensity sensor controllers, other input controllers, keyboards, click wheels, buttons, etc. Buttons may include, but are not limited to, a home button, a power button, and volume buttons.

[0058] The user interface 950 may include technologies for communicating with the user.

[0059] The communication unit 960 provides communication between the processing unit, external devices, mobile devices, and a network server (or cloud). Communication can be achieved via, for example, Wi-Fi or Bluetooth hardware and protocols. The communication unit 960 can be located within or connected to a computing environment.

[0060] In some embodiments, a non-transitory computer-readable storage medium is also provided, which includes a plurality of programs for performing the methods described above, such as programs contained in memory 930 that can be executed by processor 920 in computing environment 910. For example, the non-transitory computer-readable storage medium may be ROM, RAM, etc.

[0061] A non-transitory computer-readable storage medium stores a plurality of programs for execution by a computing device having one or more processors, wherein when the plurality of programs are executed by the one or more processors, the computing device performs the aforementioned method for motion prediction.

[0062] In some embodiments, the computing environment 910 may be implemented using one or more application-specific integrated circuits (ASICs), digital signal processors (DSPs), digital signal processing devices (DSPDs), programmable logic devices (PLDs), field-programmable gate arrays (FPGAs), graphics processing units (GPUs), controllers, microcontrollers, microprocessors, or other electronic components to perform the methods described above.

[0063] Figure 10 A multi-color LED lighting system is shown as illustrated in the diagram of light strip 410. According to... Figure 10 As illustrated in the exemplary embodiment, the multi-color LED lighting system 410 may include a plug or electrical connector 412, a control unit 414, an LED strip 416, a first connector 418, a second connection terminal 420, a first power cord 422, and a second power cord 424. The plug 412 may have two or three metal prongs that can be connected to a power source (e.g., a wall socket). In one embodiment, the plug 412 may provide 12V 2.5A of power to power a strip with 216 LEDs. In another embodiment, the plug 412 may provide 12V 5A of power to power a strip with 432 LEDs. The first power cord 422 may supply power from the plug 412 to the control unit 414. The control unit 414 may provide power and control data to the LED strip 416.

[0064] Figure 11 The circuit diagram for LED strip 516 is shown. According to... Figure 11 In the exemplary embodiment shown, the LED strip 516 may include LEDs D1, D2, D3, D4, D5, D6, a positive supply voltage 518, a negative supply voltage 520, and a resistor 522. Voltages 518 and 520 may be 12V or 24V. Resistor 522 may be a resistor with an appropriate power rating (e.g., 1 / 4 watt power rating).

[0065] Figure 12 A circuit diagram of a multi-color LED strip 600 according to one embodiment is shown. Figure 12 The exemplary embodiment shown indicates that the multi-color LED lighting system 600 may include a microchip 610, first, second, and third surface mount device (SMD) LED chips 612, 614, and 616, a resistor 618, a variable resistor 620, a capacitor 622, an RD1 resistor 624, a data input 626, a data output 628, and supply voltages 632 and 634. The microchip 610 can be used to drive the SMD LED chips 612, 614, and 616. The SMD LED chips 612, 614, and 616 may be, for example, 5050RGB-L1 chips capable of outputting multiple colors. The supply voltages 632 and 634 may be 12V or 24V.

[0066] In one embodiment, the control unit 414 may include, for example: Figure 13A and 13B The circuit shown. Figure 13A The circuit diagram of the top layer of the control unit is shown. Figure 13B A circuit diagram of the control unit's underlying structure is shown. In one embodiment, the control unit 414 may be part of a low-voltage LED lighting system, such as a light strip or string of lights.

[0067] As can be seen from the above description, many modifications and variations can be made without departing from the true spirit and scope of the novel concept of this disclosure. It should be understood that no limitation on the specific embodiments shown is intended or should be inferred. This disclosure is intended to cover all modifications falling within the scope of the appended claims.

Claims

1. A method for controlling a multicolor light-emitting diode (LED) lighting system, comprising: Acquire an input command, wherein the input command includes optical output selection; Based on the input command, at least one color is determined to be displayed on the LED lighting system, wherein the LED strip comprises a plurality of LEDs connected in series; The brightness level to be displayed on the LED lighting system is determined based on the input command; The light pattern to be displayed on the LED lighting system is determined based on the input command; The output power level is used to power the lighting system. and Output control data to display the at least one color and the light pattern on the LED lighting system.

2. The method according to claim 1, further comprising: A predefined theme is determined based on the input command, wherein the predefined theme includes a predefined color, a predefined brightness level, and a predefined light pattern to be displayed on the LED lighting system; and Output the control data to display the predefined topic.

3. The method according to claim 2, wherein the predefined theme includes a Christmas theme, wherein the Christmas theme includes red, green, orange, purple, blue, white, warm white, and red-green-orange-purple-blue-white-warm white combination color and light pattern output.

4. The method of claim 2, wherein the predefined theme includes a Halloween theme, wherein the Halloween theme includes orange, purple, green, and orange-purple-green color combinations and light pattern outputs.

5. The method according to claim 2, wherein the predefined theme includes a National Day theme, wherein the National Day theme includes blue, red, white, and blue-red-white combination color and light pattern output.

6. The method of claim 1, wherein the output power level for powering the LED lighting system comprises: The power output level is based on the brightness level to power the lighting system.

7. The method of claim 1, wherein outputting control data to display the at least one color and the light pattern on the LED lighting system comprises: The control data is output to display the at least one color, the light pattern, and the brightness level on the LED lighting system.

8. The method according to claim 2, wherein the light pattern output includes starburst and wave pattern output.

9. The method of claim 2, wherein the input command includes a pattern acceleration command that increases the conversion speed of the light pattern output.

10. The method according to claim 1, wherein the LED lighting system is an LED light strip.

11. A computing device, comprising: One or more processors; A non-transitory computer-readable storage medium storing instructions executable by the one or more processors, wherein the one or more processors are configured to: Acquire an input command, wherein the input command includes optical output selection; Based on the input command, at least one color is determined to be displayed on the LED lighting system, wherein the LED lighting system comprises a plurality of LEDs connected in series; The brightness level to be displayed on the LED lighting system is determined based on the input command; The light pattern to be displayed on the LED lighting system is determined based on the input command; The output power level is used to power the LED lighting system. and Output control data to display the at least one color and the light pattern on the LED lighting system.

12. The computing device of claim 11, wherein the one or more processors are further configured to: A predefined theme is determined based on the input command, wherein the predefined theme includes a predefined color, a predefined brightness level, and a predefined light pattern to be displayed on the LED lighting system; and Output the control data to display the predefined topic.

13. The computing device of claim 12, wherein the predefined theme includes a Christmas theme, wherein the Christmas theme includes red, green, orange, purple, blue, white, warm white, and red-green-orange-purple-blue-white-warm white combined color and light pattern output.

14. The computing device of claim 12, wherein the predefined theme includes a Halloween theme, wherein the Halloween theme includes orange, purple, green, and orange-purple-green color and light pattern output.

15. The computing device of claim 12, wherein the predefined theme includes a National Day theme, wherein the National Day theme includes blue, red, white, and blue-red-white combination color and light pattern output.

16. The computing device of claim 11, wherein the one or more processors configured to output the power level to power the lighting system are further configured to: The LED lighting system is powered by outputting a power level based on the brightness level.

17. The computing device of claim 11, wherein the one or more processors configured to output control data to display the at least one color and the light pattern on the LED lighting system are further configured to: The control data is output to display the at least one color, the light pattern, and the brightness level on the LED lighting system.

18. The computing device of claim 12, wherein the light pattern output includes starburst and wave pattern output.

19. The computing device of claim 12, wherein the input command includes a pattern acceleration command that increases the conversion speed of the light pattern output.

20. The computing device of claim 11, wherein the LED lighting system is an LED light strip.

21. A non-transitory computer-readable storage medium storing a plurality of programs for execution by a computing device having one or more processors, wherein the plurality of programs, when executed by the one or more processors, cause the computing device to perform operations including: Acquire an input command, wherein the input command includes optical output selection; Based on the input command, at least one color is determined to be displayed on the LED lighting system, wherein the LED lighting system comprises a plurality of LEDs connected in series; The brightness level to be displayed on the LED lighting system is determined based on the input command; The light pattern to be displayed on the LED lighting system is determined based on the input command; The output power level is used to power the LED lighting system. and Output control data to display the at least one color and the light pattern on the LED lighting system.

22. The non-transitory computer-readable storage medium of claim 21, wherein the plurality of programs further cause the computing device to perform: A predefined theme is determined based on the input command, wherein the predefined theme includes a predefined color, a predefined brightness level, and a predefined light pattern to be displayed on the LED lighting system; and Output the control data to display the predefined topic.

23. The non-transitory computer-readable storage medium of claim 21, wherein the LED lighting system is an LED light strip.