A photoelectric accelerometer driving method and system based on multi-physics signal fusion
By using multi-light source array components in the photoelectric accelerometer and automatically selecting the light source according to the ambient temperature and humidity, the stability problem of near-infrared light in extreme environments is solved, and the stable detection of the photoelectric accelerometer under different conditions is achieved.
Patent Information
- Application Number
- CN202510263037.1
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2025-03-06
- Publication Date
- 2025-08-22
- Estimated Expiration
- 2045-03-06
AI Technical Summary
Under extreme environmental conditions, the stability of near-infrared light is affected, resulting in inaccurate detection results of the photoelectric accelerometer. Especially under high temperature and high humidity conditions, the peak wavelength drift of near-infrared light and water vapor scattering affect signal integrity.
Using multi-light source array components, including near-infrared, mid-infrared and red light, the appropriate light source is automatically selected according to the ambient temperature and humidity, and adjust the light source by setting critical state and time thresholds to ensure that the light source receiving component is always stable.
Under different environmental conditions, the multi-light source receiving component always receives a stable light source signal, improving the detection stability and accuracy of the photoelectric accelerometer.
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Figure CN119757796B_ABST
Abstract
Description
Technical Field
[0001] The present invention relates to the technical field of photoelectric accelerometer driving, and in particular to a photoelectric accelerometer driving method and system based on multi-physical signal fusion. Background Art
[0002] A photoelectric accelerometer is a device that uses the principle of the photoelectric effect to measure acceleration. It is mainly used in aerospace, automotive, construction and other fields to monitor the motion state and dynamic behavior of objects. The working principle usually involves the use of lasers, optical fibers or photoelectric sensors. By measuring changes in light such as light intensity, wavelength or frequency, the photoelectric accelerometer can detect changes in the acceleration of an object and convert them into electrical signals for subsequent analysis and processing.
[0003] Patent publication number CN108646053A is a laser accelerometer. When the laser accelerometer has acceleration, the elastic part undergoes elastic deformation due to the action of inertial force, thereby driving a high-reflection part to approach or move away from the emission end of a corresponding microcrystalline glass laser, and the other high-reflection part to move away from or approach the emission end of another corresponding microcrystalline glass laser. This allows each microcrystalline glass laser to generate a laser with a frequency difference. The frequency difference can be measured by a photodetector, and then the acceleration value can be obtained. Using a conventional laser and a simple acceleration sensing element, the system can achieve acceleration measurement while making the manufacturing simple and low-cost.
[0004] When driving photoelectric accelerometers, the above-mentioned and similar technical solutions typically use light-emitting diodes (LEDs) to emit light that is received by photosensitive diodes. Most LEDs use near-infrared light, especially near-infrared light with a wavelength of around 850nm, because it exhibits good stability over a wide range of humidity and temperature. However, under certain extreme environmental conditions, near-infrared light cannot maintain stable transmission characteristics, which may affect the performance of the near-infrared light, such as peak wavelength drift, which in turn affects the detection results of the accelerometer. Summary of the Invention
[0005] The object of the present invention is to provide a photoelectric accelerometer driving method and system based on multi-physical signal fusion to solve the problems raised in the above background technology.
[0006] To achieve the above objectives, the present invention provides the following technical solution: a photoelectric accelerometer driving method based on multi-physics signal fusion, comprising:
[0007] A multi-light source array component and a multi-light source receiving component are set, wherein the multi-light source receiving component sets a corresponding spectral range based on the multi-light source array component to obtain a target range item;
[0008] Obtain ambient temperature and humidity data, set the target temperature range and target humidity range, and obtain the target temperature item and target humidity item;
[0009] Determining whether the ambient temperature and humidity are within the target temperature and target humidity items; when the ambient temperature and humidity are within the target temperature and target humidity items, selecting a first target light as a base light based on the multi-light source array component, using the base light as the first light, and obtaining first light data from the multi-light source receiving component to obtain a first light item; and when the ambient temperature and humidity are not within the target temperature and target humidity items, selecting a second target light as a second light through a processing method, and obtaining second light data from the multi-light source receiving component to obtain a second light item;
[0010] By optimizing the second light item through the replacement method, the second light item takes over the first light item, completing the switching of the target light and ensuring that the light received by the multi-light source receiving component remains stable at all times;
[0011] Set the critical state, judge the multi-light source array component and the multi-light source receiving component through the judgment method, adjust the light of the multi-light source array component, realize the matching adjustment of the light, and improve the receiving stability of the multi-light source receiving component.
[0012] Furthermore, the multi-light source array assembly includes near-infrared light, mid-infrared light, and red light, and the method for obtaining the target range item includes:
[0013] Based on the multi-light source array component, near-infrared light, mid-infrared light, and red light are set as the first light source, the second light source, and the third light source respectively;
[0014] Acquire the band data of the first light source, the second light source, and the third light source to obtain a band information item;
[0015] Based on the band information item, a coverage range is set, the coverage range includes the band information item, and a target range item is obtained.
[0016] Furthermore, the method for obtaining the target temperature item and the target humidity item includes:
[0017] Acquire ambient temperature and humidity data through the target device to obtain ambient temperature items and ambient humidity items;
[0018] Based on the multi-light source array component, taking the first light source as the target light source, obtaining a target light source item;
[0019] Based on the target light source item, the temperature and humidity adaptation ranges of the target light source item are obtained, and then the target temperature item and the target humidity item are obtained.
[0020] Furthermore, the processing method includes:
[0021] Based on the target temperature item and the target humidity item, a first interval and a second interval are set respectively, the first interval is when the temperature and humidity are lower than the target temperature item and the target humidity item, and the second interval is when the temperature and humidity are higher than the target temperature item and the target humidity item;
[0022] Based on the multi-light source array component, matching the first interval and the second interval respectively to obtain the first interval light item and the second interval light item;
[0023] Determine the real-time interval segmentation of the ambient temperature and humidity, obtain the target interval item, and then obtain the target required light and the second target light.
[0024] Furthermore, the replacement method includes:
[0025] Set an acquisition threshold, which is time, and determine whether the duration of the second light item reaches the time threshold. When the duration of the second light item reaches the time threshold, turn off the first light and make the second light item take over the first light item.
[0026] Furthermore, the replacement method further includes:
[0027] Obtaining the pulse frequencies of the first light item and the second light item to obtain a first pulse item and a second pulse item;
[0028] Setting an acquisition range, and acquiring persistence information of the first pulse item and the second pulse item based on the acquisition range to obtain a first change item and a second change item;
[0029] The fluctuation data of the first change item and the second change item are judged. When the fluctuation data of the first change item is smaller than the fluctuation data of the second change item, the first light is turned off and the second light item takes over the first light item.
[0030] Furthermore, the critical state includes a fluctuation limit value and a time threshold, and the judgment method includes:
[0031] Based on the time threshold, it is determined whether the changes in ambient temperature and humidity have reached the fluctuation limit value. When the changes in ambient temperature and humidity have reached the fluctuation limit value within the time threshold, the change direction is taken as the target direction to obtain the target change item.
[0032] Furthermore, the light adjustment method of the multi-light source array assembly includes:
[0033] Based on the combination results of the target change item with the target temperature item and the target humidity item, at least four combination results are obtained, namely, the target change item is downward and lower than the target temperature item and the target humidity item, is between the target temperature item and the target humidity item and the target change item is downward, is between the target temperature item and the target humidity item and the target change item is upward, and the target change item is upward and higher than the target temperature item and the target humidity item, to obtain a combination result item;
[0034] Based on the combination result and the multi-light source array assembly, the first light source, the second light source, and the third light source are adjusted as an adjustment combination.
[0035] Furthermore, a photoelectric accelerometer driving system based on multi-physical signal fusion uses the above-mentioned photoelectric accelerometer driving method based on multi-physical signal fusion, including:
[0036] Composition module: setting a multi-light source array component and a multi-light source receiving component, and the multi-light source receiving component sets a corresponding spectral range based on the multi-light source array component;
[0037] Acquisition module: obtains ambient temperature and humidity data, and sets the target temperature range and target humidity range;
[0038] Processing module: determines whether the ambient temperature and humidity are within the target temperature range and the target humidity range. When the ambient temperature and humidity are within the target temperature range and the target humidity range, based on the multi-light source array component, selects a first target light as a base light, and uses the base light as the first light to obtain a first light item. When the ambient temperature and humidity are not within the target temperature range and the target humidity range, selects a second target light as a second light to obtain a second light item.
[0039] Adjustment module: Optimize the second light item so that the second light item takes over the first light item, complete the switching of the target light, set the critical state, judge the multi-light source array component and the multi-light source receiving component, adjust the light of the multi-light source array component, and realize the matching adjustment of the light.
[0040] Compared with the prior art, the present invention has the following beneficial effects:
[0041] The photoelectric accelerometer driving method and system based on multi-physical signal fusion sets a multi-light source array component and a multi-light source receiving component. The multi-light source array component is composed of near-infrared light, mid-infrared light, and red light. Under different conditions, the appropriate light is automatically selected so that the multi-light source receiving component can always receive a stable light source signal. In addition, by setting a critical state, which includes a fluctuation limit value and a time threshold, it is determined whether the multi-light source array component and the multi-light source receiving component have reached a critical state. When the fluctuation limit value is reached within the time threshold, the light of the multi-light source array component is adjusted through a matching method, thereby realizing matching adjustment of the light and improving the receiving stability of the multi-light source receiving component. BRIEF DESCRIPTION OF THE DRAWINGS
[0042] Figure 1 It is a schematic diagram of the overall process of the present invention;
[0043] Figure 2 is a schematic diagram of a second light source array assembly of the present invention;
[0044] Figure 3 Schematic diagram of the relationship between the first light item and the second light item of the present invention;
[0045] Figure 4 This is a schematic diagram of the first interval and the second interval of the present invention;
[0046] Figure 5 This is a schematic diagram of the interval allocation of temperature and humidity data of the present invention;
[0047] Figure 6 Schematic diagram of the sunshade structure of the present invention.
[0048] In the figure: 1, sunshade; 101, sunshade strip. DETAILED DESCRIPTION
[0049] The following will clearly and completely describe the technical solutions in the embodiments of the present invention in conjunction with the accompanying drawings. Obviously, the described embodiments are only part of the embodiments of the present invention, not all of the embodiments. Based on the embodiments of the present invention, all other embodiments obtained by ordinary technicians in this field without making creative efforts are within the scope of protection of the present invention.
[0050] In the application of photoelectric accelerometers, the near-infrared light emitted by light-emitting diodes has a narrow emission spectrum width, which is easy to match with the receiving spectrum width of photosensitive diodes, thus effectively improving the contrast of signals. In addition, near-infrared light near 850nm can be less attenuated in the atmosphere, so that reliable measurement results can be obtained under various environmental conditions. However, this advantage is not absolute. Under certain extreme operating conditions, the stability of near-infrared light faces severe tests. Under extreme temperature conditions, the peak wavelength of near-infrared light may drift, thereby affecting the photoelectric conversion efficiency of the photoelectric accelerometer. Under high temperature conditions, the luminous efficiency of light-emitting diodes may decrease, and even luminous attenuation may occur. At the same time, when receiving signals, photosensitive diodes may also be affected by temperature changes, resulting in reduced sensitivity. This situation will directly affect the strength of the signal and its ratio to noise, further damaging the accelerometer. The data acquisition accuracy of the meter, the change of humidity will also affect the near-infrared light transmission characteristics of the photoelectric accelerometer. In a high humidity environment, the presence of water vapor will cause light scattering and absorption, affecting the integrity of the signal. The technical solution provided by the present application sets a multi-light source array component and a multi-light source receiving component. The multi-light source array component is composed of near-infrared light, mid-infrared light, and red light. Under different conditions, it automatically selects appropriate light so that the multi-light source receiving component can always receive a stable light source signal, and by setting a critical state, the critical state includes a fluctuation limit value and a time threshold, to determine whether the multi-light source array component and the multi-light source receiving component have reached the critical state. When the fluctuation limit value is reached within the time threshold, the light of the multi-light source array component is adjusted by a matching method, thereby realizing the matching adjustment of the light and improving the receiving stability of the multi-light source receiving component. Specifically in the present application, Figure 1 As shown, steps S100-S500 are included.
[0051] Step S100: setting a multi-light source array component and a multi-light source receiving component. The multi-light source receiving component sets a corresponding spectrum range based on the multi-light source array component to obtain a target range item.
[0052] It should be noted that if Figure 2 As shown, the multi-light source array component includes near-infrared light, mid-infrared light and red light, and the method for obtaining the target range item includes: based on the multi-light source array component, setting the near-infrared light, mid-infrared light and red light as the first light source, the second light source and the third light source respectively; obtaining the band data of the first light source, the second light source and the third light source to obtain the band information item; based on the band information item, setting the coverage range, the coverage range includes the band information item, and obtaining the target range item.
[0053] During the specific implementation process, since the first light source, the second light source and the third light source are near-infrared light, mid-infrared light and red light respectively, the band data of the three are obtained respectively, among which the band data of near-infrared light is 850nm, the band data of mid-infrared light is 3000nm-5000nm, and the band data of red light is 630nm-660nm. At this time, the coverage range set is 630nm-5000nm, which includes the band information item.
[0054] Step S200: Acquire ambient temperature and humidity data, set a target temperature range and a target humidity range, and obtain a target temperature item and a target humidity item.
[0055] It should be noted that the method for obtaining the target temperature item and the target humidity item includes: obtaining the ambient temperature and humidity data respectively through the target device, the target device is a temperature sensor and a humidity sensor, and obtaining the ambient temperature item and the ambient humidity item; based on the multi-light source array component, taking the first light source as the target light source, obtaining the target light source item; based on the target light source item, obtaining the temperature and humidity adaptation range of the target light source item, and then obtaining the target temperature item and the target humidity item.
[0056] Specifically, since the first light source is near-infrared light, the target light source item is near-infrared light, and the temperature and humidity adaptation range of the near-infrared light is obtained. Since the band data of near-infrared light is 850nm, it is relatively insensitive to changes in humidity and temperature. Under most industrial and environmental conditions, such as temperature between -20℃ and 60℃ and humidity between 10% and 90%, near-infrared light can maintain stable transmission characteristics. Therefore, the target temperature item is -20℃-60℃, and the target humidity item is 10%-90%.
[0057] Step S300: Determine whether the ambient temperature and humidity are within the target temperature and target humidity.
[0058] It should be noted that when the ambient temperature and humidity are at the target temperature item and the target humidity item, based on the multi-light source array component, the first target light is selected as the basic light, and the basic light is used as the first light. The multi-light source receiving component obtains the first light data and obtains the first light item. The first target light is the first light source, that is, near-infrared light. At this time, the first light data obtained by the multi-light source receiving component is near-infrared light. When the ambient temperature and humidity are not at the target temperature item and the target humidity item, the second target light is selected as the second light through the processing method, and the multi-light source receiving component obtains the second light data and obtains the second light item.
[0059] It should be noted that if Figure 4As shown, the processing method includes: based on the target temperature item and the target humidity item, setting the first interval and the second interval respectively, the first interval is the temperature and humidity less than the target temperature item and the target humidity item, the second interval is the temperature and humidity greater than the target temperature item and the target humidity item, when the target temperature item and the target humidity item are -20℃-60℃ and 10%-90% respectively, at this time the first interval is the temperature less than -20℃ and the humidity less than 10%, and the second interval is the temperature greater than 60℃ and the humidity greater than 90%; based on the multi-light source array component, matching the first interval and the second interval respectively, obtaining the first interval light item and the second interval light item, the first interval light item is red light, and the second interval light item is mid-infrared light; judging the real-time interval segmentation of the ambient temperature and humidity, obtaining the target interval item, and then obtaining the target demand light, and obtaining the second target light.
[0060] In the specific implementation process, Figure 5 As shown, the temperature and humidity data obtained by the temperature sensor and the humidity sensor are -22°C and 5% respectively, which are allocated to the first interval. The light item in the first interval is red light, that is, the second target light is red light.
[0061] Step S400: Optimizing the second light item through the replacement method so that the second light item replaces the first light item, completing the switching of the target light, and ensuring that the light received by the multi-light source receiving component always remains stable.
[0062] It should be noted that the succession method includes: setting an acquisition threshold, the acquisition threshold is time, and the acquisition threshold is 10s, judging whether the duration of the second light item reaches the time threshold, when the duration of the second light item reaches the time threshold, turning off the first light, so that the second light item replaces the first light item.
[0063] Example 1
[0064] In the specific implementation process, it is necessary to obtain the rotation speed of an object by sticking a reflective sticker on the object. When the temperature is 25°C and the humidity is 50%, the first light item selected by the multi-light source array component is near-infrared light. When the object rotates one circle, the multi-light source receiving component receives the near-infrared light emitted by the multi-light source array component reflected by the reflective sticker. When the humidity of the detection environment drops from 50% to 8%, the target interval item is the first interval, and the light corresponding to the first interval is red light. Therefore, the second target light is red light. At this time, the multi-light source array component emits red light and near-infrared light at the same time. Through the set acquisition threshold, since the acquisition threshold is 10s, when the duration of the second target light, that is, the red light, reaches the acquisition threshold, the first light, that is, the near-infrared light, is extinguished, and the red light replaces the near-infrared light to continue detection.
[0065] It should be noted that if Figure 3As shown, the succession method also includes: obtaining the pulse frequency of the first light item and the second light item to obtain the first pulse item and the second pulse item; setting an acquisition range, the acquisition range is a time range, and the time range is 10s, based on the acquisition range, obtaining the duration information of the first pulse item and the second pulse item to obtain the first change item and the second change item; judging the fluctuation data of the first change item and the second change item, when the fluctuation data of the first change item is less than the fluctuation data of the second change item, turning off the first light and making the second light item replace the first light item.
[0066] Example 2
[0067] In the specific implementation process, Figure 6 As shown, a multi-light source array assembly, a sun visor 1 and a multi-light source receiving assembly are installed on the wheel of a certain vehicle. The sun visor 1 rotates with the rotation of the wheel and keeps synchronization with the rotation of the wheel. There are 19 evenly distributed sun visors 101 on the sun visor 1. When the sun visor 1 cannot block the light emitted by the multi-light source array assembly, the multi-light source receiving assembly will receive the light emitted by the multi-light source array assembly. When the temperature is 25°C and the humidity is 50%, the first light item selected by the multi-light source array assembly is near-infrared light. When the sun visor 1 rotates one circle, the multi-light source array assembly The light source receiving component will receive 20 pulse signals of the first light item. When the temperature changes to -25℃ and the humidity is 5%, the second light item is red. According to the set time range, within 10s, the multi-light source receiving component receives the pulse signal of the first light item 1999 times, that is, the first change item is 1999, and receives the pulse signal of the second light item 2000 times, that is, the second change item is 2000. At this time, the fluctuation data of the first change item is less than the fluctuation data of the second change item, even if the second light item replaces the first light item.
[0068] Step S500: setting a critical state, judging the multi-light source array component and the multi-light source receiving component through a judgment method, adjusting the light of the multi-light source array component, realizing matching adjustment of the light, and improving the receiving stability of the multi-light source receiving component.
[0069] It should be noted that the critical state includes the fluctuation limit value and the time threshold. The time threshold is 300s, and the fluctuation limit value is 50 of the difference between the target temperature item and the target humidity item, that is, the temperature fluctuation limit value is 40°C, and the humidity fluctuation limit value is 40%. The judgment method includes: based on the time threshold, judging whether the changes in ambient temperature and humidity reach the fluctuation limit value; when the changes in ambient temperature and humidity reach the fluctuation limit value within the time threshold, taking the change direction as the target direction, and obtaining the target change item.
[0070] During the specific implementation process, the multi-light source array assembly, sun visor 1 and multi-light source receiving assembly installed on the wheel of a vehicle obtained a temperature of 35°C and a humidity of 10%. Within the time threshold, the humidity data changed to 70%. At this time, the humidity change exceeded the humidity fluctuation limit value set by 40%, and the change direction was upward.
[0071] It should be noted that the lighting adjustment method of the multi-light source array component includes: based on the combination results of the target change item with the target temperature item and the target humidity item, at least four combination results are obtained, namely, the target change item is downward and lower than the target temperature item and the target humidity item, between the target temperature item and the target humidity item and the target change item is downward, between the target temperature item and the target humidity item and the target change item is upward, the target change item is upward and higher than the target temperature item and the target humidity item, to obtain a combination result item; based on the combination result item and the multi-light source array component, the first light source, the second light source and the third light source are adjusted as an adjustment combination, and the combination results are respectively: the target change item is downward and lower than the target temperature item and the target humidity item, combined with the third light source, between the target temperature item and the target humidity item and the target change item is downward, combined with the first light source and the third light source, between the target temperature item and the target humidity item and the target change item is upward, combined with the first light source and the second light source, the target change item is upward and higher than the target temperature item and the target humidity item, and combined with the first light source and the second light source.
[0072] Example 3
[0073] In the specific implementation process, the multi-light source array component, the sun visor 1 and the multi-light source receiving component installed on the wheel of a vehicle, within the time threshold, the humidity data changes from 10% to 70%. At this time, the humidity change exceeds the humidity fluctuation limit value set by 40%. At this time, the change direction is upward. Then, since the 70% humidity data does not exceed the target humidity item, the combination result of the target change item, the target temperature item and the target humidity item is: between the target change item, the target temperature item and the target humidity item, and the target change item is upward. At this time, the matching result is the first light source and the second light source.
[0074] A photoelectric accelerometer driving system based on multi-physics signal fusion uses the above-mentioned photoelectric accelerometer driving method based on multi-physics signal fusion, including: a composition module for setting a multi-light source array component and a multi-light source receiving component, wherein the multi-light source receiving component sets a corresponding spectral range based on the multi-light source array component; an acquisition module for acquiring ambient temperature and humidity data and setting a target temperature range and a target humidity range; a processing module for determining whether the ambient temperature and humidity are within the target temperature range and the target humidity range; when the ambient temperature and humidity are within the target temperature range and the target humidity range, selecting a first target light as a base light based on the multi-light source array component, and using the base light as the first light to obtain a first light item; when the ambient temperature and humidity are not within the target temperature range and the target humidity range, selecting a second target light as a second light to obtain a second light item; and an adjustment module for optimizing the second light item so that the second light item replaces the first light item, completing the switching of the target light, setting a critical state, determining the multi-light source array component and the multi-light source receiving component, and adjusting the light of the multi-light source array component to achieve coordinated light adjustment.
[0075] Although embodiments of the present invention have been shown and described, it will be understood by those skilled in the art that various changes, modifications, substitutions and variations may be made to these embodiments without departing from the principles and spirit of the invention, and that the scope of the invention is limited by the accompanying embodiments and their equivalents.
Claims
1. A photoelectric accelerometer driving method based on multi-physics signal fusion, characterized in that: include: A multi-light source array component and a multi-light source receiving component are set, wherein the multi-light source receiving component sets a corresponding spectral range based on the multi-light source array component to obtain a target range item; Obtain ambient temperature and humidity data, set the target temperature range and target humidity range, and obtain the target temperature item and target humidity item; Determining whether the ambient temperature and humidity are within the target temperature and target humidity items; when the ambient temperature and humidity are within the target temperature and target humidity items, selecting a first target light as a base light based on the multi-light source array component, using the base light as the first light, and obtaining first light data from the multi-light source receiving component to obtain a first light item; and when the ambient temperature and humidity are not within the target temperature and target humidity items, selecting a second target light as a second light through a processing method, and obtaining second light data from the multi-light source receiving component to obtain a second light item; By optimizing the second light item through the replacement method, the second light item takes over the first light item, completing the switching of the target light and ensuring that the light received by the multi-light source receiving component remains stable at all times; Set the critical state, judge the multi-light source array component and the multi-light source receiving component through the judgment method, adjust the light of the multi-light source array component, realize the matching adjustment of the light, and improve the receiving stability of the multi-light source receiving component; The multi-light source array assembly includes near-infrared light, mid-infrared light, and red light. The target range item acquisition method includes: Based on the multi-light source array component, near-infrared light, mid-infrared light, and red light are set as the first light source, the second light source, and the third light source respectively; Acquire the band data of the first light source, the second light source, and the third light source to obtain a band information item; Based on the band information item, a coverage range is set, the coverage range includes the band information item, and a target range item is obtained; The critical state includes a fluctuation limit value and a time threshold, and the judgment method includes: Based on the time threshold, determine whether the changes in ambient temperature and humidity reach the fluctuation limit value. When the changes in ambient temperature and humidity reach the fluctuation limit value within the time threshold, take the change direction as the target direction and obtain the target change item. The light adjustment method of the multi-light source array assembly includes: Based on the combination results of the target change item with the target temperature item and the target humidity item, at least four combination results are obtained, namely, the target change item is downward and lower than the target temperature item and the target humidity item, is between the target temperature item and the target humidity item and the target change item is downward, is between the target temperature item and the target humidity item and the target change item is upward, the target change item is upward, and is higher than the target temperature item and the target humidity item, to obtain a combination result item; Based on the combination result and the multi-light source array assembly, the first light source, the second light source, and the third light source are adjusted as an adjustment combination.
2. The photoelectric accelerometer driving method based on multi-physics signal fusion according to claim 1, characterized in that: The method for obtaining the target temperature item and the target humidity item includes: Acquire ambient temperature and humidity data through the target device to obtain ambient temperature items and ambient humidity items; Based on the multi-light source array component, taking the first light source as the target light source, obtaining a target light source item; Based on the target light source item, the temperature and humidity adaptation ranges of the target light source item are obtained, and then the target temperature item and the target humidity item are obtained.
3. The photoelectric accelerometer driving method based on multi-physics signal fusion according to claim 2, characterized in that: The processing method comprises: Based on the target temperature item and the target humidity item, a first interval and a second interval are set respectively, the first interval is when the temperature and humidity are lower than the target temperature item and the target humidity item, and the second interval is when the temperature and humidity are higher than the target temperature item and the target humidity item; Based on the multi-light source array component, matching the first interval and the second interval respectively to obtain the first interval light item and the second interval light item; Determine the real-time interval segmentation of the ambient temperature and humidity, obtain the target interval item, and then obtain the target required light and the second target light.
4. The photoelectric accelerometer driving method based on multi-physics signal fusion according to claim 1, characterized in that: The replacement method includes: Set an acquisition threshold, which is time, and determine whether the duration of the second light item reaches the time threshold. When the duration of the second light item reaches the time threshold, turn off the first light and make the second light item take over the first light item.
5. The photoelectric accelerometer driving method based on multi-physics signal fusion according to claim 1, characterized in that: The replacement method further includes: Obtaining the pulse frequencies of the first light item and the second light item to obtain a first pulse item and a second pulse item; Setting an acquisition range, and acquiring persistence information of the first pulse item and the second pulse item based on the acquisition range to obtain a first change item and a second change item; The fluctuation data of the first change item and the second change item are judged. When the fluctuation data of the first change item is smaller than the fluctuation data of the second change item, the first light is turned off and the second light item takes over the first light item.
6. A photoelectric accelerometer drive system based on multi-physics signal fusion, characterized by: A photoelectric accelerometer driving method based on multi-physics signal fusion according to any one of claims 1 to 5 is used, comprising: Composition module: setting a multi-light source array component and a multi-light source receiving component, and the multi-light source receiving component sets a corresponding spectral range based on the multi-light source array component; Acquisition module: obtains ambient temperature and humidity data, and sets the target temperature range and target humidity range; Processing module: determines whether the ambient temperature and humidity are within the target temperature range and the target humidity range. When the ambient temperature and humidity are within the target temperature range and the target humidity range, based on the multi-light source array component, selects a first target light as a base light, and uses the base light as the first light to obtain a first light item. When the ambient temperature and humidity are not within the target temperature range and the target humidity range, selects a second target light as a second light to obtain a second light item. Adjustment module: Optimize the second light item so that the second light item takes over the first light item, complete the switching of the target light, set the critical state, judge the multi-light source array component and the multi-light source receiving component, adjust the light of the multi-light source array component, and realize the matching adjustment of the light.
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