Shoe dryer control method, shoe dryer, electronic equipment and readable storage medium
By setting multiple drying positions in the shoe dryer and using sensors to acquire detection data to determine drying parameters, the problem of uneven drying in existing shoe dryers is solved, achieving a more efficient shoe drying effect.
Patent Information
- Application Number
- CN202511507196.8
- Authority / Receiving Office
- CN · China
- Patent Type
- Applications(China)
- Current Assignee / Owner
- Filing Date
- 2025-10-21
- Publication Date
- 2026-01-16
AI Technical Summary
Existing shoe dryers cannot provide personalized control over the humidity levels in different areas inside the shoe during the drying process, resulting in uneven drying and affecting the drying effect.
By setting multiple drying positions in the shoe dryer and installing sensors at each position to acquire position detection data, the corresponding drying parameters are determined based on this data, and the operation of the drying device is controlled to achieve targeted drying.
It improves the drying effect, ensuring that all parts of the shoes reach the ideal dry state, and enhances the uniformity and efficiency of drying.
Smart Images

Figure CN121348816A_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the field of shoe drying devices, and particularly relates to a shoe drying device control method, a shoe drying device, an electronic device and a readable storage medium. BACKGROUND
[0002] The existing shoe drying device is integrally arranged, and the shoe is dried by detecting the overall drying state in the shoe. However, in actual application, due to different humidity conditions in the shoe, there is often a relatively wet part in the shoe after the drying of the existing shoe drying device is completed, which affects the actual drying effect. SUMMARY
[0003] The main purpose of the present application is to provide a shoe drying device control method, a shoe drying device, an electronic device and a readable storage medium, which aims to solve the problem of poor drying effect of the shoe drying device in the prior art.
[0004] To achieve the above purpose, the present application provides a shoe drying device control method, which comprises the following steps: Obtaining position detection data collected by the shoe drying device at a plurality of drying positions; Determining drying parameters corresponding to each drying position according to the position detection data; Controlling the drying device corresponding to the drying position to operate at the drying parameters.
[0005] Optionally, the step of determining the drying parameters corresponding to each drying position according to the position detection data comprises: For each drying position, obtaining real-time humidity in the corresponding position detection data; Matching a target power corresponding to the real-time humidity, wherein the real-time humidity is positively correlated with the target power; Taking the target power as the drying parameter corresponding to the drying position.
[0006] Optionally, the step of determining the drying parameters corresponding to each drying position according to the position detection data comprises: Obtaining real-time humidity in each position detection data; Determining a power ratio corresponding to each drying position based on the real-time humidity; Determining a target power corresponding to each drying position according to the power ratio and the real-time humidity; Taking the target power as the drying parameter corresponding to the drying position.
[0007] Optionally, the step of obtaining position detection data collected by the shoe drying device at a plurality of drying positions comprises: Acquire the acquisition temperature and the acquisition humidity obtained by the dry shoe device at multiple drying positions; Determine the perceived deviation compensation corresponding to the acquisition temperature; Compensate the acquisition humidity by the perceived deviation compensation to obtain the real-time humidity; Take the real-time humidity as the position detection data.
[0008] Optionally, the acquiring the position detection data obtained by the dry shoe device at multiple drying positions comprises: For each drying position, predict the remaining drying duration according to the position detection data; Indicate the remaining drying duration.
[0009] Optionally, the predicting the remaining drying duration according to the position detection data comprises: Acquire the historical humidity and the real-time humidity in the position detection data; Calculate the humidity change slope according to the historical humidity and the real-time humidity; Determine the remaining drying duration according to the real-time humidity and the humidity change slope.
[0010] To achieve the above object, the present application further provides a dry shoe device, which comprises a processing module, multiple acquisition modules and multiple drying devices; the dry shoe device is provided with multiple drying positions, and the acquisition module and the drying device are arranged at each drying position; the output end of the acquisition module is connected with the input end of the processing module, and the output end of the processing module is connected with the control end of the drying device; The processing module is used for acquiring the position detection data obtained by the dry shoe device at multiple drying positions; Determine the drying parameter corresponding to each drying position according to the position detection data; Control the drying device corresponding to the drying position to operate at the drying parameter.
[0011] Optionally, the drying positions are arranged at positions corresponding to the toes, the arches and the heels of the feet respectively.
[0012] Optionally, the determining the drying parameter corresponding to each drying position according to the position detection data comprises: For each drying position, acquire the real-time humidity in the corresponding position detection data; Match the target power corresponding to the real-time humidity, wherein the real-time humidity is positively correlated with the target power; Take the target power as the drying parameter corresponding to the drying position.
[0013] Optionally, determining the drying parameters corresponding to each drying position based on the position detection data includes: Obtain the real-time humidity from the detection data at each of the aforementioned locations; The power ratio corresponding to each drying position is determined based on the real-time humidity. The target power corresponding to each drying position is determined based on the power ratio and the real-time humidity. The target power is used as the drying parameter corresponding to the drying position.
[0014] Optionally, acquiring the position detection data collected by the shoe dryer at multiple drying locations includes: The temperature and humidity were collected at multiple drying locations using the shoe dryer. Determine the sensing deviation compensation corresponding to the collected temperature; The real-time humidity is obtained by compensating for the collected humidity through the aforementioned perception deviation compensation. The real-time humidity is used as the location detection data.
[0015] Optionally, after acquiring the position detection data collected by the shoe dryer at multiple drying locations, the process includes: For each drying location, the remaining drying time is predicted based on the location detection data; The remaining drying time is indicated.
[0016] Optionally, predicting the remaining drying time based on the location detection data includes: Acquire historical humidity and real-time humidity from the location detection data; Calculate the slope of humidity change based on the historical humidity and the real-time humidity; The remaining drying time is determined based on the real-time humidity and the slope of the humidity change.
[0017] To achieve the above objectives, the present invention also provides an electronic device, the electronic device including a memory, a processor and a computer program stored in the memory and executable on the processor, wherein the computer program, when executed by the processor, implements the steps of the shoe dryer control method as described above.
[0018] To achieve the above objectives, the present invention also provides a computer-readable storage medium storing a computer program, which, when executed by a processor, implements the steps of the shoe dryer control method described above.
[0019] This invention proposes a shoe dryer control method, a shoe dryer, an electronic device, and a readable storage medium. The method involves acquiring position detection data collected by the shoe dryer at multiple drying positions; determining drying parameters corresponding to each drying position based on the position detection data; and controlling the drying device corresponding to each drying position to operate according to the drying parameters. By independently detecting different drying positions of the shoe dryer and specifically determining the drying parameters to be executed at each position based on the position detection data, the method enables targeted drying based on the humidity levels of different parts of the shoe, thereby meeting the specific drying needs of the shoes and improving the drying effect. Attached Figure Description
[0020] The accompanying drawings, which are incorporated in and form part of this specification, illustrate embodiments consistent with the invention and, together with the description, serve to explain the principles of the invention.
[0021] To more clearly illustrate the technical solutions in the embodiments of the present invention or the prior art, the drawings used in the description of the embodiments or the prior art will be briefly introduced below. Obviously, for those skilled in the art, other drawings can be obtained based on these drawings without creative effort.
[0022] Figure 1 This is a flowchart illustrating the first embodiment of the shoe dryer control method of the present invention; Figure 2 This is a detailed flowchart of the shoe dryer control method of the present invention; Figure 3 This is a schematic diagram of the module structure of the electronic device of the present invention. Detailed Implementation
[0023] It should be understood that the specific embodiments described herein are merely illustrative of the invention and are not intended to limit the invention. To enable those skilled in the art to better understand the present application, the technical solutions in the embodiments of the present application will be clearly and completely described below with reference to the accompanying drawings. Obviously, the described embodiments are only a part of the embodiments of the present application, and not all of them. Based on the embodiments in this application, all other embodiments obtained by those skilled in the art without creative effort should fall within the scope of protection of this application.
[0024] This invention provides a shoe dryer control method, referring to... Figure 1 , Figure 1 This is a flowchart illustrating the first embodiment of the shoe dryer control method of the present invention. The method includes the following steps: Step S10: Obtain position detection data collected by the shoe dryer at multiple drying locations; A shoe dryer is used to dry shoes; the shoe dryer in this application is an immersion shoe dryer, that is, the shoe dryer is placed inside the shoe to dry the shoe.
[0025] The drying positions are independent drying functions set on different parts of the shoe on the shoe dryer. The drying positions can be set according to actual needs, such as setting drying positions for the toe, arch, and heel. When setting the drying positions, they can be set according to the differences between the left and right feet. For example, the right side of the arch of the left foot is the arched part, and the left side of the arch of the right foot is the arched part. Therefore, when setting the drying positions, the drying position for the arch can be set to the right of the left foot and the left of the right foot.
[0026] The location detection data is the data obtained by detecting data at the drying location; the specific data types included in the location detection data can be set according to actual needs, such as humidity and temperature; different types of data can be detected by setting corresponding sensors, such as setting a temperature sensor to collect the temperature at the drying location, specifically an NTC (Negative Temperature Coefficient) temperature probe; setting a humidity sensor to collect the humidity at the drying location, specifically a high-precision humidity micro sensor.
[0027] Sensors are set at different drying positions to obtain position detection data for each drying position; multiple drying positions yield multiple position detection data. For example, if drying positions are set for the toe, arch, and heel respectively, then the toe position detection data is collected at the drying position corresponding to the toe; the arch position detection data is collected at the drying position corresponding to the arch; and the heel position detection data is collected at the drying position corresponding to the heel.
[0028] Step S20: Determine the drying parameters corresponding to each drying position based on the position detection data; The drying parameters are used to indicate the extent to which the drying function of the shoe dryer is being performed.
[0029] Understandably, location detection data indicates the humidity or drying status of a specific drying location. Therefore, by using location detection data, the drying requirements for that location can be clearly defined. Based on these requirements, the drying parameters corresponding to the drying location can be specifically controlled, and drying can be performed on that location using these parameters, thus effectively achieving the drying of the drying location.
[0030] Step S30: Control the drying device corresponding to the drying position to operate with the drying parameters.
[0031] After obtaining the drying parameters, the drying device corresponding to the drying position is controlled to operate according to the drying parameters to achieve heating of the drying position; specifically, the drying device can be controlled by an actuator.
[0032] The drying device is the component that provides the drying power for the shoe dryer; the specific type of drying device can be set according to actual needs, such as flexible PTC (Positive Temperature Coefficient) micro heating film, fan, etc.
[0033] It is understandable that the drying parameters for different drying locations are set based on the corresponding location detection data. Therefore, the drying parameters for different drying locations may be different, thereby achieving targeted drying for the drying location and ensuring the drying effect for locations with different humidity levels.
[0034] This embodiment independently detects different drying positions of the shoe dryer and determines the drying parameters to be executed at each position based on the location detection data. This allows for targeted drying based on the humidity of different parts of the shoe, thereby meeting the specific drying needs of the shoe and improving the drying effect.
[0035] Further details will follow. Figure 2 In the second embodiment of the shoe dryer control method of the present invention based on the first embodiment, step S20 includes the following steps: Step S21: For each drying location, obtain the real-time humidity from the corresponding location detection data; Step S22: Match the target power corresponding to the real-time humidity, wherein the real-time humidity is positively correlated with the target power; Step S23: Use the target power as the drying parameter corresponding to the drying position.
[0036] In this embodiment, the drying parameters are specifically controlled by the humidity at the drying location; the drying parameters are specifically the power of the drying device; taking the flexible PTC micro heating film as an example, the higher the operating power of the flexible PTC micro heating film, the higher the temperature of the flexible PTC micro heating film, resulting in a faster drying speed; conversely, the lower the operating power of the flexible PTC micro heating film, the lower the temperature of the flexible PTC micro heating film, resulting in a slower drying speed.
[0037] It is understandable that the higher the humidity at the drying location, the greater the degree of drying is required. At the same time, the power of the drying device determines the degree of drying. Therefore, by setting a positive correlation between real-time humidity and the power of the drying device, and by determining the power of the drying device based on the real-time humidity, we can obtain drying parameters that match the actual situation at the drying location and effectively dry the location.
[0038] The specific matching method between real-time humidity and power can be set according to actual needs. For example, the correspondence between humidity and power can be obtained through pre-calibration, and then the target power corresponding to the real-time humidity can be obtained by matching the correspondence after detecting the real-time humidity.
[0039] To ensure the stability and accuracy of drying, a non-linear relationship is set between humidity and power in this embodiment. Specifically, the humidity is divided into multiple humidity ranges, such as low humidity range, medium humidity range and high humidity range. The specific values of the humidity range division can be set according to actual needs, such as taking <30%RH as the low humidity range, 30~60%RH as the medium humidity range, and greater than 60%RH as the high humidity range. At the same time, power ranges can be set, such as low power range, medium power range, and high power range. It can be understood that the specific power range can be set based on the supported power of the shoe dryer. The higher the supported power of the shoe dryer, the wider the power range can be divided. For example, if the maximum supported power of the shoe dryer is 10W, then the low power range can be set to 1~3W, the medium power range to 3~6W, and the high power range to 6~10W. Or, if the maximum supported power of the shoe dryer is 20W, then the low power range can be set to 1~6W, the medium power range to 6~12W, and the high power range to 12~20W.
[0040] After setting the humidity and power ranges, the corresponding humidity and power ranges are associated based on their degree; for example, low humidity ranges are associated with low power ranges, medium humidity ranges with medium power ranges, and high humidity ranges with high power ranges. In low humidity ranges, the drying location is dried using the power corresponding to the low power range to maintain basic dryness while preventing overheating. In medium humidity ranges, the drying location is dried using the power corresponding to the medium power range to accelerate moisture evaporation while balancing drying efficiency. In high humidity ranges, the drying location is dried using the power corresponding to the high power range to achieve rapid dehumidification and prevent bacterial growth. In other words, this embodiment, by associating humidity and power ranges of the same degree, can perform different drying treatments for different humidity levels, meeting the drying needs of various humidity locations.
[0041] After detecting the real-time humidity, the humidity range where the real-time humidity is located is determined, and the corresponding power range is matched. Then, the target power is determined based on the power of the power range. For example, if the maximum support power of the shoe dryer is 10W, when the detected real-time humidity is 55%, the real-time humidity is in the humidity range of 30~60%RH, which is the medium humidity range. Therefore, the corresponding power range is the medium power range, and the power range is 3~6W. Then, the drying device is controlled to dry the drying position with 3~6W.
[0042] When implementing target power control, within the humidity range, the power can be fine-tuned based on the specific humidity level. For example, if the real-time humidity is in the medium humidity range of 30~60%RH, then within the 30~60%RH range, the higher the humidity, the higher the target power in the 3~6W range, and the lower the humidity, the lower the target power in the 3~6W range, thereby achieving more refined drying control.
[0043] In other embodiments, corresponding power values can be set for different humidity ranges, such as a power value of 1W for the low humidity range, a power value of 5W for the medium humidity range, and a power value of 8W for the high humidity range; after determining the humidity range where the real-time humidity is located, the target power is obtained by directly matching the power value corresponding to the humidity range.
[0044] Furthermore, in the third embodiment of the shoe dryer control method of the present invention based on the first embodiment of the present invention, step S20 includes the following steps: Step S24: Obtain the real-time humidity from the detection data of each location; Step S25: Determine the power ratio corresponding to each drying position based on the real-time humidity. Step S26: Determine the target power corresponding to each drying position based on the power ratio and the real-time humidity; Step S27: Use the target power as the drying parameter corresponding to the drying position.
[0045] The power ratio refers to the power allocation ratio corresponding to different drying positions.
[0046] It is understandable that the power of the shoe dryer is limited, such as 10W. However, in this embodiment, multiple drying positions need to be dried independently. Therefore, the total power required by multiple drying positions cannot exceed the maximum power of the shoe dryer. Thus, the power of different drying areas needs to be allocated based on the actual drying needs, so as to ensure the drying effect of each drying area while avoiding exceeding the maximum power of the shoe dryer.
[0047] Therefore, in this embodiment, the power ratio corresponding to the drying position is determined based on the real-time humidity, and then the target power corresponding to the drying position is specifically determined based on the power ratio.
[0048] It is understandable that the higher the real-time humidity, the higher the power required for drying. Therefore, the real-time humidity and power are positively correlated.
[0049] The power ratio can also be set corresponding to humidity ranges. For example, taking the low, medium, and high humidity ranges mentioned above, a corresponding power ratio can be set for each range. For instance, the power ratio for the low humidity range is 1, the power ratio for the medium humidity range is 2, and the power ratio for the high humidity range is 3. If the maximum power of the shoe dryer is 10W, and the real-time humidity at the first drying position is in the high humidity range, the real-time humidity at the second drying position is in the medium humidity range, and the real-time humidity at the third drying position is in the low humidity range, then the power ratio for the first drying position is 3, the power ratio for the second drying position is... 2. The power ratio corresponding to the third drying position is 1. At this time, the power required by the three drying positions is 3 + 2 + 1 = 6 units. Therefore, when the maximum power of the shoe dryer is 10W, the target power that the first drying position can be allocated is 3 / 6 × 10 = 5W; the target power that the second drying position can be allocated is 2 / 6 × 10 ≈ 3.3W; and the target power that the third drying position can be allocated is 1 / 6 × 10 ≈ 1.67W. At this time, the sum of the power of the three drying positions is 5 + 3.3 + 4.67 = 10. Therefore, the power of the drying positions is guaranteed not to exceed the maximum power of the shoe dryer, and at the same time, the drying performance of the shoe dryer can be utilized as much as possible to achieve drying as quickly as possible.
[0050] In other embodiments, since the drying area with higher humidity has higher drying requirements, in order to ensure overall drying efficiency, power allocation can be prioritized for the drying position corresponding to the highest humidity, and then the target power for other drying positions can be determined.
[0051] Taking the aforementioned low humidity range, medium humidity range, and high humidity range as examples; if the real-time humidity corresponding to the first drying position is in the high humidity range, the real-time humidity corresponding to the second drying position is in the medium humidity range, and the real-time humidity corresponding to the third drying position is in the low humidity range, then the real-time humidity corresponding to the first drying position is the highest. In this case, based on the power range settings in the aforementioned embodiments, the first drying position corresponds to a high power of 6~10W, the second drying position corresponds to a medium power range of 3~6W, and the third drying position corresponds to a low power range of 1~3W. Therefore, the power requirement of the first drying position is prioritized. If the first drying position is determined to require 8W of power, then 8W is directly used as the target power for the first drying position. At this time, 10-8=2W is left to be allocated to the second and third drying positions. Then, the target power for the two positions can be specifically allocated based on the power ratio between the second and third drying positions. For example, if the power ratio corresponding to the second drying position is 2 and the power ratio corresponding to the third drying position is 1, then the target power that the second drying position can be allocated is 2 / 3×2=1.33W; and the target power that the third drying position can be allocated is 1 / 3×2=0.67W.
[0052] It is understood that the purpose of setting the power ratio in this embodiment is to avoid the sum of the power of multiple drying positions exceeding the maximum power of the shoe dryer. When the sum of the power of multiple drying positions does not exceed the maximum power of the shoe dryer, the power can be directly allocated based on the preset power determination method. For example, taking the aforementioned low humidity range, medium humidity range, and high humidity range as examples: if the real-time humidity corresponding to the first drying position is in the medium humidity range, the real-time humidity corresponding to the second drying position is in the medium humidity range, and the real-time humidity corresponding to the third drying position is in the low humidity range, then the first drying position corresponds to a medium power range of 3~6W, and the second drying position corresponds to a low power range of 1~3W. The third drying position corresponds to a low power range of 1-3W. Taking the midpoint of each power range, the target power for the first drying position is 4.5W, the target power for the second drying position is 2W, and the target power for the third drying position is 2W. At this point, the sum of the target power for the three drying positions is 4.5 + 2 + 2 = 8.5W, which does not exceed the maximum power of the shoe dryer (10W). Therefore, the power obtained by matching the power range can be directly used as the target power for the corresponding drying position. However, if the power obtained by matching the power range is greater than the maximum power, the target power can be further determined by the power ratio method mentioned above to avoid exceeding the maximum power value of the shoe dryer.
[0053] Furthermore, in the fourth embodiment of the shoe dryer control method of the present invention based on the first embodiment of the present invention, step S10 includes the following steps: Step S11: Obtain the collected temperature and humidity data from multiple drying locations using the shoe dryer; Step S12: Determine the sensing deviation compensation corresponding to the collected temperature; Step S13: The collected humidity is compensated by the sensing deviation compensation to obtain the real-time humidity; Step S14: Use the real-time humidity as the location detection data.
[0054] The humidity collected is the actual humidity output by the humidity sensor.
[0055] The collected temperature is the actual temperature output by the temperature sensor.
[0056] It is understandable that ambient temperature can affect humidity acquisition results during humidity collection. For example, changes in ambient temperature can alter the detection baseline of the humidity sensor, leading to changes in the humidity detection results. Furthermore, ambient temperature can affect the performance of the moisture-sensitive material in the humidity sensor. Additionally, ambient temperature can also cause changes in the relative humidity in the air. Therefore, to avoid humidity deviations caused by temperature, this embodiment acquires the temperature at the drying location to obtain the acquisition temperature, and then compensates for the acquired humidity based on the acquisition temperature to obtain the real-time humidity, thereby ensuring the accuracy of the real-time humidity.
[0057] Perception bias compensation indicates the humidity detection bias caused at a specific temperature. Perception bias compensation can be determined in advance based on the actual temperature and humidity detection, and then correlated with the corresponding temperature. After the acquisition temperature is detected, the perception bias compensation corresponding to the acquisition temperature is matched based on the correlation, and the acquisition humidity is compensated by the perception bias compensation to obtain the real-time humidity.
[0058] In other embodiments, instead of compensating for humidity with temperature, the temperature can be included in the location detection data. That is, the collected humidity is taken as real-time humidity, and the location detection data includes both the collected temperature and the real-time humidity. When determining the target power corresponding to the drying location, the target power is determined by combining the collected temperature and the real-time humidity. The specific settings can be analogous to the method of determining the target power based on real-time humidity in the aforementioned embodiments, such as setting a temperature range for the collected temperature, similar to setting the humidity range. The determination of the target power is set as the joint matching of the temperature range and the humidity range.
[0059] Furthermore, in the fifth embodiment of the shoe dryer control method of the present invention based on the first embodiment of the present invention, step S10 is followed by the following step: Step S40: For each drying position, predict the remaining drying time based on the position detection data; Step S50: Indicate the remaining drying time.
[0060] The predicted remaining drying time is the estimated remaining time required to complete the drying task.
[0061] In practical applications, users may need to know when drying will be completed; therefore, in this embodiment, the remaining drying time is predicted and indicated, thereby reminding the user.
[0062] Understandably, location detection data reflects the drying status at a specific drying location, and therefore, it is possible to predict the remaining drying time using location detection data.
[0063] The specific method for indicating the remaining drying time can be set according to actual needs. For example, a display can be set on the shoe dryer to show the predicted remaining drying time for each drying position. Alternatively, a communication module can be set on the shoe dryer, and the specific type of communication module can be set according to actual needs, such as WiFi or Bluetooth. The shoe dryer sends the obtained remaining drying time to the connected user terminal, such as a mobile phone, through the communication module, and the corresponding application on the user terminal displays the predicted remaining drying time for each drying position.
[0064] The shoe dryer can also send relevant parameters to a connected user terminal via a communication module to display the drying status during the drying process, such as real-time humidity, collection temperature, and target power for each drying zone. When displaying humidity, it can be based on the specific real-time humidity status. For example, if the maximum real-time humidity at multiple drying locations exceeds a first threshold, a red alarm can be displayed and vibration can be emitted to remind the user that the current shoe humidity is too high. If the maximum real-time humidity at multiple drying locations is less than a second threshold, a green status can be displayed and a silent display can be established. The second threshold is less than the first threshold, and the specific values of the first and second thresholds can be set according to actual needs, such as the first threshold being 60% and the second threshold being 30%. After displaying the data, the user's activity status can also be detected. It's understood that if the user is exercising while wearing the shoes, the moisture inside the shoes may increase, thus extending the remaining drying time. Therefore, a compensation factor can be obtained based on the user's activity status, and the remaining drying time can be updated using this factor. The compensation factor is positively correlated with the intensity of the activity, and the specific correlation between the compensation factor and the activity status can be determined based on actual measurements.
[0065] Further, step S50 includes the following steps: Step S51: Obtain historical humidity and real-time humidity from the location detection data; Step S52: Calculate the humidity change slope based on the historical humidity and the real-time humidity; Step S53: Determine the remaining drying time based on the real-time humidity and the slope of the humidity change.
[0066] Historical humidity refers to the humidity collected during this drying process. Specifically, historical humidity can be expressed as humidity associated with a specific collection time. For example, a collection period can be set, such as 30 seconds, to collect humidity data every 30 seconds to obtain real-time humidity. Then, the humidity change slope is calculated based on the humidity collected in each collection period. In practical applications, the overall humidity change slope can be calculated based on all historical humidity data, or it can be calculated based on the previously collected humidity and the real-time humidity. For example, to calculate the humidity change slope based on the previously collected humidity and the real-time humidity, first calculate the difference between the previously collected humidity and the real-time humidity, then divide the difference by the collection period to obtain the corresponding humidity change slope.
[0067] The slope of humidity change indicates the rate of humidity change. Therefore, the time to reach the required humidity level can be inferred from the slope of humidity change, thus enabling the prediction of the remaining drying time.
[0068] If a drying humidity indicator is set in advance to indicate that drying is complete, after obtaining the humidity change slope, the time when the real-time humidity reaches the drying humidity is calculated based on the humidity change slope, and this time is used as the remaining drying time. In practical applications, other algorithms can also be set to further refine the determination of the remaining drying time.
[0069] After obtaining the humidity change slope, it can be determined whether the humidity change slope is less than the first slope threshold or greater than the second slope threshold, wherein the second slope threshold is greater than the first slope threshold. If the humidity change slope is less than the first slope threshold, it is considered that the power corresponding to the current drying position is too low and the expected drying effect has not been achieved. Therefore, the power corresponding to the drying position can be increased. Specifically, it can be increased by a fixed step size. For example, if the step size is set to 1W, the power of the drying device at the corresponding drying position will be increased by 1W when the humidity change slope is less than the first slope threshold. When the slope of humidity change is greater than the second slope threshold, it is considered that the current humidity decrease rate is too fast and the power setting is too high, which may easily lead to accidents. Therefore, it is necessary to reduce the power corresponding to the drying position. Specifically, it can be reduced by a fixed step size. For example, if the step size is set to 1W, the power of the drying device at the corresponding drying position will be reduced by 1W when the slope of humidity change is greater than the second slope threshold.
[0070] At the same time, the temperature can be detected. When the temperature exceeds the temperature threshold, it is considered too high and overheat protection is activated, which may easily lead to accidents. Therefore, it is necessary to reduce the power of the corresponding drying position.
[0071] It should be noted that, for the sake of simplicity, the foregoing method embodiments are all described as a series of actions. However, those skilled in the art should understand that this application is not limited to the described order of actions, as some steps may be performed in other orders or simultaneously according to this application. Furthermore, those skilled in the art should also understand that the embodiments described in the specification are preferred embodiments, and the actions and modules involved are not necessarily essential to this application.
[0072] Through the above description of the embodiments, those skilled in the art can clearly understand that the methods according to the above embodiments can be implemented by means of software plus necessary general-purpose hardware platforms. Of course, they can also be implemented by hardware, but in many cases the former is a better implementation method. Based on this understanding, the technical solution of this application, in essence, or the part that contributes to the prior art, can be embodied in the form of a software product. This computer software product is stored in a storage medium (such as ROM / RAM, magnetic disk, optical disk), and includes several instructions to cause a terminal device (which may be a mobile phone, computer, server, or network device, etc.) to execute the methods described in the various embodiments of this application.
[0073] This application also provides a shoe dryer for implementing the above-described shoe dryer control method. The shoe dryer includes a processing module, multiple acquisition modules, and multiple drying devices. The shoe dryer is provided with multiple drying positions, and the acquisition module and the drying device are provided at each drying position. The output terminal of the acquisition module is connected to the input terminal of the processing module, and the output terminal of the processing module is connected to the control terminal of the drying device.
[0074] The processing module is used to acquire position detection data collected by the shoe dryer at multiple drying locations; The drying parameters corresponding to each drying position are determined based on the position detection data. The drying device corresponding to the drying position is controlled to operate with the drying parameters.
[0075] A shoe dryer is used to dry shoes; the shoe dryer in this application is an immersion shoe dryer, that is, the shoe dryer is placed inside the shoe to dry the shoe.
[0076] The drying positions are independent drying functions set on different parts of the shoe on the shoe dryer. The drying positions can be set according to actual needs, such as setting drying positions for the toe, arch, and heel. When setting the drying positions, they can be set according to the differences between the left and right feet. For example, the right side of the arch of the left foot is the arched part, and the left side of the arch of the right foot is the arched part. Therefore, when setting the drying positions, the drying position for the arch can be set to the right of the left foot and the left of the right foot.
[0077] The location detection data is the data obtained by data detection at the drying location; the specific data types included in the location detection data can be set according to actual needs, such as humidity and temperature; different types of data can be detected by setting corresponding sensors, such as setting a temperature sensor to collect the temperature at the drying location, and setting a humidity sensor to collect the humidity at the drying location.
[0078] Sensors are set at different drying positions to obtain position detection data for each drying position; multiple drying positions yield multiple position detection data. For example, if drying positions are set for the toe, arch, and heel respectively, then the toe position detection data is collected at the drying position corresponding to the toe; the arch position detection data is collected at the drying position corresponding to the arch; and the heel position detection data is collected at the drying position corresponding to the heel.
[0079] The drying parameters are used to indicate the extent to which the drying function of the shoe dryer is being performed.
[0080] Understandably, location detection data indicates the humidity or drying status of a specific drying location. Therefore, by using location detection data, the drying requirements for that location can be clearly defined. Based on these requirements, the drying parameters corresponding to the drying location can be specifically controlled, and drying can be performed on that location using these parameters, thus effectively achieving the drying of the drying location.
[0081] After obtaining the drying parameters, the drying device corresponding to the drying position is controlled to operate according to the drying parameters to achieve heating of the drying position.
[0082] The drying device is the component that provides the drying power for the shoe dryer; the specific type of drying device can be set according to actual needs, such as flexible PTC (Positive Temperature Coefficient) micro heating film, fan, etc.
[0083] It is understandable that the drying parameters for different drying locations are set based on the corresponding location detection data. Therefore, the drying parameters for different drying locations may be different, thereby achieving targeted drying for the drying location and ensuring the drying effect for locations with different humidity levels.
[0084] By independently detecting different drying positions of the shoe dryer and determining the specific drying parameters to be executed at each position based on the detection data, the dryer can target the drying process according to the humidity of different parts of the shoe, thereby meeting the specific drying needs of the shoe and improving the drying effect.
[0085] Furthermore, the drying positions are respectively set at the toes, arches, and heels of the shoe dryer.
[0086] Further, determining the drying parameters corresponding to each drying position based on the position detection data includes: For each drying location, obtain the real-time humidity from the corresponding location detection data; Match the target power to the real-time humidity, wherein the real-time humidity is positively correlated with the target power; The target power is used as the drying parameter corresponding to the drying position.
[0087] Further, determining the drying parameters corresponding to each drying position based on the position detection data includes: Obtain the real-time humidity from the detection data at each of the aforementioned locations; The power ratio corresponding to each drying position is determined based on the real-time humidity. The target power corresponding to each drying position is determined based on the power ratio and the real-time humidity. The target power is used as the drying parameter corresponding to the drying position.
[0088] Furthermore, acquiring the position detection data collected by the shoe dryer at multiple drying locations includes: The temperature and humidity were collected at multiple drying locations using the shoe dryer. Determine the sensing deviation compensation corresponding to the collected temperature; The real-time humidity is obtained by compensating for the collected humidity through the aforementioned perception deviation compensation. The real-time humidity is used as the location detection data.
[0089] Further, the step of acquiring the position detection data collected by the shoe dryer at multiple drying locations includes: For each drying location, the remaining drying time is predicted based on the location detection data; The remaining drying time is indicated.
[0090] Furthermore, the step of predicting the remaining drying time based on the location detection data includes: Acquire historical humidity and real-time humidity from the location detection data; Calculate the slope of humidity change based on the historical humidity and the real-time humidity; The remaining drying time is determined based on the real-time humidity and the slope of the humidity change.
[0091] Reference Figure 3In terms of hardware structure, the electronic device may include components such as a communication module 10, a memory 20, and a processor 30. In the electronic device, the processor 30 is connected to both the memory 20 and the communication module 10. The memory 20 stores a computer program, which is executed by the processor 30. When the computer program is executed, it implements the steps of the above-described method embodiments.
[0092] The communication module 10 can connect to external communication devices via a network. The communication module 10 can receive requests from the external communication devices and can also send requests, instructions, and information to the external communication devices. The external communication devices can be other electronic devices, servers, or IoT devices, such as televisions, etc.
[0093] The memory 20 can be used to store software programs and various data. The memory 20 may primarily include a program storage area and a data storage area. The program storage area may store the operating system, at least one application program required for a function (such as acquiring position detection data collected by the shoe dryer at multiple drying positions), etc.; the data storage area may include a database, and may store data or information created based on system usage. Furthermore, the memory 20 may include high-speed random access memory, and may also include non-volatile memory, such as at least one disk storage device, flash memory device, or other volatile solid-state storage device.
[0094] The processor 30 is the control center of the electronic device. It connects various parts of the electronic device via various interfaces and lines. By running or executing software programs and / or modules stored in the memory 20, and by calling data stored in the memory 20, it performs various functions and processes data, thereby providing overall monitoring of the electronic device. The processor 30 may include one or more processing units; optionally, the processor 30 may integrate an application processor and a modem processor. The application processor mainly handles the operating system, user interface, and applications, while the modem processor mainly handles wireless communication. It is understood that the modem processor may not be integrated into the processor 30.
[0095] although Figure 3 Not shown, but the above-described electronic device may further include a circuit control module for connecting to a power supply to ensure the normal operation of other components. Those skilled in the art will understand that... Figure 3 The electronic device structure shown does not constitute a limitation on the electronic device and may include more or fewer components than shown, or combine certain components, or have different component arrangements.
[0096] The present invention also proposes a computer-readable storage medium having a computer program stored thereon. The computer-readable storage medium may be... Figure 3 The memory 20 in the electronic device may also be at least one of ROM (Read-Only Memory) / RAM (Random Access Memory), magnetic disk, optical disk, etc. The computer-readable storage medium includes a number of instructions to cause a terminal device with a processor (which may be a television, automobile, mobile phone, computer, server, terminal, or network device, etc.) to execute the methods described in the various embodiments of the present invention.
[0097] In this invention, the terms "first," "second," "third," "fourth," and "fifth" are used for descriptive purposes only and should not be construed as indicating or implying relative importance. Those skilled in the art can understand the specific meaning of the above terms in this invention according to the specific circumstances.
[0098] In the description of this specification, the references to terms such as "one embodiment," "some embodiments," "example," "specific example," or "some examples," etc., indicate that a specific feature, structure, material, or characteristic described in connection with that embodiment or example is included in at least one embodiment or example of the present invention. In this specification, the illustrative expressions of the above terms do not necessarily refer to the same embodiment or example. Furthermore, the specific features, structures, materials, or characteristics described may be combined in any suitable manner in one or more embodiments or examples. Moreover, without contradiction, those skilled in the art can combine and integrate the different embodiments or examples described in this specification, as well as the features of different embodiments or examples.
[0099] Although embodiments of the present invention have been shown and described above, the scope of protection of the present invention is not limited thereto. It is understood that the above embodiments are exemplary and should not be construed as limiting the present invention. Those skilled in the art can make changes, modifications, and substitutions to the above embodiments within the scope of the present invention, and such changes, modifications, and substitutions should all be covered within the scope of protection of the present invention. Therefore, the scope of protection of the present invention should be determined by the scope of the claims.
Claims
1. A shoe dryer control method characterized by, The shoe dryer control method comprises: acquiring position detection data collected by the shoe dryer at multiple drying positions; determining drying parameters corresponding to each of the drying positions according to the position detection data; controlling drying devices corresponding to the drying positions to operate at the drying parameters.
2. The shoe dryer control method of claim 1, wherein, The determining of the drying parameters corresponding to each of the drying positions according to the position detection data comprises: for each of the drying positions, acquiring real-time humidity in the corresponding position detection data; matching a target power corresponding to the real-time humidity, wherein the real-time humidity is positively correlated with the target power; taking the target power as the drying parameter corresponding to the drying position.
3. The shoe dryer control method of claim 1, wherein, The determining of the drying parameters corresponding to each of the drying positions according to the position detection data comprises: acquiring real-time humidity in each of the position detection data; determining a power ratio corresponding to each of the drying positions based on the real-time humidity; determining a target power corresponding to each of the drying positions according to the power ratio and the real-time humidity; taking the target power as the drying parameter corresponding to the drying position.
4. The shoe dryer control method of claim 1, wherein, The acquiring of the position detection data collected by the shoe dryer at multiple drying positions comprises: acquiring collection temperature and collection humidity collected by the shoe dryer at multiple drying positions; determining a perception deviation compensation corresponding to the collection temperature; compensating the collection humidity by the perception deviation compensation to obtain real-time humidity; taking the real-time humidity as the position detection data.
5. The shoe dryer control method of claim 1, wherein, After the acquiring of the position detection data collected by the shoe dryer at multiple drying positions, the method further comprises: for each of the drying positions, predicting a remaining drying duration according to the position detection data; indicating the remaining drying duration.
6. The shoe dryer control method of claim 5, wherein, The predicting of the remaining drying duration according to the position detection data comprises: acquiring historical humidity and real-time humidity in the position detection data; calculating a humidity change slope according to the historical humidity and the real-time humidity; determining the remaining drying duration according to the real-time humidity and the humidity change slope.
7. A shoe dryer characterized by, The shoe dryer comprises a processing module, multiple collection modules, and multiple drying devices; the shoe dryer is provided with multiple drying positions, and the collection module and the drying device are arranged at each of the drying positions; an output end of the collection module is connected to an input end of the processing module, and an output end of the processing module is connected to a control end of the drying device.
8. The shoe dryer of claim 7, wherein, The drying positions corresponding to the positions of the toes, the arch, and the heel of the foot are arranged on the shoe dryer.
9. An electronic device, comprising: The electronic device comprises a memory, a processor, and a computer program stored on the memory and executable on the processor, and the computer program is executed by the processor to implement the steps of the shoe dryer control method according to any one of claims 1 to 6.
10. A computer-readable storage medium, characterized in that, The computer readable storage medium stores a computer program, and the computer program is executed by the processor to implement the steps of the shoe dryer control method according to any one of claims 1 to 6.