Upper and lower limb reaction sensitivity training system

By designing a response sensitivity training system that includes upper and lower limb training modules and data processing modules, the problems of insufficient adaptability and presentation of existing systems are solved, and a variety of training schemes and intuitive results are realized, which improves training efficiency and effect.

CN223158761UActive Publication Date: 2025-07-29SHENZHEN YINGCHI TECH CO LTD
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Patent Information

Application Number
CN202421357122.1
Authority / Receiving Office
CN · China
Patent Type
Utility models(China)
Current Assignee / Owner
Filing Date
2024-06-13
Publication Date
2025-07-29
Estimated Expiration
2034-06-13

AI Technical Summary

Technical Problem

Most of the existing reaction sensitivity training systems are only suitable for a certain sports, with a single training method and cannot intuitively display the training effect, and are not suitable for joint training of upper and lower limbs.

Method used

A training system for upper and lower limbs is designed, including upper limb training module, lower limb training module, data processing module and interactive module. Through these modules, users' upper and lower limb reaction data are collected and integrated, a variety of training solutions are provided, and the training results are visually displayed in the interactive module.

Benefits of technology

It realizes the use of multiple trainings based on the user's own choice plan to meet the needs of different sports events, quickly and intuitively display the training results, and improves the training efficiency and effect.

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Abstract

The utility model discloses an upper and lower limb reaction sensitivity training system, which performs training according to scheme configuration information selected by a user, and captures upper limb reaction data and lower limb reaction data of the user through an upper limb training module and a lower limb training module. The data processing module receives and integrates the upper limb reaction data and the lower limb reaction data to obtain training result information, and sends the training result information to the interaction module for display; by selecting the scheme configuration information, multiple schemes are realized to meet the test training requirements of the user on the upper and lower limbs in different sporting events, and the user can quickly and intuitively obtain a test result after training.
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Description

Technical Field

[0001] The utility model relates to the field of training equipment, in particular to a training system for the reaction sensitivity of upper and lower limbs. Background Art

[0002] With the development of the times, the demand for scientific training of different types of sports events is increasing continuously. Scientific training methods and conditions can make the training process of athletes and coaches more efficient and safer. At present, most sports still stay in the mode of "human formulation and human implementation", that is, the coach formulates a training plan and then guides the athlete to complete the training plan. Inevitably, there will be some unstable factors affecting the training results in this mode, resulting in slow training efficiency and unsatisfactory effects.

[0003] Currently, most of the existing reaction sensitivity training systems for upper and lower limbs have problems such as only being adapted to a certain kind of sport, only supporting upper limb or lower limb training, single training methods, and being unable to intuitively display the training results and effects of athletes. Content of the Utility Model

[0004] The purpose of the utility model is to provide a training system for the reaction sensitivity of upper and lower limbs in view of the technical problems existing in the background art.

[0005] To achieve the above technical purpose, the technical scheme adopted by the utility model is as follows:

[0006] A training system for the reaction sensitivity of upper and lower limbs, which includes an upper limb training module, a lower limb training module, a data processing module and an interaction module. The interaction module is used for human-computer interaction with users, providing scheme configuration information and result display. The data processing module is respectively communicatively connected with the upper limb training module, the lower limb training module and the interaction module. Among them, the scheme configuration information is used to record various training schemes for upper and lower limbs. The upper limb training module is used to collect upper limb reaction data according to the scheme configuration information. The lower limb training module is used to collect lower limb reaction data according to the scheme configuration information. Among them, the data processing module is used to read the scheme configuration information and drive the upper limb training module and the lower limb training module to execute the scheme configuration information. The data processing module is also used to integrate the upper limb reaction data and the lower limb reaction data to obtain training result information, and the interaction module displays the training result information as results.

[0007] Preferably, the interaction module includes a verification unit, a scheme configuration unit and a display unit. The verification unit is used to receive the user's instructions and verify the user's identity information. The scheme configuration unit is used to store the scheme configuration information. The display unit is used to display the scheme configuration information and the result display.

[0008] Preferably, the upper limb training module includes a fixing member and a plurality of first sensing nodes. The plurality of first sensing nodes are respectively installed at any position through the fixing member, and the first sensing nodes are used to obtain upper limb response data.

[0009] Preferably, the lower limb training module includes a region calibration unit and a plurality of scanning sensors. The region calibration unit is used to calibrate a region with a specified size as the training region, and the plurality of scanning sensors are respectively used to scan the training region from different angles to obtain lower limb response data.

[0010] Preferably, the display unit is further used to display a virtual image, and the content displayed in the virtual image is a virtualized training region.

[0011] Preferably, the interaction module further includes a scheme retrieval unit. The scheme configuration information includes historical scheme configuration information and custom scheme configuration. Among them, the scheme retrieval unit is used to search for historical scheme configuration information and custom scheme configuration.

[0012] Preferably, the first sensing node includes a buzzer and a warning light. According to the selected scheme configuration information of the user, the buzzer and the warning light give corresponding sound and light prompts. Among them, the first sensing node and the scanning sensor adopt the same sensing structure.

[0013] Preferably, the first sensing node further includes a touch sensor and a vibration sensor. The touch sensor is used to sense the touch of the user and send a feedback signal, and the vibration sensor is used to sense the vibration signal generated by the user.

[0014] Preferably, the first sensing node further includes a TOF infrared ranging sensor, and the TOF infrared ranging sensor is used to sense the approach of the user.

[0015] Compared with the prior art, the utility model has the following beneficial technical effects: Training is carried out according to the selected scheme configuration information by the user. The upper limb response data and the lower limb response data of the user are captured through the upper limb training module and the lower limb training module. The data processing module receives these upper limb response data and lower limb response data and integrates them to obtain training result information, and sends the training result information to the interaction module for display. By selecting the scheme configuration information, multiple schemes are realized to meet the test training requirements of the user's upper and lower limbs in different sports events. And after training, the user can quickly and intuitively obtain the test results. BRIEF DESCRIPTION OF THE DRAWINGS

[0016] Figure 1 is a schematic structural diagram of an embodiment of the utility model Figure 1 ;

[0017] Figure 2 is a schematic structural diagram of an embodiment of the utility model Figure 2 ;

[0018] Figure 3 This is a schematic structural diagram of the first induction node in the embodiment of the present utility model;

[0019] Figure 4 This is a usage schematic diagram of the training area calibrated by the area calibration unit in the embodiment of the present utility model.

[0020] Reference numerals in the drawings: 100 upper limb training module, 101 fixing member, 102 first induction node, 1021 reminder lamp, 1022 buzzer, 1023 touch sensor, 1024 vibration sensor, 1025 TOF infrared distance measuring sensor, 200 lower limb training module, 201 area calibration unit, 202 scanning sensor, 300 data processing module, 400 interaction module, 401 verification unit, 402 solution configuration unit, 403 display unit, 404 solution retrieval unit. Detailed implementation manners

[0021] It should be noted that, without conflict, the embodiments in the present utility model and the features in the embodiments may be combined with each other.

[0022] In the description of the present utility model, it should be understood that the orientation or positional relationship indicated by the terms "center", "longitudinal", "transverse", "upper", "lower", "front", "rear", "left", "right", "vertical", "horizontal", "top", "bottom", "inner", "outer", etc. is based on the orientation or positional relationship shown in the drawings, and is only for the convenience of describing the present utility model and simplifying the description, rather than indicating or implying that the device or component referred to must have a specific orientation, be constructed and operated in a specific orientation, and thus should not be construed as a limitation to the present utility model. In addition, the terms "first", "second", etc. are only used for descriptive purposes and cannot be understood as indicating or implying relative importance or implicitly indicating the quantity of the indicated technical features. Thus, the features defined with "first", "second", etc. may explicitly or implicitly include one or more features. In the description of the present utility model, unless otherwise specified, the meaning of "a plurality" is two or more.

[0023] In the description of the present utility model, it should be noted that, unless otherwise clearly defined and limited, the terms "installed", "connected", "connected" should be understood in a broad sense. For example, it may be a fixed connection, a detachable connection, or a specific connection; it may be a mechanical connection or an electrical connection; it may be directly connected or indirectly connected through an intermediate medium, and it may be the communication inside two components. For those of ordinary skill in the art, the specific meanings of the above terms in the present utility model can be understood according to specific situations.

[0024] The following will describe the specific embodiments of the present utility model in detail with reference to the drawings.

[0025] As Figures 1 - 4 shown, the present utility model provides an upper and lower limb reaction sensitivity training system, which includes an upper limb training module 100, a lower limb training module 200, a data processing module 300, and an interaction module 400. The interaction module 400 is used for human-computer interaction with the user, providing program configuration information and performance display. The data processing module 300 is communicatively connected to the upper limb training module 100, the lower limb training module 200, and the interaction module 400 respectively. Among them, the program configuration information is used to record various programs for training the upper and lower limbs. The upper limb training module 100 is used to collect upper limb reaction data according to the program configuration information. The lower limb training module 200 is used to collect lower limb reaction data according to the program configuration information. Among them, the data processing module 400 is used to read the program configuration information and drive the upper limb training module 100 and the lower limb training module 200 to execute the program configuration information. The data processing module 400 is also used to integrate the upper limb reaction data and the lower limb reaction data to obtain training result information. The interaction module 400 displays the training result information as performance.

[0026] Specific implementation manner: The upper and lower limb reaction sensitivity training system is applied to an upper and lower limb reaction sensitivity training device, where the reaction sensitivity training device includes a display device and a training venue. The interaction module 400 is built into the display device, and the display device displays the program configuration information and the training result information to the user together. When the user uses the upper and lower limb reaction sensitivity training system, the user logs in through the interaction module 400 and selects the required program configuration information. The data processing module 300 obtains the user information and the program configuration information and drives the upper limb training module 100 and the lower limb training module 200 to execute the program configuration information. When the user conducts reaction sensitivity training, the upper limb training module 100 and the lower limb training module 200 continuously obtain the user's upper limb reaction data and lower limb reaction data, and obtain and integrate these upper limb reaction data and lower limb reaction data through the data processing module 300 to obtain training result information. The interaction module 400 displays the training result information as performance through the display device so that the user can understand the upper and lower limb reaction data situation after training.

[0027] Furthermore, the interaction module 400 includes an authentication unit 401, a program configuration unit 402, and a display unit 403. The authentication unit 401 is used to receive the user's instructions and verify the user's identity information. The program configuration unit 402 is used to store the program configuration information. The display unit 403 is used to display the program configuration information and performance display.

[0028] The interaction module 400 further includes a program retrieval unit 404. The program configuration information includes historical program configuration information and custom program configuration. Among them, the program retrieval unit 404 is used to search for historical program configuration information and custom program configuration.

[0029] Specifically, when a user accesses the interaction module 400, they need to pass the authentication of the authentication unit 401. Among them, the authentication method can be to input the pre-registered account password or the pre-registered NFC. The data processing module 300 is also used to process the account information of each user. The solution configuration unit 402 opens a database for storing solution configuration information for each user account respectively. These databases are corresponding to each user one by one. After the user logs in, they can obtain their own database from the solution configuration unit 402 and find their own training solution in the database. Furthermore, the user can customize the training solution according to their own needs and record the determined customized solution configuration in their account. When initially logging in, they can quickly select the customized solution configuration for training, or customize multiple training solutions, and use the latest solution configuration as the preferred training solution for login. The others are recorded in the historical solution configuration information, and the user can obtain the historical solution configuration information through the solution retrieval unit 404.

[0030] Furthermore, the upper limb training module 100 includes a fixing member 101 and a plurality of first induction nodes 102. The plurality of first induction nodes 102 are respectively installed at any position through the fixing member 101. The first induction nodes 102 are used to obtain upper limb response data. The lower limb training module 200 includes a region calibration unit 201 and a plurality of scanning sensors 202. The region calibration unit 201 is used to calibrate a region of a specified size as the training region. The plurality of scanning sensors 202 are respectively used to scan the training region from different angles to obtain lower limb response data. The display unit 403 is also used to display a virtual image, and the content displayed by the virtual image is a virtualized training region.

[0031] Specifically, the user can customize the training area according to their own training needs. The placement of multiple scanning sensors 302 in the training area can also be arranged according to the training needs. The main thing to note is that the areas scanned by the multiple scanning sensors 302 need to completely cover the training area to facilitate obtaining the user's lower limb response data. And the above-mentioned arranged scheme can be recorded as a custom scheme configuration in the scheme configuration unit 402. Subsequently, the training area can be adjusted according to this custom scheme configuration. Also note that the first sensing node 102 can also be placed arbitrarily. Since the first sensing node 102 is used to collect upper limb response data, it is not limited to being placed on the ground. The fixing methods of the fixing member 101 include but are not limited to magnets, adhesives, welding, screw fastening, and buckle clamping, etc. The virtual screen is displayed on the display device. The actual content displayed on the virtual screen is mainly composed of a background and multiple light points. The background is a virtualized training area, and the multiple light points are certain sensing small areas scanned by the scanning sensor 202. The multiple light points will be randomly highlighted according to the scheme configuration information, which is used to prompt the user to go to the corresponding sensing small area according to the highlighted light points.

[0032] Furthermore, the lower limb training module 200 further includes a scanning floor mat laid in the training area. The first sensing node 102 includes a warning light 1021 and a buzzer 1022. According to the scheme configuration information selected by the user, the buzzer 1022 and the warning light 1021 give corresponding sound and light prompts. The first sensing node 102 further includes a touch sensor 1023 and a vibration sensor 1024. The touch sensor 1023 is used to sense the user's touch, and the vibration sensor 1024 is used to sense the vibration signal created by the user.

[0033] Based on the above refined embodiments, the specific implementation is as follows: The scanning mat is laid on the training ground to be used. It should be noted that the size of the scanning mat is determined according to the laying site. In this embodiment, a 7mX7m scanning mat is selected. The number of scanning sensors 202 is more than 2. In this embodiment, 2 scanning sensors 202 are taken as an example and are placed on two adjacent sides of the scanning mat. The intersection between the scanned areas by the two scanning sensors 202 is used as the lower limb reaction data acquisition area. At this time, a corresponding virtual image is generated in the display unit 403. Multiple first sensing nodes 102 are arranged at any position on the training ground according to user needs. After the user passes the identity verification and obtains the required solution configuration information, of course, another solution configuration can also be customized. After confirmation, the upper limb training module 100 and the lower limb training module 200 start the training work according to this solution configuration. For example, multiple first sensing nodes 102 randomly emit sound and light prompts, and the light points in the virtual image randomly highlight, driving the user to approach or touch the corresponding first sensing nodes 102 and sensing small areas. Among them, when the user is sensed by the touch sensor 1023 and / or the vibration sensor 1024 in the first sensing node 102, the corresponding buzzer 1022 and the warning light 1021 will turn off to prompt the user that the first sensing node 102 has been touched. Among them, the vibration sensor 1024 will execute a short vibration to remind, and then the next first sensing node 102 emits sound and light prompts. The solution configuration unit 402 continuously obtains the upper limb reaction data and the lower limb reaction data until the training ends, and integrates them to obtain the training result information, which is displayed to the user through the display unit 403. The user can quickly know the training results after the training.

[0034] Furthermore, the first sensing node 102 further includes a TOF infrared ranging sensor 1025, and the TOF infrared ranging sensor 1025 is used to sense the approach of the user.

[0035] Specifically, the TOF infrared ranging sensor 1025 can be used to replace the touch sensor 1023, reducing the user's touch of the first sensing node 102, accelerating the test process, and effectively improving the user's reaction sensitivity. Of course, the TOF infrared ranging sensor 1025 and the touch sensor 1023 can be used together.

[0036] The above are one or more implementation manners provided in combination with specific content, and it is not determined that the specific implementation of the present invention is only limited to these descriptions. Any method, structure, etc. that is similar or identical to the present invention, or any technical deduction or replacement made under the premise of the concept of the present invention, should be regarded as the protection scope of the present invention.

Claims

1. An upper and lower limb reaction sensitivity training system, characterized in that, Including: An upper limb training module (100), a lower limb training module (200), a data processing module (300), and an interaction module (400). The interaction module (400) is used for human-computer interaction with the user, providing program configuration information, and displaying results. The data processing module (300) is communicatively connected to the upper limb training module (100), the lower limb training module (200), and the interaction module (400) respectively. Among them, the program configuration information is used to record various programs for training the upper and lower limbs. The upper limb training module (100) is used to collect upper limb response data according to the program configuration information. The lower limb training module (200) is used to collect lower limb response data according to the program configuration information. Among them, the data processing module (400) is used to read the program configuration information, and drive the upper limb training module (100) and the lower limb training module (200) to execute the program configuration information. The data processing module (400) is also used to integrate the upper limb response data and the lower limb response data to obtain training result information, and the interaction module (400) displays the training result information as a result.

2. The upper and lower limb reaction sensitivity training system according to claim 1, wherein The interaction module (400) includes a verification unit (401), a program configuration unit (402), and a display unit (403). The verification unit (401) is used to receive the user's instructions and verify and record the user's identity information. The program configuration unit (402) is used to store program configuration information. The display unit (403) is used to display program configuration information and display results.

3. The upper and lower limb reaction sensitivity training system according to claim 2, characterized in that, The upper limb training module (100) includes a fixing member (101) and a plurality of first sensing nodes (102). The plurality of first sensing nodes (102) are respectively installed at any position through the fixing member (101). The first sensing node (102) is used to obtain upper limb response data.

4. A training system for the reaction sensitivity of upper and lower limbs according to claim 3, characterized in that, The lower limb training module (200) includes a region calibration unit (201) and a plurality of scanning sensors (202). The region calibration unit (201) is used to calibrate a region of a specified size as a training region. The plurality of scanning sensors (202) are respectively used to scan the training region from different angles to obtain lower limb response data.

5. The lower and upper limb reaction sensitivity training system according to claim 4, characterized in that, The display unit (403) is also used to display a virtual image, and the content displayed in the virtual image is the virtualized training region.

6. The upper and lower limb reaction sensitivity training system according to claim 2, characterized in that, The interaction module (400) further includes a program retrieval unit (404). The program configuration information includes historical program configuration information and custom program configuration. Among them, the program retrieval unit (404) is used to search for historical program configuration information and custom program configuration.

7. The upper and lower limb reaction sensitivity training system according to claim 3, characterized in that, The first sensing node (102) includes a warning light (1021) and a buzzer (1022). According to the program configuration information selected by the user, the buzzer (1022) and the warning light (1021) give corresponding sound and light prompts.

8. A system for training the reaction sensitivity of upper and lower limbs according to claim 7, characterized in that, The first sensing node (102) further includes a touch sensor (1023) and / or a vibration sensor (1024). The touch sensor (1023) is configured to sense a touch by a user, and the vibration sensor (1024) is configured to sense a vibration signal created by the user.

9. A training system for upper and lower limb reaction sensitivity according to claim 8, characterized in that, The first sensing node (102) further includes a TOF infrared ranging sensor (1025). The TOF infrared ranging sensor (1025) is configured to sense the approach of a user.