Vehicle control method, system, apparatus, electronic device, and vehicle
By working together with wearable smart devices and vehicle controllers, the door lock status can be monitored and adjusted in real time, which solves the safety hazards when the driver is resting in the passenger seat and ensures that the driver cannot start or enter the vehicle when he is unwell, thus achieving safety for both the vehicle and the driver.
Patent Information
- Application Number
- CN202310530190.7
- Authority / Receiving Office
- CN · China
- Patent Type
- Patents(China)
- Current Assignee / Owner
- Filing Date
- 2023-05-11
- Publication Date
- 2025-12-19
- Estimated Expiration
- 2043-05-11
AI Technical Summary
In the existing technology, when the driver is resting in the passenger seat or other places other than the driver's seat, vital signs cannot be monitored, which may lead to dangerous situations where the driver's vital signs are abnormal but he still has to drive the vehicle.
Wearable smart devices monitor the driver's vital signs and wake up the vehicle controller when abnormalities occur, controlling the door lock status and vehicle start status to ensure that the driver cannot enter or start the vehicle when he is unwell. The server verifies subsequent feedback information and adjusts the locking status.
It enables real-time monitoring of the driver's vital signs while the vehicle is in sleep mode, preventing the driver from forcing themselves to drive when they are unwell, thus ensuring the safety of both the vehicle and the driver.
Smart Images

Figure CN116704648B_ABST
Abstract
Description
TECHNICAL FIELD
[0001] The present application relates to the technical field of vehicles, in particular to a vehicle control method, system, device, electronic equipment and vehicle. BACKGROUND
[0002] The personal safety of the driver is a key factor to ensure the safe driving of the vehicle. In the related art, a corresponding sensor is often integrated on the steering wheel or the main driver seat in the vehicle to monitor the vital signs of the driver to ensure the safe driving of the vehicle.
[0003] However, when the driver rests in the co-driver seat or other positions except the main driver seat, the vital signs are often not monitored. If the vital signs of the driver are abnormal during this process, there is a potential risk that the driver's vital signs are abnormal but still drives the vehicle. Therefore, how to ensure the safe driving of the vehicle is still a problem to be improved in the field. SUMMARY
[0004] The present application provides a vehicle control method, system, device, electronic equipment and vehicle to solve the problem of low driving safety of the vehicle in the prior art, and to realize the safe driving of the vehicle and the personal safety protection of the driver.
[0005] The present application provides a vehicle control method applied to a controller, comprising:
[0006] When the vehicle is in a sleep state, a wake-up signal sent by a wearable smart device is received to wake up the controller; the wearable smart device is used to monitor the current vital sign data of the driver; the wake-up signal is sent when the current vital sign data is abnormal;
[0007] After the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired;
[0008] When the position of the wearable smart device represents that the driver is outside the vehicle, the vehicle door lock is controlled to be in an unlockable state, and the current vital sign data is uploaded to a server;
[0009] When the feedback information of the server received represents that the current vital sign data has been verified to be normal for driving, the vehicle door lock is controlled to be in an unlockable state.
[0010] According to the vehicle control method provided by the present application, after the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired, further comprising:
[0011] When the position of the wearable smart device represents that the driver is inside the vehicle, the vehicle is controlled to be in an unstartable state, and the current vital sign data is uploaded to a server;
[0012] When the feedback information of the server received represents that the current vital sign data has been verified to be normal for driving, the vehicle is controlled to be in a startable state.
[0013] According to the vehicle control method provided by the application, if the current vital sign data is abnormal, the wearable smart device is controlled to issue a warning prompt.
[0014] According to the vehicle control method provided by the application, the method further comprises:
[0015] When the vehicle is in a powered-on state, the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device are acquired;
[0016] It is determined whether the current vital sign data is abnormal;
[0017] If the current vital sign data is abnormal, a warning signal is issued.
[0018] According to the vehicle control method provided by the application, the wearable smart device comprises a Bluetooth module, and the Bluetooth module is provided with a Bluetooth key;
[0019] When the vehicle is in a sleep state, after the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired, comprising: after the controller is woken up, the controller establishes a Bluetooth connection with the Bluetooth module, and the current vital sign data is received and the position of the wearable smart device is determined based on the Bluetooth connection;
[0020] The vehicle door lock is controlled to be in an ununlockable state, comprising: the vehicle door lock is controlled to be unlocked by the Bluetooth key;
[0021] When the vehicle is in a powered-on state, the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device are acquired, comprising: after the controller establishes a Bluetooth connection with the Bluetooth module, the current vital sign data is acquired and the position of the wearable smart device is determined based on the Bluetooth connection.
[0022] The application further provides a vehicle control system based on the vehicle control method according to any one of the above, comprising a wearable smart device, a controller and a server;
[0023] The wearable smart device is in communication connection with the controller, and the controller is in communication connection with the server.
[0024] The wearable smart device is used for monitoring current vital sign data of a driver and monitoring whether the vehicle is in a dormant state; when the vehicle is in the dormant state, the wearable smart device is used for sending a wake-up signal to the controller to wake up the controller according to the current vital sign data with an abnormality;
[0025] The controller is used for sending the received current vital sign data to the server.
[0026] The server is used for sending feedback information indicating that the current vital sign data has been verified to be normal for driving to the controller.
[0027] According to the vehicle control system provided by the application, the wearable smart device comprises at least one sensor and a Bluetooth module.
[0028] The at least one sensor is used for monitoring the current vital sign data of a driver.
[0029] The wearable smart device establishes a Bluetooth connection with the controller through the Bluetooth module, and the Bluetooth module is used for transmitting the current vital sign data and determining the position of the wearable smart device.
[0030] The Bluetooth module further comprises a Bluetooth key, and the Bluetooth key can open a door lock of the vehicle when the current vital sign data is normal.
[0031] The application further provides a vehicle control device, comprising:
[0032] A wake-up module is used for receiving a wake-up signal sent by a wearable smart device to perform self-wake-up of the controller when a vehicle is in a dormant state.
[0033] The wearable smart device is used for monitoring current vital sign data of a driver, and the wake-up signal is sent when the current vital sign data has an abnormality.
[0034] An acquisition module is used for receiving the current vital sign data and acquiring the position of the wearable smart device after the controller is woken up.
[0035] A first control module is used for controlling a door lock of the vehicle to be in an unlockable state when the position of the wearable smart device indicates that the driver is outside the vehicle, and uploading the current vital sign data to a server.
[0036] The second control module is configured to control the vehicle door lock to be in an unlockable state when the received feedback information of the server indicates that the current vital sign data has been verified to be normal for driving.
[0037] The present application also provides an electronic device comprising a memory, a processor, and a computer program stored in the memory and executable on the processor, wherein the processor implements the vehicle control method according to any one of the preceding embodiments when executing the program.
[0038] The present application also provides a vehicle configured to implement the vehicle control method according to any one of the preceding embodiments, or comprising the vehicle control device according to any one of the preceding embodiments, or comprising the electronic device according to any one of the preceding embodiments.
[0039] The present application provides a vehicle control method, system, device, electronic device and vehicle. The vehicle control method is applied to a controller and comprises the following steps. When a vehicle is in a dormant state, a wake-up signal sent by a wearable smart device is received to wake up the controller. The wearable smart device is configured to monitor current vital sign data of a driver. The wake-up signal is sent when the current vital sign data is abnormal. After the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired. When the position of the wearable smart device indicates that the driver is outside the vehicle, the vehicle door lock is controlled to be in an unlockable state, and the current vital sign data is uploaded to a server. When the received feedback information of the server indicates that the current vital sign data has been verified to be normal for driving, the vehicle door lock is controlled to be in an unlockable state. In this way, the vehicle can be controlled by monitoring the vital sign of the driver in real time when the vehicle is in a dormant state, which prevents the driver from driving forcibly in an unhealthy condition, ensures the driving safety of the vehicle, and ensures the personal safety of the driver. BRIEF DESCRIPTION OF DRAWINGS
[0040] In order to more clearly illustrate the technical solutions of the present application or the prior art, the following will briefly introduce the drawings needed in the embodiments or prior art description. Obviously, the drawings in the following description are some embodiments of the present application, and other drawings can also be obtained by those skilled in the art without creative effort.
[0041] Figure 1 is one of the flowcharts of the vehicle control method provided by the present application;
[0042] Figure 2 is another flowchart of the vehicle control method provided by the present application;
[0043] Figure 3 is one of the structural diagrams of the vehicle control system provided by the present application;
[0044] Figure 4Fig. 2 is a structural schematic diagram of a vehicle control system provided by the present application;
[0045] Figure 5 Fig. 3 is a structural schematic diagram of a vehicle control device provided by the present application;
[0046] Figure 6 Fig. 4 is a structural schematic diagram of an electronic device provided by the present application. DETAILED DESCRIPTION
[0047] In order to make the objects, technical solutions and advantages of the present application clearer, the technical solutions in the present application will be described clearly and completely below with reference to the drawings in the present application. Obviously, the described embodiments are some embodiments of the present application, but not all the embodiments. Based on the embodiments in the present application, all the other embodiments obtained by those skilled in the art without creative work fall within the protection scope of the present application.
[0048] In the description of the embodiments of the present application, it should be noted that the terms "first", "second", "third" are only used for description purpose, and cannot be understood as indicating or implying relative importance.
[0049] In the description of the present application, the description of the terms "one embodiment", "some embodiments", "an example", "a specific example", or "some examples" means that the specific features, structures, materials or characteristics described in connection with the embodiment or example are included in at least one embodiment or example of the present application. In the present application, the illustrative description of the above terms does not necessarily refer to the same embodiment or example. Moreover, the specific features, structures, materials or characteristics described can be combined in any appropriate manner in any one or more embodiments or examples. In addition, those skilled in the art can combine and combine the different embodiments or examples described in the present application and the features of the different embodiments or examples without contradiction.
[0050] The vehicle control method of the present application will be described below. Figures 1 to 2 The vehicle control method of the present application will be described below. Figure 1 As shown in Fig. 1, the vehicle control method comprises the following steps.
[0051] Step 110: When the vehicle is in a dormant state, a wake-up signal sent by a wearable smart device is received to wake up the controller; the wearable smart device is used to monitor the current vital sign data of the driver; the wake-up signal is sent when the current vital sign data is abnormal;
[0052] Step 120: After the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired;
[0053] Step 130: when the position of the wearable smart device represents that the driver is outside the vehicle, the vehicle door lock is controlled to be in an ununlockable state, and the current vital sign data is uploaded to the server;
[0054] Step 140: when the feedback information received from the server represents that the current vital sign data has been verified to be normal for driving, the vehicle door lock is controlled to be in an unlockable state.
[0055] The controller in the embodiment of the present application is a controller in the vehicle, which can also enter the sleep state after a first preset time period when the vehicle enters the sleep state from the power-on state. The controller can activate the vehicle to enter the power-on state by receiving a corresponding activation signal. Once the vehicle is in the power-on state, the controller is definitely in the power-on state. However, the controller in the present embodiment can also receive a corresponding wake-up signal to wake up the controller itself when the vehicle is in the sleep state. After the controller wakes up itself successfully, it can perform corresponding work when the vehicle is in the sleep state.
[0056] Specifically, the wearable smart device can include a wearable smart bracelet, and can also include a wearable smart glove or a wearable smart clothing, etc., as long as it can realize the related functions in the present embodiment. The present embodiment does not make any limitation on the type of the specific wearable smart device.
[0057] Specifically, at least one sensor can be integrated in the wearable smart device for monitoring the current vital sign data of the driver.
[0058] Specifically, the vital sign data refers to data that can represent the health degree of the human body. Specifically, the vital sign data can include multiple parameters, which can include, for example, body temperature, heart rate, blood pressure, etc. Correspondingly, the wearable smart device can include a body temperature sensor for collecting the body temperature of the driver, a heart rate sensor for collecting the heart rate of the driver, a blood pressure sensor for collecting the blood pressure of the driver, and the like.
[0059] In the present embodiment, the wearable smart device can always send a detection signal to the controller for detecting whether the vehicle is in the sleep state. For example, after the wearable smart device sends the detection signal to the controller, if no feedback signal representing that the vehicle is in the power-on state is received from the controller within a second preset time period, the wearable smart device can determine that the vehicle is in the sleep state.
[0060] In the embodiment, the normal range of vital sign data can be pre-stored in the wearable smart device, and the normal range of vital sign data can include normal range of body temperature data, normal range of heart rate data, normal range of blood pressure data, etc. For example, the normal range of body temperature data can be 34 degrees Celsius (℃) - 37℃, the normal range of heart rate data can be 60-110 times per minute; and the normal range of blood pressure data can be 60-140 mmHg.
[0061] In the embodiment, when the wearable smart device determines that the vehicle is in a dormant state, the wearable smart device compares the real-time monitored current vital sign data with the normal range of vital sign data, and once it is determined that any parameter in the current vital sign data is not within the normal range, it can be determined that the current vital sign data is abnormal. For example, if the body temperature of the driver collected by the body temperature sensor is 38℃, it is found that it is not within the normal range of body temperature data 34℃-37℃, at this time the wearable smart device can determine that the current vital sign data is abnormal.
[0062] Further, when the wearable smart device determines that the vehicle is in a dormant state and the current vital sign data is abnormal, the wearable smart device can send a wake-up signal to the controller, and the controller can wake up itself after receiving the wake-up signal. After the controller wakes up itself successfully, if it is determined that the position of the wearable smart device represents that the driver is outside the vehicle, the controller can control the vehicle door lock to be in an unlockable state.
[0063] It should be noted that the wake-up signal is to wake up the controller of the vehicle, not to wake up the vehicle, which can ensure that the vehicle is in a low-power state and save energy consumption.
[0064] In the related art, a sensor is often integrated on the steering wheel or the main driver's seat in the vehicle to monitor the vital signs of the driver to ensure safe driving of the vehicle. However, when the driver rests in the co-driver's seat or other places other than the main driver's seat, the vital signs are often not monitored. If the driver's vital signs are abnormal during this process, there is a potential risk that the driver's vital signs are abnormal but still drives the vehicle. However, in the embodiment, the wearable smart device can monitor the vital signs of the driver for 24 hours in real time, and once the wearable smart device detects that the vital sign data is abnormal, it can wake up the controller in the vehicle, and the controller can control the vehicle door lock to be in an unlockable state, which can prevent the driver from forcibly entering the vehicle to drive in an uncomfortable state, and ensure the safe driving of the vehicle.
[0065] In this embodiment, after the controller successfully wakes up by itself, the controller can receive the current vital sign data sent by the wearable smart device and send the current vital sign data to a server. Specifically, the server can be a background server of a vehicle networking platform.
[0066] Since the wake-up signal is sent when the current vital sign data is abnormal, after the controller uploads the current vital sign data to the server, the server can send a first warning signal to remind the background service personnel, and the service personnel needs to manually verify and confirm the health status of the driver. Specifically, the first warning signal can be a warning signal sent when the driver has abnormal vital sign data outside the vehicle. Exemplarily, the first warning signal can include the voice warning "driver has abnormal vital sign data outside the vehicle".
[0067] It should be noted that the controller can also pre-store normal range vital sign data. After the controller successfully wakes up by itself, the controller can compare the received current vital sign data with the pre-stored normal range vital sign data.
[0068] When the background service personnel of the server receives the corresponding warning signal, they can contact the driver through a mobile phone or a wearable smart device and verify the health status of the driver. If the driver cannot be contacted within a third preset time period, an alarm can be sounded to prevent the driver from having an accident outside the vehicle. If the driver can be contacted, a voice or video call can be made to the driver to inquire about the reason and situation of the abnormal vital sign data, for example, if the current body temperature of the driver is 37.5°C, but it is found after verification that the driver has already entered a cooling state and does not affect actual driving. In this case, the service personnel can confirm that the driver can drive normally.
[0069] When the background service personnel of the server verify that the current vital sign data can drive normally, the server sends corresponding feedback information to the controller. After the controller receives the feedback information indicating that the current vital sign data has been verified to be normal, the controller controls the vehicle door lock to be in an unlockable state, and the driver can open the door by means of a key or the like. In this embodiment, by verifying whether the driver with abnormal vital sign data outside the vehicle can drive normally, it can be prevented that the driver forcibly enters the vehicle to drive in an unhealthy state, thereby not only ensuring the safe driving of the vehicle but also ensuring the personal safety of the driver.
[0070] After the controller sends the related instruction to control the vehicle door lock to be in an unlockable state, the controller can control itself to enter a controller sleep state after a fourth preset time period. In other words, if the controller still does not receive a vehicle start signal within the fourth preset time period, the controller enters a sleep state.
[0071] Further, as shown in the example embodiment, after the controller wakes up, after receiving the current vital sign data and obtaining the location of the wearable smart device, the method can further include: Figure 2
[0072] Step 150: When the location of the wearable smart device indicates that the driver is inside the vehicle, control the vehicle to be in an unstartable state, and upload the current vital sign data to the server.
[0073] Step 160: When the feedback information received from the server indicates that the current vital sign data has been verified to be normal for driving, control the vehicle to be in a startable state.
[0074] In this embodiment, when the wearable smart device determines that the vehicle is in a dormant state and the current vital sign data is abnormal, the wearable smart device can send a wake-up signal to the controller. After receiving the wake-up signal, the controller wakes up itself. After the controller wakes up itself successfully, when the location of the wearable smart device indicates that the driver is inside the vehicle, the controller can control the vehicle door lock to be in an unstartable state.
[0075] Specifically, the unstartable state indicates that the driver cannot start the vehicle. For example, the unstartable state can include the controller controlling the ignition lock to be inoperable, or can include the controller controlling the engine to be inoperable.
[0076] In this embodiment, after the controller wakes up itself successfully, the controller can receive all the current vital sign data sent by the wearable smart device and send the current vital sign data to the server. Since the wake-up signal is sent when the current vital sign data is abnormal, after the controller uploads the current vital sign data to the server, the server sends a second warning signal to remind the background service personnel, who needs to manually verify and confirm the health status of the driver. Specifically, the second warning signal can be a warning signal sent when the driver inside the vehicle has abnormal vital sign data. For example, the second warning signal can include the voice warning "Driver inside the vehicle has abnormal vital sign data, please handle it in time".
[0077] When the service personnel receives the corresponding warning signal, they can contact the driver through a mobile phone, a wearable smart device, or even activate the vehicle through communication equipment on the vehicle, and verify the health status of the driver. If the driver cannot be contacted within a third preset time period, an alarm can be sent to prevent the driver from having an accident inside the vehicle.
[0078] If the driver is contacted, the service personnel can make a voice or video call with the driver to inquire about the reason, situation, etc. of the abnormal vital sign data. For example, if the current blood pressure data is 141 mmHg, but it is found after verification that the driver is genetically inherited and is often in a high blood pressure state, but does not affect the actual driving. In this case, the service personnel can confirm that the driver can drive normally.
[0079] When the server's background service personnel verify that the current vital sign data can drive normally, the server sends corresponding feedback information to the controller. After the controller receives the feedback information indicating that the current vital sign data has been verified to be normal, the vehicle is controlled to be in a startable state, and the driver can drive normally. In this embodiment, by verifying whether the driver with abnormal vital sign data in the vehicle can drive normally, the safety of the vehicle can be ensured to a greater extent, and the personal safety of the driver can also be ensured, for example, to prevent accidents from occurring when the driver is sleeping in the vehicle.
[0080] In an example embodiment, if the current vital sign data is abnormal, the wearable smart device is controlled to issue a warning prompt.
[0081] In this embodiment, after the controller wakes up successfully, after receiving the vital sign data with abnormalities, the wearable smart device can be controlled to issue a warning prompt in a timely manner. For example, the warning prompt can include a voice prompt "Your current body temperature is 38°C, the vehicle door is locked, please pay attention", or the warning prompt can include a voice prompt "Your blood pressure is 150 mmHg, which is too high, you cannot drive, the vehicle cannot be started, please pay attention". Through such a prompt, the driver's physical condition can be reminded to prevent accidents from occurring when the driver is unaware.
[0082] In an example embodiment, when the vehicle is in a powered-on state, the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device are obtained;
[0083] Determine whether the current vital sign data is abnormal;
[0084] If the current vital sign data is abnormal, a warning signal is issued.
[0085] In this embodiment, unlike when the vehicle is in a sleep state, when the vehicle is in a powered-on state, the vehicle obtains all the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device in real time through the controller.
[0086] The controller can include a corresponding storage unit for storing the normal range of vital sign data and the acquired current vital sign data. After acquiring the current vital sign data, the controller compares the current vital sign data with the normal range of vital sign data to determine whether the current vital sign data is abnormal. The wearable smart device no longer needs to perform data comparison, which can save the power consumption of the wearable smart device and prolong the battery life and working time of the wearable smart device.
[0087] If the current vital sign data is abnormal, the controller controls the vehicle to issue a warning signal to remind the driver to make a reasonable response. For example, if the driver is currently driving and the current body temperature is 39°C, the controller can control the vehicle to issue a warning signal such as a voice warning "your current body temperature is 39°C, it is recommended to stop at the front service area for adjustment".
[0088] In an exemplary embodiment, the controller can also acquire the position of the wearable smart device after successful self-wakeup. Specifically, the vehicle is generally integrated with a Bluetooth function, and the wearable smart device can also be integrated with a corresponding Bluetooth module.
[0089] When the vehicle is in a sleep state, the controller establishes a Bluetooth connection with the Bluetooth module after successful self-wakeup, receives the current vital sign data based on the Bluetooth connection, and determines the position of the wearable smart device.
[0090] When the vehicle is in a powered-on state, the controller does not need to wake up, and directly establishes a Bluetooth connection with the Bluetooth module, acquires the current vital sign data based on the Bluetooth connection, and determines the position of the wearable smart device.
[0091] In this embodiment, the communication function and positioning function of Bluetooth are used to establish the connection relationship between the wearable smart device and the controller, so that the controller can accurately know the position of the wearable smart device.
[0092] Specifically, the Bluetooth module can also be provided with a Bluetooth key. When the vital sign data is normal, the driver can unlock and lock the vehicle door lock through the Bluetooth key. When the driver is outside the vehicle and the vital sign data is abnormal, the controller needs to control the vehicle door lock accordingly, and the controller can control the vehicle door lock to be unlocked by the Bluetooth key.
[0093] In some embodiments, the connection relationship between the wearable smart device and the controller can also be established through WIFI, and the communication function and positioning function of WIFI can achieve the same technical effects as Bluetooth.
[0094] In other embodiments, the controller can achieve positioning of the wearable smart device through radar technology.
[0095] The vehicle control system provided by the present application is described below, and the vehicle control system described below can be referred to in correspondence with the vehicle control method described above. The wearable smart device in the vehicle control system described below can also be referred to in correspondence with the wearable smart device in the vehicle control method described above.
[0096] As shown in Figure 3 The present application also provides a vehicle control system based on the vehicle control method in any of the above embodiments, which comprises a wearable smart device 310, a controller 320 and a server 330.
[0097] The wearable smart device 310 is in communication connection with the controller 320, the controller 320 is in communication connection with the server 330, and the wearable smart device 310 can also be in communication connection with the server 330.
[0098] The wearable smart device 310 is used to monitor the current vital sign data of the driver and monitor whether the vehicle is in a dormant state; when the vehicle is in a dormant state, the wearable smart device 310 is used to send a wake-up signal to the controller 320 according to the current vital sign data with an abnormality to wake up the controller 320; when the vehicle is in a powered-on state, the wearable smart device 310 is used to send the current vital sign data to the controller 320.
[0099] The controller 320 is used to send the received current vital sign data to the server 330.
[0100] The server 330 is used to send feedback information indicating that the verified current vital sign data can be normally driven to the controller 320.
[0101] Specifically, the controller 320 is a controller 320 in the vehicle.
[0102] Specifically, as shown in Figure 4 The wearable smart device 310 can be integrated with a monitoring module 311, a storage module 312 and a micro-processing module 313.
[0103] Specifically, the monitoring module 311 can be used to monitor the current vital sign data of the driver, and the vital sign data can include multiple parameters such as body temperature, heart rate, blood pressure and blood oxygen saturation, etc.
[0104] Specifically, the micro-processing module 313 of the wearable smart device 310 can always send a corresponding detection signal to the controller 320 for detecting whether the vehicle is in a dormant state. Illustratively, after the micro-processing module 313 sends the detection signal to the controller 320, if the micro-processing module 313 does not receive a feedback signal from the controller within a second preset time period, which can represent that the vehicle is in a powered-on state, the micro-processing module 313 can determine that the vehicle is in a dormant state.
[0105] Specifically, the storage module 312 of the wearable smart device 310 can pre-store normal range of vital sign data.
[0106] Specifically, the controller 320 can also include a corresponding control unit for pre-storing the normal range of vital sign data. The normal range of vital sign data can include normal range of body temperature data, normal range of heart rate data, normal range of blood pressure data, etc. Illustratively, the normal range of body temperature data can be 34 degrees Celsius (℃) - 37℃, the normal range of heart rate data can be 60-110 times per minute; and the normal range of blood pressure data can be 60-140 mmHg.
[0107] In one embodiment, when the vehicle is in a dormant state, the monitoring module 311 of the wearable smart device 310 can monitor the current vital sign data of the driver in real time, such as body temperature, heart rate, blood pressure, blood oxygen saturation and other parameters. The micro-processing module 313 compares the current vital sign data with the normal range of vital sign data pre-stored in the storage module 312. If there is no abnormality, the monitoring continues. If there is an abnormality, the micro-processing module 313 sends a wake-up signal to the controller 320 of the vehicle. It should be noted that the occurrence of any of the parameters such as body temperature, heart rate, blood pressure and blood oxygen saturation indicates that the current vital sign data is abnormal.
[0108] After the controller 320 wakes up successfully, it receives the current vital sign data sent by the micro-processing module 313, and determines the location of the driver by positioning the wearable smart device 310, whether the driver is inside or outside the vehicle. If the driver is outside the vehicle, the controller 320 controls the vehicle door lock to be unable to be unlocked, and uploads the current vital sign data to the server 330 in the background. The health status of the driver is verified by the background service personnel through contact. If the driver cannot be contacted within a third preset time period, an alarm can be sent to prevent the driver from having an accident outside the vehicle. If it is found after verification that the health status of the driver does not affect actual driving, the service personnel can confirm that the driver can drive normally, and the server 330 sends corresponding feedback information to the controller 320. After the controller 320 receives the feedback information representing that the current vital sign data has been verified to be normal for driving, the controller 320 controls the vehicle door lock to be able to be unlocked, and the driver can enter the vehicle interior to drive.
[0109] If the driver is inside the vehicle, the controller 320 controls the vehicle to be unable to start, and uploads the current vital sign data to the server 330 in the background, and the background service personnel verifies the health condition by contacting the driver, and if the driver cannot be contacted within a third preset time period, an alarm can be given to prevent the driver from having an accident inside the vehicle, and if it is verified that the health condition of the driver does not affect actual driving, the service personnel can confirm that the driver can drive normally, and the server 330 sends feedback information to the controller 320, and the controller 320 controls the vehicle to be able to start after receiving the feedback information indicating that the current vital sign data has been verified to be normal for driving, and the driver can drive normally.
[0110] In another embodiment, when the vehicle is in a powered-on state, the monitoring module 311 of the wearable smart device 310 can monitor the current vital sign data of the driver in real time, and the micro-processing module 313 no longer performs data comparison on the current vital sign data, but sends the current vital sign data to the controller 320 of the vehicle through wireless transmission, and the controller 320 stores and compares the current vital sign data, and the vehicle pre-stores normal range vital sign data. In this way, the energy consumption of the wearable smart device 310 can be saved.
[0111] In an exemplary embodiment, the monitoring module 311 can include at least one sensor and a Bluetooth module.
[0112] The at least one sensor is used to monitor the current vital sign data of the driver;
[0113] The wearable smart device 310 establishes a Bluetooth connection with the controller 320 through the Bluetooth module, and the Bluetooth module is used to transmit the current vital sign data and determine the position of the wearable smart device 310;
[0114] The Bluetooth module further includes a Bluetooth key, and when the current vital sign data is normal, the Bluetooth key can open the door lock of the vehicle.
[0115] The vehicle control device provided by the present application is described below, and the vehicle control device described below can be referred to in correspondence with the vehicle control method described above.
[0116] As Figure 5 shown, the embodiment of the present application further provides a vehicle control device based on the vehicle control method in any of the above embodiments, comprising:
[0117] The wake-up module 510 is configured to receive a wake-up signal sent by the wearable smart device to wake up the controller when the vehicle is in a sleep state; the wearable smart device is configured to monitor current vital sign data of the driver; and the wake-up signal is sent when the current vital sign data is abnormal.
[0118] The acquisition module 520 is configured to receive the current vital sign data and the position of the wearable smart device after the controller is woken up.
[0119] The first control module 530 is configured to control a vehicle door lock to be in an unlockable state and upload the current vital sign data to a server when the position of the wearable smart device indicates that the driver is outside the vehicle.
[0120] The second control module 540 is configured to control the vehicle door lock to be in an unlockable state when feedback information of the server received indicates that the current vital sign data has been verified to be normal for driving.
[0121] In an example embodiment, the first control module 530 is further configured to control the vehicle to be in a startable state when the position of the wearable smart device indicates that the driver is inside the vehicle and upload the current vital sign data to the server.
[0122] The second control module 540 is further configured to control the vehicle to be in a startable state when the feedback information of the server received indicates that the current vital sign data has been verified to be normal for driving.
[0123] In an example embodiment, the vehicle control device can further include a pre-warning prompt module configured to send a pre-warning prompt by the wearable smart device if the current vital sign data is abnormal.
[0124] In an example embodiment, the vehicle control device can further include:
[0125] The data acquisition module is configured to acquire current vital sign data of the driver monitored by the wearable smart device and a position of the wearable smart device when the vehicle is in a powered-on state.
[0126] The determination module is configured to determine whether the current vital sign data is abnormal.
[0127] The warning module is configured to send a warning signal if the current vital sign data is abnormal.
[0128] In an example embodiment, the wearable smart device includes a Bluetooth module, and the Bluetooth module is provided with a Bluetooth key.
[0129] When the vehicle is in a dormant state, the first acquisition module 520 is specifically used to establish a Bluetooth connection between the controller and the Bluetooth module after the controller is woken up, receive current vital signs data based on the Bluetooth connection and determine the location of the wearable smart device.
[0130] When the vehicle is in a dormant state, the first control module 530 is specifically used to prevent the vehicle's door locks from being unlocked by the Bluetooth key.
[0131] When the vehicle is powered on, the second acquisition module is specifically used to acquire current vital sign data and determine the location of the wearable smart device based on the Bluetooth connection after the controller and the Bluetooth module establish a Bluetooth connection.
[0132] This invention also provides an electronic device. Figure 6 An example is a schematic diagram of the physical structure of an electronic device, such as... Figure 6 As shown, the electronic device may include a processor 610, a communication interface 620, a memory 630, and a communication bus 640, wherein the processor 610, the communication interface 620, and the memory 630 communicate with each other through the communication bus 640. The processor 610 can call logical instructions in the memory 630 to execute the vehicle control method in any of the above embodiments. The method includes: when the vehicle is in a dormant state, receiving a wake-up signal from a wearable smart device to wake up the controller; the wearable smart device is used to monitor the driver's current vital signs data; the wake-up signal is issued when there is an abnormality in the current vital signs data; after the controller is woken up, receiving the current vital signs data and obtaining the location of the wearable smart device; when the location of the wearable smart device indicates that the driver is outside the vehicle, controlling the vehicle door locks to be in an unlockable state and uploading the current vital signs data to the server; when the feedback information received from the server indicates that the current vital signs data has been verified to be drivable, controlling the door locks to be unlockable.
[0133] In addition, the logic instructions in the memory 630 described above can be implemented in the form of a software function unit and sold or used as an independent product, and can be stored in a computer readable storage medium. Based on such understanding, the technical solutions of the present application essentially or the part that contributes to the prior art or part of the technical solutions can be embodied in the form of a software product, and the computer software product is stored in a storage medium, including a plurality of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute all or part of the steps of the method described in various embodiments of the present application. The foregoing storage medium includes: a U disk, a mobile hard disk, a read-only memory (ROM, Read-Only Memory), a random access memory (RAM, Random Access Memory), a magnetic disk or an optical disk, and various media that can store program codes.
[0134] The embodiments of the present application also provide a vehicle for executing the vehicle control method described in any of the above embodiments, or comprising the vehicle control device described in any of the above embodiments, or comprising the electronic device described in any of the above embodiments.
[0135] On the other hand, the present application also provides a computer program product, which comprises a computer program stored on a non-transitory computer readable storage medium, and the computer program comprises program instructions, when the program instructions are executed by a computer, the computer can execute the vehicle control method in any of the above embodiments, which comprises: when the vehicle is in a dormant state, receiving a wake-up signal sent by a wearable smart device to control the self-wakeup of the controller; the wearable smart device is used to monitor the current vital sign data of the driver; the wake-up signal is sent when the current vital sign data is abnormal; after the controller wakes up, the current vital sign data is received and the position of the wearable smart device is obtained; when the position of the wearable smart device represents that the driver is outside the vehicle, the vehicle door lock is controlled to be in an unlockable state, and the current vital sign data is uploaded to the server; when the feedback information received from the server represents that the current vital sign data has been verified to be normal for driving, the vehicle door lock is controlled to be in an unlockable state.
[0136] In yet another aspect, the present application also provides a non-transitory computer readable storage medium having stored thereon a computer program, which, when executed by a processor, implements a vehicle control method as described in any of the above embodiments, the method comprising: receiving a wake-up signal from a wearable smart device to wake up the controller when the vehicle is in a dormant state; the wearable smart device being configured to monitor current vital sign data of a driver; the wake-up signal being sent when the current vital sign data is abnormal; after the controller is woken up, receiving the current vital sign data and obtaining a location of the wearable smart device; when the location of the wearable smart device indicates that the driver is outside the vehicle, controlling a vehicle door lock to be in an unlockable state, and uploading the current vital sign data to a server; and when feedback information received from the server indicates that the current vital sign data has been verified to be normal for driving, controlling the vehicle door lock to be in an unlockable state.
[0137] The device embodiments described above are merely illustrative, wherein the units described as separate components can or can not be physically separate, and the components shown as units can or can not be physical units, i.e., they can be located in one place, or distributed on multiple network units. Some or all of the modules can be selected to achieve the purpose of the embodiment according to actual needs. Those skilled in the art can understand and implement without creative labor.
[0138] From the above description of the embodiments, those skilled in the art can clearly understand that the embodiments can be implemented by means of software plus necessary universal hardware platforms, and of course, can also be implemented by hardware. Based on such understanding, the above technical solutions, essentially or in terms of the contribution to the prior art, can be embodied in the form of a software product, which can be stored in a computer readable storage medium, such as a ROM / RAM, a magnetic disk, an optical disk, etc., and includes a number of instructions to make a computer device (which can be a personal computer, a server, or a network device, etc.) execute the methods described in the various embodiments or some parts of the embodiments.
[0139] Finally, it should be noted that: the above embodiments are only used to illustrate the technical solutions of the present application, and not to limit them; although the present application has been described in detail with reference to the foregoing embodiments, those skilled in the art should understand that: it can still modify the technical solutions recorded in the foregoing embodiments, or make equivalent replacement to some technical features; and these modifications or replacements do not make the essence of the corresponding technical solutions deviate from the spirit and scope of the technical solutions of the embodiments of the present application.
Claims
1. A vehicle control method characterized by, The application is applied to a controller, comprising: When the vehicle is in a sleep state, receiving a wake-up signal sent by a wearable smart device to wake up the controller; the wearable smart device is used to monitor current vital sign data of a driver; the wake-up signal is sent when the current vital sign data is abnormal; After the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired; When the position of the wearable smart device represents that the driver is outside the vehicle, the vehicle door lock is controlled to be in an unlockable state, and the current vital sign data is uploaded to a server; When the feedback information of the server received represents that the current vital sign data has been verified to be normal for driving, the vehicle door lock is controlled to be in an unlockable state; When the position of the wearable smart device represents that the driver is inside the vehicle, the vehicle is controlled to be in a startable state, and the current vital sign data is uploaded to a server; When the feedback information of the server received represents that the current vital sign data has been verified to be normal for driving, the vehicle is controlled to be in a startable state.
2. The vehicle control method according to claim 1, characterized by Further comprising: If the current vital sign data is abnormal, the wearable smart device is controlled to send a warning prompt.
3. The vehicle control method according to claim 1, characterized by, Further comprising: When the vehicle is in a power-on state, the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device are acquired; It is determined whether the current vital sign data is abnormal; If the current vital sign data is abnormal, a warning signal is sent.
4. The vehicle control method according to claim 2, characterized by The wearable smart device comprises a Bluetooth module, and the Bluetooth module is provided with a Bluetooth key; When the vehicle is in a sleep state, after the controller is woken up, the current vital sign data is received and the position of the wearable smart device is acquired, comprising: after the controller is woken up, the controller establishes a Bluetooth connection with the Bluetooth module, and the current vital sign data is received and the position of the wearable smart device is determined based on the Bluetooth connection; The vehicle door lock is controlled to be in an unlockable state, comprising: the vehicle door lock is controlled to be unlocked by the Bluetooth key; When the vehicle is in a power-on state, the current vital sign data of the driver monitored by the wearable smart device and the position of the wearable smart device are acquired, comprising: after the controller establishes a Bluetooth connection with the Bluetooth module, the current vital sign data is acquired and the position of the wearable smart device is determined based on the Bluetooth connection.
5. A vehicle control system based on the vehicle control method according to any one of claims 1 to 4, characterized by Comprise: A wearable smart device, a controller and a server; The wearable smart device is in communication connection with the controller, and the controller is in communication connection with the server; The wearable smart device is used to monitor current vital sign data of a driver and monitor whether the vehicle is in a sleep state; when the vehicle is in a sleep state, the wearable smart device is used to send a wake-up signal to the controller according to the current vital sign data with abnormality to wake up the controller; The controller is configured to control the vehicle door lock to be in an un-unlockable state and upload the current vital sign data to a server when the position of the wearable smart device indicates that the driver is outside the vehicle; and control the vehicle to be in an un-startable state and upload the current vital sign data to a server when the position of the wearable smart device indicates that the driver is inside the vehicle; The server is configured to send feedback information indicating that the current vital sign data has been verified to be normal for driving to the controller; The controller is further configured to control the vehicle door lock to be in an unlockable state when the received feedback information from the server indicates that the current vital sign data has been verified to be normal for driving; and control the vehicle to be in a startable state when the received feedback information from the server indicates that the current vital sign data has been verified to be normal for driving.
6. The vehicle control system according to claim 5, characterized by The wearable smart device comprises at least one sensor and a Bluetooth module; The at least one sensor is configured to monitor the current vital sign data of the driver; The wearable smart device establishes a Bluetooth connection with the controller through the Bluetooth module, and the Bluetooth module is configured to transmit the current vital sign data and determine the position of the wearable smart device; The Bluetooth module further comprises a Bluetooth key, which can open the vehicle door lock when the current vital sign data is normal.
7. A vehicle control device characterized by comprising: It comprises: An awakening module configured to receive a wake-up signal from a wearable smart device to wake up the controller when the vehicle is in a dormant state; the wearable smart device is configured to monitor the current vital sign data of the driver; the wake-up signal is emitted when the current vital sign data is abnormal; An acquisition module configured to receive the current vital sign data and acquire the position of the wearable smart device after the controller is awakened; A first control module configured to control the vehicle door lock to be in an un-unlockable state and upload the current vital sign data to a server when the position of the wearable smart device indicates that the driver is outside the vehicle; A second control module configured to control the vehicle door lock to be in an unlockable state when the received feedback information from the server indicates that the current vital sign data has been verified to be normal for driving; The first control module is further configured to control the vehicle to be in an un-startable state and upload the current vital sign data to a server when the position of the wearable smart device indicates that the driver is inside the vehicle; The second control module is further configured to control the vehicle to be in a startable state when the received feedback information from the server indicates that the current vital sign data has been verified to be normal for driving.
8. An electronic device comprising a memory, a processor, and a computer program stored on the memory and executable on the processor, characterized in that, The processor implements the vehicle control method according to any one of claims 1 to 4 when executing the program.
9. A vehicle characterized by comprising: The electronic device is configured to execute the vehicle control method according to any one of claims 1 to 4, or comprises the vehicle control apparatus according to claim 7, or comprises the electronic device according to claim 8.
10. A computer program product, characterised in that, The computer program product comprises a computer program which, when executed by a processor, is adapted to implement the method of any one of claims 1 to 4.
Citation Information
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