Vehicle control system and control method
The vehicle control system optimizes energy use by dynamically switching sensor and processing units based on vehicle conditions, addressing inefficiencies in conventional systems.
Patent Information
- Application Number
- JP2023189804
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-11-07
- Publication Date
- 2025-12-01
- Estimated Expiration
- 2043-11-07
AI Technical Summary
Conventional autonomous driving systems fail to make appropriate energy consumption decisions based on the dynamic changes in vehicle conditions and environment, leading to inefficient energy use.
A vehicle control system that employs external sensors and processing units to dynamically switch between on and off states based on the vehicle's state, including detection of occupancy, battery charging, and driving mode, to optimize energy consumption.
Reduces energy consumption by making appropriate decisions based on the vehicle's state, contributing to sustainable transportation systems.
Smart Images

Figure 0007778121000001 
Figure 0007778121000002 
Figure 0007778121000003
Abstract
Description
[Technical Field]
[0001] The present invention relates to a vehicle control system and a control method. [Background technology]
[0002] In recent years, efforts to provide access to sustainable transportation systems that take into consideration vulnerable traffic participants have been gaining momentum. To achieve this, efforts are being focused on research and development into autonomous driving technology to further improve traffic safety and convenience. Autonomous driving technology and advanced driving assistance are supported by many sensors and processors, and the corresponding increase in energy consumption is a challenge. For example, Patent Document 1 describes switching from a first state, in which autonomous driving is performed without restrictions, to a second state, in which part or all of the autonomous driving is restricted, based on deterioration information about the battery that stores power for driving. [Prior art documents] [Patent documents]
[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2018-60310 Summary of the Invention [Problem to be solved by the invention]
[0004] The circumstances under which autonomous driving and driving assistance functions should be turned on or off are not limited to battery degradation, but change from moment to moment depending on the environment the vehicle is in. Conventional technologies only limit autonomous driving functions based on the battery condition, so it is sometimes impossible to reduce energy consumption by making appropriate decisions according to the vehicle's condition.
[0005] The present invention has been made in consideration of the above circumstances, and one of its objects is to provide a vehicle control system and control method that can reduce energy consumption by making appropriate decisions according to the vehicle's state, thereby contributing to the development of sustainable transportation systems. [Means for solving the problem]
[0006] The vehicle control system and control method according to the present invention employ the following configuration. (1): A vehicle control system according to one embodiment of the present invention comprises a plurality of external sensors for detecting objects present around the vehicle, and a control device connected to the plurality of external sensors. The control device comprises a state detection unit for detecting the state of the vehicle, and a plurality of processing units, each of which performs information processing using the outputs of some or all of the plurality of external sensors. Based on the detection results of the state detection unit, a combination of the plurality of external sensors and the plurality of processing units is switched between an on-state and an off-state.
[0007] (2): In the above aspect (1), the plurality of processing units include a first processing unit that issues an alarm regarding a moving object approaching the vehicle when there is a possibility that an occupant will get off the vehicle, and when the state of the vehicle detected by the state detection unit is a first state that satisfies conditions including that the vehicle is stopped and the door lock is released, the first processing unit and an external sensor used by the first processing unit for the information processing are turned on, and the other processing units and external sensors are turned off.
[0008] (3): In the above aspect (1), the plurality of processing units include a second processing unit that monitors the surroundings of the vehicle while the vehicle is stopped, and when the state of the vehicle detected by the state detection unit is a second state that satisfies conditions including a stopped state and a battery installed in the vehicle being charged externally, the second processing unit and an external sensor used by the second processing unit for the information processing are turned on, and other processing units and external sensors are turned off.
[0009] (4): In the above aspect (1), the plurality of processing units include a third processing unit that can selectively operate between a first mode in which the vehicle moves autonomously in a state in which occupants need to monitor the surroundings, and a second mode in which the vehicle moves autonomously in a state in which occupants do not need to monitor the surroundings, and when the state of the vehicle detected by the state detection unit is a third state in which the second mode cannot be executed and the first mode can be executed, the number of external sensors that are turned on is smaller than in a fourth state in which the second mode can be executed.
[0010] (5): In the above aspect (1), the plurality of processing units include a fourth processing unit that operates in a first mode in which the vehicle moves autonomously when occupants need to monitor the surroundings, and a fifth processing unit that operates in a second mode in which the vehicle moves autonomously when occupants do not need to monitor the surroundings. When the state of the vehicle detected by the state detection unit is a third state in which the second mode cannot be executed and the first mode can be executed, the number of external sensors that are in the on state is smaller than in a fourth state in which the second mode can be executed, and the fifth processing unit is in the off state in the third state.
[0011] (6): In the above aspect (1), the vehicle further includes a notification unit that notifies an occupant of information, and a driving state control unit that notifies the notification unit that, when some of the plurality of external sensors and some of the plurality of processing units are switched from an off state to an on state, information processing by the processing unit that is switched to the on state will not be started until the plurality of external sensors and some of the plurality of processing units have completely switched to the on state.
[0012] (7): In the above aspect (1), when the state of the vehicle detected by the state detection unit changes as the vehicle leaves a stopped state, the vehicle is further provided with an operating state control unit that prevents the vehicle from starting until some of the plurality of external sensors and the plurality of processing units, which are in an off state, have been turned on.
[0013] (8): Another aspect of the present invention is a control method for a vehicle control system including a plurality of external sensors for detecting objects present around the vehicle and a control device connected to the plurality of external sensors, wherein the control device detects the state of the vehicle and operates independently as a plurality of processing units, each of which performs information processing using the outputs of some or all of the plurality of external sensors, and switches between a combination of the plurality of external sensors and the plurality of processing units that is turned on and a combination of the plurality of external sensors and the plurality of processing units that is turned off based on the state of the vehicle. [Effects of the Invention]
[0014] According to aspects (1) to (8), it is possible to reduce energy consumption under appropriate judgment according to the state of the vehicle. [Brief explanation of the drawings]
[0015] [Figure 1] 1 is a configuration diagram of a vehicle control system 1. FIG. [Figure 2] FIG. 1 is a configuration diagram of a control device 100. [Figure 3] 10 is a flowchart showing an example of the flow of processing executed by a state detection unit 110. [Figure 4] 3 is a diagram illustrating an example of the state of an external sensor and a processing unit when the state of the vehicle M is a first state. FIG. [Figure 5] 10 is a diagram showing an example of the state of the external sensor and the processing unit when the state of the vehicle M is a second state. FIG. [Figure 6] 10 is a diagram showing an example of the state of the external sensor and the processing unit when the state of the vehicle M is a third state. FIG. [Figure 7] 10 is a diagram showing an example of the state of the external sensor and the processing unit when the state of the vehicle M is a fourth state. FIG. [Figure 8] 10 is a diagram for explaining the content of processing by an operating state control unit 160. FIG. [Figure 9] 10 is a diagram showing an example of the states of the external sensors and the processing unit when the state of the vehicle M is a third state in the second embodiment. FIG. [Figure 10] FIG. 10 is a diagram illustrating an example of the states of the external sensors and the processing unit when the state of the vehicle M is a fourth state in the second embodiment. DETAILED DESCRIPTION OF THE INVENTION
[0016] DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS Hereinafter, embodiments of a vehicle control system and a control method according to the present invention will be described with reference to the drawings.
[0017] First Embodiment 1 is a configuration diagram of a vehicle control system 1. The vehicle control system 1 includes a plurality of external sensors illustrated in the figure, and a control device 100. The external sensors include, for example, some or all of radar devices 10-1 to 10-5, cameras 20-1 to 20-7, wide-angle cameras 30-1 to 30-4, a LIDAR (Light Detection and Ranging) 40, and a plurality of ultrasonic sensors 50. These devices (sensors, cameras, radar devices, etc.) have a detection range that covers the periphery (outside) of the vehicle M, and output information (signals, images, coordinates, etc.) that indicates objects present around the vehicle M to the control device 100.
[0018] The radar device 10-1 has a detection range in front of the vehicle M, and the radar devices 10-2 to 10-5 have detection ranges diagonally in front or diagonally behind the vehicle M. Each of the radar devices 10-1 to 10-5 emits electromagnetic waves and outputs to the control device 100 the distance and direction to an object detected based on a reflected wave generated when the electromagnetic waves are reflected by the object.
[0019] Cameras 20-1 and 20-2 have a detection range in front of vehicle M, cameras 20-3 to 20-6 have a detection range in the sides of vehicle M, and camera 20-7 has a detection range in the rear of vehicle M. Each of cameras 20-1 to 20-7 repeatedly captures images and outputs the captured images to control device 100. Note that some or all of cameras 20-1 to 20-7 may be provided with an image processing device that analyzes the images and recognizes the position of an object.
[0020] Wide-angle camera 30-1 has a detection range in front of vehicle M, wide-angle cameras 30-2 and 30-3 have a detection range on the sides of vehicle M, and wide-angle camera 30-4 has a detection range behind vehicle M. Each of wide-angle cameras 30-1 to 30-4 is, for example, a digital camera equipped with a fisheye lens, and captures images of the space around vehicle M at a higher angle than cameras 20-1 to 20-7.
[0021] The LIDAR 40 has a detection range that is a certain range centered on the front of the vehicle M. The LIDAR 40 emits infrared light around the vehicle M, and outputs to the control device 100 the distance and direction to an object detected based on a reflected wave generated when the infrared light is reflected by the object.
[0022] The ultrasonic sensor 50 is installed around the corner of the vehicle M, and emits ultrasonic waves and outputs to the control device 100 the distance to an object detected based on the reflected waves generated when the ultrasonic waves are reflected by the object.
[0023] 2 is a configuration diagram of the control device 100. The control device 100 includes, for example, a state detection unit 110, a rear-side support unit at the time of dismounting 120, a vehicle momentum estimation unit 130, a driving assistance control unit 140, an automatic driving control unit 150, and a driving state control unit 160. The automatic driving control unit 150 includes an MPU (Map Positioning Unit) 152 and a wide-angle camera image processing unit 154. Some or all of these components are examples of the "plurality of processing units" in the claims, and are realized, for example, by a hardware processor such as a CPU (Central Processing Unit) executing a program (software). The multiple processing units operate, for example, independently of each other. Some or all of these components may be realized by hardware (including circuitry) such as LSI (Large Scale Integration), ASIC (Application Specific Integrated Circuit), FPGA (Field-Programmable Gate Array), GPU (Graphics Processing Unit), or SOC (System on Chip), or may be realized by a combination of software and hardware. The program may be stored in advance in a storage device (a storage device with a non-transitory storage medium) such as an HDD (Hard Disk Drive) or flash memory, or may be stored in a removable storage medium (a non-transitory storage medium) such as a DVD or CD-ROM, and installed by inserting the storage medium into a drive device. Each of the "multiple processing units" performs information processing using the outputs of some or all of the "multiple external sensors."
[0024] The control device 100 may not be realized by a single processor, but may be realized by multiple processors performing distributed processing. For example, the rear side exit support unit 120, the driving support control unit 140, the MPU 152, the wide-angle camera image processing unit 154, and the processors that function as the main parts of the autonomous driving control unit 150 other than the MPU 152 and the wide-angle camera image processing unit 154 may each exist as separate units.
[0025] The control device 100 is connected to devices to be controlled, such as an HMI (Human Machine Interface) 200, a driving force output device 210, a braking device 220, and a steering device 230. These devices will be described first.
[0026] The HMI 200 presents various information to the occupants of the vehicle M and accepts input operations by the occupants. The HMI 30 includes various display devices, indicators, speakers, buzzers, touch panels, switches, keys, etc. The HMI 30 is an example of a "notification unit."
[0027] The driving force output device 210 outputs a driving force (torque) to the drive wheels for driving the vehicle M. The driving force output device 210 includes, for example, a combination of an internal combustion engine, a driving motor 212, a transmission, etc., and an ECU (Electronic Control Unit) that controls these. The driving force output device 210 also includes a battery 214 that stores the power used by the driving motor 212, and an external charge port 216 for receiving charge from an external charger. The ECU controls the above configuration according to information input from the control device 100 or information input from a driving operator (not shown).
[0028] The braking device 220 includes, for example, a brake caliper, a cylinder that transmits hydraulic pressure to the brake caliper, an electric motor that generates hydraulic pressure in the cylinder, and a brake ECU. The brake ECU controls the electric motor according to information input from the control device 100 or information input from a driving operator, so that a brake torque corresponding to a braking operation is output to each wheel. The braking device 220 may include a backup mechanism that transmits hydraulic pressure generated by operation of a brake pedal included in the driving operator to the cylinder via a master cylinder. Note that the braking device 220 is not limited to the configuration described above, and may also be an electronically controlled hydraulic braking device that controls an actuator according to information input from the control device 100 to transmit hydraulic pressure from a master cylinder to the cylinder.
[0029] The steering device 230 includes, for example, a steering ECU and an electric motor. The electric motor changes the direction of the steered wheels by applying a force to, for example, a rack and pinion mechanism. The steering ECU drives the electric motor to change the direction of the steered wheels in accordance with information input from the control device 100 or information input from a driving operator.
[0030] Returning to the description of the control device 100, the state detection unit 110 detects the state of the vehicle M based on the outputs of various vehicle sensors (shift position sensor, speed sensor, door lock sensor, driving assistance switch, etc.; not shown) mounted on the vehicle M and information obtained from the MPU 152 described later. The states of the vehicle M include, for example, a first state, a second state, a third state, and a fourth state (all of which will be described later). Note that the state of the vehicle M may include other states, but a description of all of them will be omitted.
[0031] 3 is a flowchart showing an example of the flow of processing executed by the state detection unit 110. First, the state detection unit 110 determines whether the shift position of the vehicle M is P (parking), the speed V of the vehicle M is less than a threshold Vth, and (at least one of) the doors of the vehicle M is unlocked (step S1). The threshold Vth is a small value of about 1 [km / h], and is a value for determining whether the vehicle M is stopped. If a positive determination result is obtained in step S1, the state detection unit 110 determines that the state of the vehicle M is in a first state (step S2). The first state is a state in which the vehicle M is stopped and there is a possibility that an occupant may get out of the vehicle.
[0032] If a negative determination result is obtained in step S1, the state detection unit 110 determines whether the shift position of the vehicle M is P (parking), the speed V of the vehicle M is less than the threshold Vth, the battery 214 is being charged externally via the external charging port 216, and (all of) the doors of the vehicle M are locked (step S3). If a positive determination result is obtained in step S3, the state detection unit 110 determines that the state of the vehicle M is in a second state (step S4). The second state is a state in which the vehicle M is stopped and the battery 214 is being charged externally.
[0033] If a negative determination result is obtained in step S3, the state detection unit 110 determines whether the driving assistance switch is in the on state (step S5). The driving assistance switch is a switch that is provided at a desired position inside the passenger compartment of the vehicle M. If the driving assistance switch is in the off state, the state detection unit 110 does not determine the state of the vehicle M and ends the processing of this flowchart. In this case, for example, all external sensors and processing units may be controlled to be in the off state or a low-power standby state.
[0034] When the driving assistance switch is in the on state, the state detection unit 110 inquires of the MPU 152 to determine whether the location of the vehicle M is in a highly automated driving area (step S6). A highly automated driving area is, for example, an area on the main line of a toll road such as an expressway. When a negative determination result is obtained in S6, the state detection unit 110 determines that the state of the vehicle M is in state 3 (step S7). On the other hand, when a positive determination result is obtained in S6, the state detection unit 110 determines that the state of the vehicle M is in state 4 (step S8). The third state is a state in which the vehicle M is traveling in an urban area or the like, and therefore the vehicle M cannot be moved autonomously without the need for the occupant to monitor the surroundings. The fourth state is a state in which the vehicle M is traveling in a highly automated driving area, and therefore the vehicle M can be moved autonomously without the need for the occupant to monitor the surroundings (however, other conditions such as speed are imposed in order for the occupant to actually no longer need to monitor the surroundings).
[0035] When the state of vehicle M is the first state, the rear side support unit 120 at the time of disembarking issues an alarm by lighting an indicator on the front pillar or the side mirror when detecting a moving object such as another vehicle approaching from the rear side. Furthermore, when there is a possibility that the door opened by an occupant of vehicle M to disembark may collide with another vehicle passing by the side of vehicle M, the rear side support unit 120 at the time of disembarking flashes the indicator and simultaneously outputs an alarm sound to the HMI 200. The rear side support unit 120 at the time of disembarking is an example of a "first processing unit."
[0036] The vehicle momentum estimation unit 130 estimates the momentum (displacement) of the vehicle M by performing processing similar to that of a so-called inertial navigation system based on the outputs of various vehicle sensors (speed sensor, acceleration sensor, yaw rate sensor, steering angle sensor, etc.; not shown) mounted on the vehicle M.
[0037] The driving assistance control unit 140 performs various driving assistance controls, such as lane keeping control, speed maintaining control, inter-vehicle distance control, lane departure warning, and pedestrian detection warning control.
[0038] The autonomous driving control unit 150 moves the vehicle M without relying on the operation of the occupant of the vehicle M. The mode of the autonomous driving control unit 150 may include multiple modes. For example, the multiple modes include a first mode in which the vehicle M is autonomously moved in a state in which occupants need to monitor the surroundings, and a second mode in which the vehicle M can be autonomously moved in a state in which occupants do not need to monitor the surroundings. In a state in which occupants need to monitor the surroundings, the state of gripping the steering wheel and the direction of gaze of the occupant (driver) are detected, and if it is determined that the occupants are not monitoring the surroundings, the control in the first mode is also stopped. In addition, the second mode may be a so-called TJP (Traffic Jam Pilot) mode, that is, a mode executed when the vehicle is traveling on a motorway at a predetermined speed or less. In addition, when the state of the vehicle M is the second state, the autonomous driving control unit 150 can monitor the surroundings of the vehicle M using the wide-angle cameras 30-1 to 30-4 and perform various processes such as theft prevention. The autonomous driving control unit 150 is an example of a "second processing unit" or a "third processing unit."
[0039] The MPU 152 is connected to a positioning device such as a GPS (Global Positioning System) receiver, stores map information in a storage device such as a hard disk drive (HDD) or flash memory, and has a recommended lane determination function. The map information is more detailed than the map information used by a navigation device. The MPU 152 divides the route on the map provided by the navigation device (not shown) into multiple blocks (for example, by dividing the block into 100-m blocks in the traveling direction of the vehicle M) and determines a recommended lane for each block by referring to the map information. When a branch point is present on the route on the map, the MPU 152 determines a recommended lane so that the vehicle M can travel along a reasonable route to the branch point.
[0040] Wide-angle camera image processing unit 154 performs processing to convert the wide-angle images captured by wide-angle cameras 30-1 to 30-4 into normal images.
[0041] The driving state control unit 160 controls the driving state of the vehicle M based on the processing results of each unit of the control device 100. This will be described in more detail later.
[0042] In the vehicle control system 1 according to the embodiment, a combination of "multiple external sensors" and "multiple processing units" that is turned on is switched to a combination of "multiple external sensors" and "multiple processing units" that is turned off, based on the detection result of the state detection unit 110. This makes it possible to reduce energy consumption by making appropriate decisions according to the state of the vehicle. Each of these will be described below.
[0043] FIG. 4 is a diagram showing an example of the states of the external sensors and processing units when the state of vehicle M is state 1. In the figure, hatched components indicate that they are in the off state. The same applies to FIG. 5 and subsequent figures. As shown in the figure, in state 1, the radar devices 10-4 and 10-5, which have a detection range on the rear side of vehicle M, and the rear side support unit 120 at dismounting are in the on state, while the other external sensors, the driving support control unit 140, and the autonomous driving control unit 150 are in the off state. Note that instructions to switch to the on state or off state may be issued by the state detection unit 110, or may be issued autonomously by each processing unit.
[0044] 5 is a diagram showing an example of the states of the external sensors and processing units when the state of vehicle M is state 2. As shown in the figure, in state 2, wide-angle cameras 30-1 to 30-4 and autonomous driving control unit 150 are in the on state, and the other external sensors, rear side support unit 120 at the time of getting off, and driving support control unit 140 are in the off state.
[0045] FIG. 6 is a diagram showing an example of the states of the external sensors and processing units when the state of vehicle M is in the third state, and FIG. 7 is a diagram showing an example of the states of the external sensors and processing units when the state of vehicle M is in the fourth state. As shown in the figure, in the third state, the radar devices 10-1 to 10-5, the cameras 20-1 to 20-7, the wide-angle cameras 30-1 to 30-4, the driving assistance control unit 140, and the autonomous driving control unit 150 are turned on, and the dismounting rear side support unit 120 and the LIDAR 40 are turned off. In the fourth state, the LIDAR 40 is also turned on. Thus, in the third state in which the second mode is not executable but the first mode is executable, the number of external sensors that are turned on is smaller than in the fourth state in which the second mode is executable.
[0046] When some of the external sensors and processing units are switched from an off state to an on state, the driving state control unit 160 notifies the occupant using the HMI 200 that the processing units that are switched to the on state will not start information processing until the external sensors and processing units are switched to the on state. If the vehicle M is in a stopped state before the state change, that is, if the state of the vehicle M detected by the state detection unit 110 changes due to the vehicle M emerging from the stopped state, the driving state control unit 160 inhibits the vehicle from starting until the external sensors and processing units that are switched to the off state are switched to the on state. FIG. 8 is a diagram for explaining the processing performed by the driving state control unit 160. Until time T1, the vehicle M is in a stopped state and is in the first state, second state, or other state described above. When the accelerator pedal is operated at time T1, the driving state control unit 160 notifies the HMI 200 that starting is not possible and does not permit the vehicle M to start by, for example, fixing the shift position to P. When the activation of predetermined external sensors and processing units is completed at time T2, the driving state control unit 160 changes the shift position from P and permits the vehicle M to start. This prevents the vehicle M from starting when the necessary driving assistance functions are not activated, and also prevents the occupant from mistaking the inability to start for a malfunction.
[0047] According to the first embodiment described above, it is possible to reduce energy consumption under appropriate judgment according to the state of the vehicle.
[0048] Second Embodiment The second embodiment will be described below. In the first embodiment, one autonomous driving control unit 150 selectively operates in a first mode or a second mode. In the second embodiment, the autonomous driving control unit 150 includes a first mode execution unit 156 (an example of a fourth processing unit) that operates in the first mode, and a second mode execution unit 158 (an example of a fifth processing unit) that operates in the second mode. The first mode execution unit 156 and the second mode execution unit 158 may be realized by separate processors, or may be realized by one processor generating two virtual machines.
[0049] Fig. 9 is a diagram showing an example of the states of the external sensors and the processing unit when the state of the vehicle M is the third state in the second embodiment, and Fig. 10 is a diagram showing an example of the states of the external sensors and the processing unit when the state of the vehicle M is the fourth state in the second embodiment. With this configuration, it is possible to reduce energy consumption with even greater precision than in the first embodiment.
[0050] The above-described embodiment can be expressed as follows. a plurality of external sensors for detecting objects present around the vehicle; a control device connected to the plurality of external sensors, The control device a state detection unit that detects a state of the vehicle; a plurality of processors, each connected to a storage medium storing computer-readable instructions; each of the plurality of processors performs information processing using outputs from some or all of the plurality of external sensors; based on a detection result of the state detection unit, a combination of the plurality of external sensors and the plurality of processors that is turned on and a combination of the plurality of external sensors and the plurality of processors that is turned off are switched. Control system.
[0051] The above describes the form for carrying out the present invention using an embodiment, but the present invention is not limited to such an embodiment, and various modifications and substitutions can be made within the scope that does not deviate from the gist of the present invention. [Explanation of symbols]
[0052] 1. Vehicle control system 10-1~10-5 Radar equipment 20-1~20-7 Camera 30-1~30-4 Wide-angle camera 40 LIDAR 50 Ultrasonic Sensor 100 control device 110 Status detection unit 120 Rear side support section when getting off 130 Vehicle momentum estimation unit 140 Driving assistance control unit 150 Automatic driving control unit 152 MPU 154 Wide-angle camera image processing unit 156 First mode execution unit 158 Second mode execution unit 160 Operating condition control unit
Claims
1. a plurality of external sensors for detecting objects present around the vehicle; a control device connected to the plurality of external sensors, The control device a state detection unit that detects a state of the vehicle; a plurality of processing units; each of the plurality of processing units performs information processing using outputs of some or all of the plurality of external sensors; based on a detection result of the state detection unit, a combination of the plurality of external sensors and the plurality of processing units that is turned on and a combination of the plurality of external sensors and the plurality of processing units that is turned off are switched; the plurality of processing units includes a second processing unit that monitors a periphery of the vehicle while the vehicle is stopped, When the state of the vehicle detected by the state detection unit is a second state that satisfies conditions including a stopped state and a battery mounted on the vehicle being charged externally, the second processing unit and an external sensor used by the second processing unit for the information processing are turned on, and other processing units and external sensors are turned off. Vehicle control system.
2. the plurality of processing units includes a first processing unit that issues an alarm regarding a moving object approaching the vehicle when there is a possibility that an occupant will get off the vehicle; When the state of the vehicle detected by the state detection unit is a first state that satisfies conditions including that the vehicle is stopped and the doors are unlocked, the first processing unit and an external sensor used by the first processing unit for the information processing are turned on, and other processing units and external sensors are turned off. The vehicle control system of claim 1 .
3. the plurality of processing units include a third processing unit that can selectively operate between a first mode in which the vehicle autonomously moves in a state in which surroundings monitoring by an occupant is required, and a second mode in which the vehicle autonomously moves in a state in which surroundings monitoring by an occupant is not required, When the state of the vehicle detected by the state detection unit is a third state in which the second mode is not executable and the first mode is executable, the number of the external sensors that are in an ON state is smaller than that in a fourth state in which the second mode is executable. The vehicle control system of claim 1 .
4. the plurality of processing units include a fourth processing unit that operates in a first mode in which the vehicle is autonomously moved in a state in which surroundings monitoring by an occupant is required, and a fifth processing unit that operates in a second mode in which the vehicle is autonomously moved in a state in which surroundings monitoring by an occupant is not required, When the state of the vehicle detected by the state detection unit is a third state in which the second mode is not executable and the first mode is executable, the number of the external sensors that are in an ON state is smaller than that in a fourth state in which the second mode is executable, and the fifth processing unit is in an OFF state in the third state. The vehicle control system of claim 1 .
5. a notification unit that notifies an occupant of the vehicle of information; An operating state control unit that notifies the notification unit that, when some of the plurality of external sensors and some of the plurality of processing units are switched from an off state to an on state, information processing by the processing unit that is switched to the on state will not be started until the switching of some of the plurality of external sensors and some of the processing units to the on state is completed. The vehicle control system of claim 1 .
6. When the state of the vehicle detected by the state detection unit changes due to the vehicle leaving a stopped state, a driving state control unit suppresses the start of the vehicle until some of the plurality of external sensors and the plurality of processing units, which are in an off state, are turned on. The vehicle control system of claim 1 .
7. A control method for a vehicle control system including a plurality of external sensors for detecting objects present around a vehicle, and a control device connected to the plurality of external sensors, comprising: The control device Detecting a state of the vehicle; The plurality of processing units operate independently, and each of the plurality of processing units performs information processing using outputs from some or all of the plurality of external sensors; switching between a combination of the plurality of external sensors and the plurality of processing units that is turned on and a combination of the plurality of external sensors and the plurality of processing units that is turned off based on a state of the vehicle; the plurality of processing units includes a second processing unit that monitors a periphery of the vehicle while the vehicle is stopped, When the detected state of the vehicle is a second state that satisfies conditions including a stopped state and a state in which a battery mounted on the vehicle is being charged externally, the second processing unit and an external sensor used by the second processing unit for the information processing are turned on, and other processing units and external sensors are turned off. Control method.
Citation Information
Patent Citations
Device, system and method for detecting approaching object
JP2011113366A
Control device
JP2018060310A
Condition-sensitive control of vehicle sensors and / or components
JP2022529828A
Vehicle warning system
JP2023100304A