Vehicle control device

The vehicle control device addresses collision prevention by adjusting acceleration suppression control thresholds based on target detection and entry likelihood, enhancing collision avoidance efficiency and reducing unnecessary interventions.

JP7754041B2Active Publication Date: 2025-10-15TOYOTA JIDOSHA KK
View PDF 5 Cites 0 Cited by

Patent Information

Application Number
JP2022160850
Authority / Receiving Office
JP · JP
Patent Type
Patents
Current Assignee / Owner
Filing Date
2022-10-05
Publication Date
2025-10-15
Estimated Expiration
2042-10-05

AI Technical Summary

Technical Problem

Existing vehicle control systems face challenges in reliably preventing collisions while minimizing unnecessary acceleration suppression control, particularly when conditions for acceleration suppression are set too broadly.

Method used

A vehicle control device that executes acceleration suppression control based on specific conditions, including a smaller accelerator pedal threshold when a target is detected in a blind spot area or has a high likelihood of entering the vehicle's path, thereby reducing unnecessary control execution.

Benefits of technology

Effectively prevents collisions while minimizing unnecessary acceleration suppression control by dynamically adjusting control thresholds based on target detection and entry likelihood, ensuring reliable safety without excessive intervention.

✦ Generated by Eureka AI based on patent content.

Smart Images

  • Figure 0007754041000001
    Figure 0007754041000001
  • Figure 0007754041000002
    Figure 0007754041000002
  • Figure 0007754041000003
    Figure 0007754041000003
Patent Text Reader

Abstract

To provide a vehicle controller which can reliably prevent an own vehicle from colliding with an object while suppressing unnecessary execution of acceleration suppression control.SOLUTION: When an operating condition including a condition that an accelerator pedal operation amount is equal to or greater than a predetermined threshold value is satisfied, a vehicle controller 10 executes acceleration inhibition control of inhibiting acceleration of an own vehicle 100. When an object entry condition that an object 200 has a possibility to enter an area 400 in front of the own vehicle, is satisfied, the vehicle controller sets the predetermined threshold value to a smaller value than when the object entry condition is not satisfied.SELECTED DRAWING: Figure 2
Need to check novelty before this filing date? Find Prior Art

Description

[Technical Field]

[0001] The present invention relates to a vehicle control device. [Background technology]

[0002] A vehicle control device is known that performs collision avoidance control to avoid a collision between the vehicle and a target, such as another vehicle or a pedestrian, by autonomously braking or steering the vehicle when there is a possibility that the vehicle will collide with the target (see, for example, Patent Document 1). [Prior art documents] [Patent documents]

[0003] [Patent Document 1] Japanese Patent Application Laid-Open No. 2017-33403 Summary of the Invention

[0004] Meanwhile, there is also known a vehicle control device that performs acceleration suppression control to prevent a sudden acceleration of a host vehicle when the accelerator pedal is erroneously operated too much. If a condition for executing such acceleration suppression control is set such that a target object enters an area ahead of the host vehicle, the host vehicle can be prevented from colliding with the target. Setting the condition for executing the acceleration suppression control to a condition that is more likely to be met can reliably prevent a collision between the host vehicle and the target. However, if the condition for executing the acceleration suppression control is made too likely to be met, the acceleration suppression control may be executed in situations where execution of the acceleration suppression control is unnecessary.

[0005] An object of the present invention is to provide a vehicle control device that can reliably prevent a collision between the host vehicle and a target while suppressing the execution of unnecessary acceleration suppression control.

[0006] A vehicle control device according to the present invention includes a control device that executes acceleration suppression control to suppress acceleration of a host vehicle when an operating condition is satisfied, including a condition that an accelerator pedal depression amount is equal to or greater than a predetermined threshold value. The control device is configured to set the predetermined threshold value to a smaller value when a target entry condition is satisfied, which indicates that a target may enter an area ahead of the host vehicle, compared to when the target entry condition is not satisfied. Furthermore, in the vehicle control device according to the present invention, the target entry condition is a condition that a blind spot area exists in front of the host vehicle, the target exists in the blind spot area, and there is a possibility that the target will enter the area in front of the host vehicle.

[0007] According to this, whether or not the acceleration suppression control needs to be executed is determined depending on whether or not there is a possibility that the target object will enter the area ahead of the host vehicle. Therefore, it is possible to reliably prevent a collision between the host vehicle and the target object while suppressing the execution of unnecessary acceleration suppression control.

[0009] Further, according to the present invention, Whether or not to execute acceleration suppression control is determined depending on whether or not there is a possibility that a target, including a target present in a blind spot area, will enter the area ahead of the host vehicle. This makes it possible to reliably prevent a collision between the host vehicle and the target while suppressing unnecessary execution of acceleration suppression control.

[0010] The components of the present invention are not limited to the embodiments of the present invention described below with reference to the drawings. Other objects, features, and attendant advantages of the present invention will be easily understood from the description of the embodiments of the present invention. [Brief explanation of the drawings]

[0011] [Figure 1] FIG. 1 is a diagram showing a vehicle control device according to an embodiment of the present invention. [Figure 2] FIG. 2 is a flowchart showing a routine executed by the vehicle control device according to the embodiment of the present invention. [Figure 3] FIG. 3 is a diagram showing a scene in which a pedestrian is about to enter the area ahead of the host vehicle. [Figure 4]FIG. 4 is a flowchart showing a routine executed by the vehicle control device according to the embodiment of the present invention. [Figure 5] FIG. 5 is a diagram showing a scene in which a pedestrian is about to enter the area ahead of the host vehicle from a blind spot area. DETAILED DESCRIPTION OF THE INVENTION

[0012] A vehicle control device according to an embodiment of the present invention will be described below with reference to the drawings. The vehicle control device 10 will be described below using as an example a case where the operator of the host vehicle 100 is a person who gets into the host vehicle 100 and drives the host vehicle 100 (i.e., the driver of the host vehicle 100). Therefore, in this example, the vehicle control device 10 is mounted on the host vehicle 100 as shown in FIG. 1.

[0013] However, the operator of the vehicle 100 may be a person who drives the vehicle 100 remotely without being in the vehicle 100 (i.e., a remote operator of the vehicle 100). When the operator of the vehicle 100 is a remote operator, the vehicle control device 10 is mounted on the vehicle 100 and on a remote operation facility installed outside the vehicle 100 for remotely driving the vehicle 100, and the functions of the vehicle control device 10 described below are shared between the vehicle control device 10 mounted on the vehicle 100 and the vehicle control device 10 mounted on the remote operation facility.

[0014] The vehicle control device 10 includes an ECU 90 as a control device, and executes acceleration suppression control, which will be described later, as automatic driving control for the host vehicle 100.

[0015] The ECU 90 is an electronic control unit (electronic control device). The ECU 90 includes a microcomputer as its main component. The microcomputer includes a CPU, ROM, RAM, non-volatile memory, an interface, and the like. The CPU executes instructions, programs, or routines stored in the ROM to realize various functions. In this example, the vehicle control device 10 includes one ECU, but as will be described later, the vehicle control device 10 may also be configured to include multiple ECUs and have the ECUs individually share and execute various processes described later.

[0016] As shown in FIG. 1, the vehicle 100 is equipped with a driving device 20, a braking device 30, and a display device 40.

[0017] The drive unit 20 is a device that outputs a drive force applied to the host vehicle 100, and includes, for example, an internal combustion engine and / or at least one motor. The drive unit 20 is electrically connected to the ECU 90. The ECU 90 is configured to be able to control the drive force output from the drive unit 20.

[0018] The braking device 30 is a device that applies a braking force to the host vehicle 100, and is, for example, a hydraulic brake device. The braking device 30 is electrically connected to the ECU 90. The ECU 90 is configured to be able to control the braking force that is applied to the host vehicle 100 by the braking device 30.

[0019] Furthermore, the host vehicle 100 is equipped with an accelerator pedal 41, an accelerator pedal operation amount sensor 42, a brake pedal 43, a brake pedal operation amount sensor 44, a vehicle speed detection device 45, and a surrounding information detection device 50.

[0020] The accelerator pedal 41 is a device that is operated by the driver to accelerate the host vehicle 100. The accelerator pedal operation amount sensor 42 is a device that detects the amount of operation of the accelerator pedal 41. When the operator of the host vehicle 100 is a remote operator of the host vehicle 100, the accelerator pedal 41 and the accelerator pedal operation amount sensor 42 are mounted on a remote operation facility.

[0021] The accelerator pedal operation amount sensor 42 is electrically connected to the ECU 90. The ECU 90 obtains the operation amount of the accelerator pedal 41 from the accelerator pedal operation amount sensor 42 as the accelerator pedal operation amount AP. The ECU 90 calculates the acceleration of the host vehicle 100 requested by the driver based on the accelerator pedal operation amount AP as the driver-requested acceleration Ga_driver. When the driver-requested acceleration Ga_driver is greater than zero, the ECU 90 performs normal driving control that controls the driving force output from the drive unit 20 so that the driver-requested acceleration Ga_driver is achieved, except when the acceleration suppression control described below is performed.

[0022] The brake pedal 43 is a device that is operated by the driver to decelerate the host vehicle 100. The brake pedal operation amount sensor 44 is a device that detects the amount of operation of the brake pedal 43. When the operator of the host vehicle 100 is a remote operator of the host vehicle 100, the brake pedal 43 and the brake pedal operation amount sensor 44 are mounted on a remote operation facility.

[0023] The brake pedal operation amount sensor 44 is electrically connected to the ECU 90. The ECU 90 obtains the operation amount of the brake pedal 43 from the brake pedal operation amount sensor 44 as the brake pedal operation amount BP. The ECU 90 calculates the deceleration of the host vehicle 100 requested by the driver based on the brake pedal operation amount BP as the driver-requested deceleration Gd_driver. When the driver-requested deceleration Gd_driver is greater than zero, the ECU 90 performs normal driving control that controls the braking force applied to the host vehicle 100 by the braking device 30 so that the driver-requested deceleration Gd_driver is achieved, except when acceleration suppression control, which will be described later, is performed.

[0024] The vehicle speed detection device 45 is a device that detects the traveling speed of the host vehicle 100, and includes, for example, wheel speed sensors provided on each wheel of the host vehicle 100. The vehicle speed detection device 45 is electrically connected to the ECU 90. The ECU 90 obtains the traveling speed of the host vehicle 100 as the host vehicle speed V by the vehicle speed detection device 45.

[0025] The surrounding information detection device 50 is a device that acquires information about the surrounding conditions of the vehicle 100, and in this example, includes an electromagnetic wave sensor 51, an image sensor 52, and an inter-vehicle communication device 53.

[0026] The electromagnetic wave sensor 51 is a sensor that acquires data (target data) related to targets in the vicinity of the vehicle 100, and is, for example, a radio wave sensor such as a radar sensor (millimeter wave radar), a sound wave sensor such as an ultrasonic sensor (clearance sonar), or an optical sensor such as a laser radar (LiDAR). The electromagnetic wave sensor 51 emits electromagnetic waves, and when the electromagnetic waves are reflected by a target, receives the electromagnetic waves (reflected waves). The target data is information related to the emitted electromagnetic waves and the reflected waves. The electromagnetic wave sensor 51 is electrically connected to the ECU 90. The ECU 90 acquires the target data from the electromagnetic wave sensor 51 as surrounding detection information IS.

[0027] Based on the target data, the ECU 90 can detect a target present ahead of the vehicle 100. Furthermore, when the ECU 90 detects a target ahead of the vehicle 100, the ECU 90 can also acquire the moving direction and moving speed of the target based on the target data. Note that targets detected by the ECU 90 based on the target data include, for example, pedestrians and other vehicles.

[0028] The image sensor 52 is a sensor, such as a camera sensor, that captures an image of the surroundings of the vehicle 100 and acquires image data. The image sensor 52 is electrically connected to the ECU 90. The ECU 90 acquires the image data from the image sensor 52 as surroundings detection information IS.

[0029] The ECU 90 can detect targets present ahead of the vehicle 100 based on the image data. Furthermore, when the ECU 90 detects a target ahead of the vehicle 100, the ECU 90 can also acquire the moving direction and moving speed of the target based on the image data. Note that targets detected by the ECU 90 based on the image data include, for example, pedestrians and other vehicles.

[0030] The inter-vehicle communication device 53 is a device that performs wireless communication (inter-vehicle communication) with the ECU of another vehicle. The inter-vehicle communication device 53 is electrically connected to the ECU 90. The ECU 90 can acquire surrounding detection information (target data and image data) transmitted by the ECU of the other vehicle via the inter-vehicle communication device 53.

[0031] The ECU 90 can detect targets present near other vehicles based on the surrounding detection information acquired through vehicle-to-vehicle communication. Furthermore, when the ECU detects a target present near other vehicles, it can also acquire the moving direction and moving speed of the target based on the surrounding detection information acquired through vehicle-to-vehicle communication. Note that targets detected by the ECU 90 based on image data include, for example, pedestrians and other vehicles.

[0032] <Vehicle control device operation> Next, we will explain the operation of the vehicle control device 10. The vehicle control device 10 is configured to execute the routine shown in Fig. 2 at a predetermined calculation cycle. Therefore, at a predetermined timing, the vehicle control device 10 starts processing from step S200 of the routine shown in Fig. 2, and proceeds to step S205 to determine whether the target approach condition is met.

[0033] The target entry condition is a condition that there is a target that may enter the area 400 ahead of the host vehicle 100 from the side of the host vehicle 100. For example, as shown in Fig. 3, when a target 200 (a pedestrian in the example shown in Fig. 3) is moving from the side of the host vehicle 100 toward the area 400 ahead of the host vehicle 100, the vehicle control device 10 determines that the target entry condition is met. Note that, based on the movement direction and movement speed of the target 200, the vehicle control device 10 determines whether or not there is a possibility that the target 200 will enter the area 400 ahead of the host vehicle 100, i.e., whether or not the target entry condition is met.

[0034] If the vehicle control device 10 determines "Yes" in step S205, it proceeds to step S210, sets the operating conditions to relaxed conditions, and proceeds to step S220. On the other hand, if the vehicle control device 10 determines "No" in step S205, it proceeds to step S215, sets the operating conditions to normal conditions, and proceeds to step S220.

[0035] The operating conditions are conditions for executing acceleration suppression control, and in this example, they are conditions related to the accelerator pedal operation amount AP, the normal condition is a condition that the accelerator pedal operation amount AP is equal to or greater than a predetermined value (normal operation amount threshold AP_N), and the mitigated condition is a condition that the accelerator pedal operation amount AP is equal to or greater than a predetermined value (mitigated operation amount threshold AP_R) that is smaller than the normal operation amount threshold AP_N.

[0036] The activation conditions may include at least one of a condition regarding whether the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and a condition regarding the vehicle speed V.

[0037] In this case, for example, the normal condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the normal operation amount threshold AP_N, the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the vehicle speed V is equal to or less than a predetermined value (normal speed threshold V_N), and the mitigated condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the mitigation operation amount threshold AP_R, and the vehicle speed V is equal to or less than a predetermined value (mitigation speed threshold V_R).

[0038] In this case, the mitigation condition is met if the accelerator pedal operation amount AP is equal to or greater than the mitigation operation amount threshold AP_R and the host vehicle speed V is equal to or less than the mitigation speed threshold V_R, regardless of whether the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52. Furthermore, the mitigation speed threshold V_R may be set to the same value as the normal speed threshold V_N, or may be set to a value smaller than the normal speed threshold V_N.

[0039] Alternatively, for example, the normal condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the normal operation amount threshold AP_N, the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the vehicle speed V is equal to or less than a predetermined value (normal speed threshold V_N), and the relaxed condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the mitigation operation amount threshold AP_R, the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the vehicle speed V is equal to or less than a predetermined value (mitigation speed threshold V_R).

[0040] Furthermore, the operating conditions may include a condition related to the predicted arrival time TTC instead of the condition related to the host vehicle speed V. The predicted arrival time TTC is the time required for the target 200 to arrive at the host vehicle 100, and is acquired based on the relative positional relationship between the target 200 and the host vehicle 100, the moving speed and moving direction of the target 200, the host vehicle speed V, the traveling direction of the host vehicle 100, etc.

[0041] In this case, for example, the normal condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the normal operation amount threshold AP_N, the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the predicted arrival time TTC is equal to or less than a predetermined value (normal time threshold TTC_N), and the relaxed condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the relaxation operation amount threshold AP_R, and the predicted arrival time TTC is equal to or less than a predetermined value (relaxation time threshold TTC_R).

[0042] When the process proceeds to step S220, the vehicle control device 10 determines whether or not an activation condition (predetermined activation condition) is met. If the determination in step S220 is "Yes," the vehicle control device 10 proceeds to step S225 and executes acceleration suppression control.

[0043] In this example, the acceleration suppression control is a control in which the driving device 20 reduces the acceleration of the vehicle 100 to zero even if the accelerator pedal operation amount AP is large, or in addition, a control in which the braking device 30 brakes and stops the vehicle 100.

[0044] On the other hand, if the vehicle control device 10 determines "No" in step S220, the process proceeds to step S295 and temporarily ends the process of this routine. In this case, the acceleration suppression control is not executed.

[0045] According to this, whether or not the acceleration suppression control needs to be performed is determined depending on whether or not there is a possibility that the target 200 will enter the area 400 ahead of the host vehicle 100. Therefore, it is possible to reliably prevent a collision between the host vehicle 100 and the target 200 while suppressing the unnecessary execution of the acceleration suppression control.

[0046] Alternatively, the vehicle control device 10 may be configured to execute the routine shown in Fig. 4 at a predetermined calculation cycle. In this case, at a predetermined timing, the vehicle control device 10 starts processing from step S400 of the routine shown in Fig. 4, and proceeds to step S405 to determine whether or not the blind spot area 450 has been detected.

[0047] In this example, the blind spot area 450 is an area in which the vehicle control device 10 cannot detect the target 200 based on the periphery detection information IS, and is, for example, an area between two other vehicles 300 parked diagonally ahead of the host vehicle 100, as shown in Fig. 5. The vehicle control device 10 can detect the blind spot area 450 based on the periphery detection information IS.

[0048] If the vehicle control device 10 determines "Yes" in step S405, the process proceeds to step S410, where it performs inter-vehicle communication to acquire information about the blind spot area 450 based on the periphery detection information acquired from the ECU of the other vehicle 300. Note that, in addition to acquiring information about the blind spot area 450 through inter-vehicle communication with the other vehicle 300, the vehicle control device 10 may be configured to acquire information about pedestrians and cyclists present in the blind spot area 450 (e.g., the position, moving direction, moving speed, etc. of the pedestrian or cyclist) as information about the blind spot area 450 through communication with a terminal such as a mobile phone carried by the pedestrian or cyclist. The vehicle control device 10 may also be configured to acquire information about the target 200 present in the blind spot area 450 (e.g., the position, moving direction, moving speed, etc. of the target 200) as information about the blind spot area 450 through communication with an external device such as a monitoring camera installed near the blind spot area 450.

[0049] Next, the vehicle control device 10 advances the process to step S415, and determines whether or not the target 200 is present in the blind spot area 450 based on the information about the blind spot area 450 acquired through inter-vehicle communication.

[0050] If the vehicle control device 10 determines "Yes" in step S415, the process proceeds to step S420, where the vehicle control device 10 acquires the moving direction, moving speed, etc. of the target 200 based on information about the blind spot area 450 acquired through vehicle-to-vehicle communication, and determines whether or not a target entry condition is met based on the acquired information. The target entry condition here is a condition that there is a possibility that the target 200 present in the blind spot area 450 will enter the area 400 ahead of the host vehicle 100. For example, as shown in FIG. 5, when the target 200 is moving from the blind spot area 450 on the side of the host vehicle 100 toward the area 400 ahead of the host vehicle 100, the vehicle control device 10 determines that the target entry condition is met.

[0051] If the vehicle control device 10 determines "Yes" in step S420, the process proceeds to step S425, sets the operating conditions to highly relaxed conditions, and proceeds to step S440.

[0052] On the other hand, if the vehicle control device 10 determines "No" in step S420, the process proceeds to step S430, sets the operating conditions to low-relaxation conditions, and proceeds to step S440.

[0053] Furthermore, if the vehicle control device 10 determines "No" in step S405 or step S415, the process proceeds to step S435, sets the operating conditions to the normal conditions, and proceeds to step S440.

[0054] In the routine shown in FIG. 4, the normal condition is a condition that the accelerator pedal operation amount AP is equal to or greater than a predetermined value (normal operation amount threshold AP_N), the low mitigation condition is a condition that the accelerator pedal operation amount AP is equal to or greater than a predetermined value (low mitigation operation amount threshold AP_RL) that is smaller than the normal operation amount threshold AP_N, and the high mitigation condition is a condition that the accelerator pedal operation amount AP is equal to or greater than a predetermined value (high mitigation operation amount threshold AP_RH) that is smaller than the low mitigation operation amount threshold AP_RL.

[0055] The activation conditions may include at least one of a condition regarding whether the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and a condition regarding the vehicle speed V.

[0056] In this case, for example, the normal condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the normal operation amount threshold AP_N and the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, the low easing condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the low easing operation amount threshold AP_RL, and the high easing condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the high easing operation amount threshold AP_RH.

[0057] In this case, the low mitigation condition is met if the accelerator pedal operation amount AP is equal to or greater than the low mitigation operation amount threshold AP_RL, regardless of whether the target object 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the high mitigation condition is met if the accelerator pedal operation amount AP is equal to or greater than the high mitigation operation amount threshold AP_RH, regardless of whether the target object 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52.

[0058] Alternatively, for example, the normal condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the normal operation amount threshold AP_N and the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and the low easing condition is a condition in which the accelerator pedal operation amount AP is equal to or greater than the low easing operation amount threshold AP_RL and the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52, and a condition in which the accelerator pedal operation amount AP is equal to or greater than the high easing operation amount threshold AP_RH and the target 200 is detected by the electromagnetic wave sensor 51 or the image sensor 52.

[0059] Moreover, the operating conditions may include a condition related to the predicted arrival time TTC instead of the condition related to the vehicle speed V.

[0060] When the process proceeds to step S440, the vehicle control device 10 determines whether the activation conditions are met. If the determination in step S440 is "Yes," the vehicle control device 10 proceeds to step S445, executes acceleration suppression control, proceeds to step S495, and temporarily ends the process of this routine.

[0061] On the other hand, if the vehicle control device 10 determines "No" in step S440, the process proceeds directly to step S495, and the process of this routine ends for the time being.

[0062] According to this, whether or not the acceleration suppression control needs to be performed is determined depending on whether or not there is a possibility that the target 200, including the target 200 present in the blind spot area 450, will enter the area 400 ahead of the host vehicle 100. Therefore, it is possible to reliably prevent a collision between the host vehicle 100 and the target 200 while suppressing the unnecessary execution of the acceleration suppression control.

[0063] The present invention is not limited to the above-described embodiment, and various modifications can be made within the scope of the present invention. [Explanation of symbols]

[0064] 10...vehicle control device, 20...drive device, 41...accelerator pedal, 42...accelerator pedal operation amount sensor, 50...surrounding information detection device, 51...electromagnetic wave sensor, 52...image sensor, 53...vehicle-to-vehicle communication device, 90...ECU, 100...own vehicle, 200...target, 300...other vehicle

Claims

[Claim 1] A vehicle control device including a control device that executes acceleration suppression control to suppress acceleration of a host vehicle when an operating condition including a condition that an accelerator pedal operation amount is equal to or greater than a predetermined threshold is satisfied, the control device is configured to set the predetermined threshold to a smaller value when a target entry condition indicating that a target may enter an area ahead of the host vehicle is satisfied, compared to when the target entry condition is not satisfied. In the vehicle control device, The target entry condition is a condition that a blind spot area exists ahead of the host vehicle, the target exists in the blind spot area, and there is a possibility that the target will enter the area ahead of the host vehicle. Vehicle control device.

Citation Information

Patent Citations

  • Driving support apparatus

    JP2017033403A

  • Vehicle erroneous start restricting device

    JP2018005808A

  • Drive movement detection device and vehicle system

    JP2018154271A

  • Vehicle control device

    JP2020021149A

  • Approaching vehicle detection apparatus, and drive assist system

    WO2013175637A1