Driving assistance systems
The driver assistance device facilitates intuitive lane changes and lateral movements by interpreting hand positions or motions on the steering wheel, eliminating the need for physical steering wheel rotation, thus improving driving support efficiency.
Patent Information
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Filing Date
- 2023-02-07
- Publication Date
- 2026-03-17
AI Technical Summary
Existing driving support devices require drivers to perform steering wheel operations for lane changes, which is inefficient and can complicate the execution of lateral vehicle movements.
A driver assistance device that includes a steering actuator, a detection device for hand position on the steering wheel, and an electronic control unit to control lateral vehicle movements based on hand positions or motions, allowing intuitive lane changes without physical steering wheel rotation.
Enables easy and intuitive lateral vehicle control, simplifying lane changes and other movements by interpreting hand positions or motions on the steering wheel, enhancing driver convenience and vehicle responsiveness.
Smart Images

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Abstract
Description
Technical Field
[0006] , , , ,
[0001] The present disclosure relates to a driving support device for a vehicle.
Background Art
[0002] Patent Document 1 discloses a driving support device. The driving support device detects that the driver has permitted a lane change based on an operation input by the driver to a predetermined operation member of the vehicle. Examples of the predetermined operation member for detecting the driver's intention to change lanes include the steering wheel, together with the wiper lever and the operation device. The operation of the steering wheel is detected from the signal of the steering torque sensor.
Prior Art Documents
Patent Documents
[0003]
Patent Document 1
Summary of the Invention
Problems to be Solved by the Invention
[0004] In Patent Document 1, when the predetermined operation member is the steering wheel, the driver needs to steer the steering wheel to indicate the intention to change lanes. Thus, even in a vehicle equipped with the driving support device, an operation similar to the driving operation by the driver is required for the lateral movement of the vehicle. <00000A driver assistance device according to a first aspect of this disclosure controls the lateral movement of a vehicle. The driver assistance device includes a steering actuator for steering the wheels, a detection device for detecting the position of the driver's hand touching the steering wheel, and an electronic control unit for performing lateral control of the vehicle. In lateral control, the electronic control unit controls the steering actuator so that the vehicle moves laterally to the right when the hand touches the right side of the steering wheel, and controls the steering actuator so that the vehicle moves laterally to the left when the hand touches the left side of the steering wheel.
[0007] The right-side and left-side parts may be those located on the right and left sides of the vehicle, respectively, with respect to a vertical plane passing through the center of the steering wheel.
[0008] The right-side portion is located to the right of the center line parallel to the vertical direction of the steering wheel when the steering wheel is viewed from the front by itself, and may include the upper right, middle right, and lower right portions along the direction of rotation of the steering wheel. The left-side portion is located to the left of the center line when the steering wheel is viewed from the front by itself, and may include the upper left, middle left, and lower left portions along the opposite direction of rotation. The middle right and middle left portions may each be dead zones where lateral control is not performed by the electronic control unit even when touched by a hand.
[0009] The detection device may be a touch sensor built into the steering wheel.
[0010] A second aspect of the present disclosure relates to a driver assistance device that controls the lateral movement of a vehicle. The driver assistance device comprises a steering actuator for steering the wheels, a detection device for detecting a motion in which the driver strokes the steering wheel clockwise or counterclockwise, and an electronic control unit for performing lateral control of the vehicle. In lateral control, the electronic control unit controls the steering actuator so that the vehicle moves laterally to the right when a clockwise stroking motion is detected, and controls the steering actuator so that the vehicle moves laterally to the left when a counterclockwise stroking motion is detected. [Effects of the Invention]
[0011] According to this disclosure, the driver will no longer need to rotate the steering wheel, while still being able to easily request the initiation of lateral movement using the steering wheel. [Brief explanation of the drawing]
[0012] [Figure 1] This diagram schematically shows an example of the configuration of a vehicle control system to which the driver assistance device according to the embodiment is applied. [Figure 2] This is a diagram illustrating a specific example of a vehicle's lateral movement. [Figure 3] This is a diagram illustrating a first control example of lateral control according to an embodiment. [Figure 4] This is a diagram illustrating a second control example of lateral control according to the embodiment. [Figure 5] This is a diagram illustrating a third control example of lateral control according to the embodiment. [Figure 6] This figure illustrates a fourth control example of lateral control according to the embodiment. [Figure 7] This is a diagram illustrating a fifth control example of lateral control according to the embodiment. [Figure 8] This figure illustrates a sixth control example of lateral control according to the embodiment. [Figure 9] This figure illustrates a seventh control example of lateral control according to the embodiment.
Best Mode for Carrying Out the Invention
[0013] Embodiments of the present disclosure will be described with reference to the accompanying drawings. In the drawings, elements common to each figure are denoted by the same reference numerals, and redundant descriptions are omitted or simplified.
[0014] 1. Configuration of Vehicle Control System FIG. 1 is a diagram schematically showing an example of the configuration of a vehicle control system 10 to which a driving support device according to an embodiment is applied. The "driving support device" according to the present disclosure is included in the vehicle control system 10 as an example. The vehicle control system 10 is mounted on a vehicle 1 and executes various controls of the vehicle 1. The vehicle control system 10 includes a sensor group 12, a traveling device 20, an electronic control unit (ECU) 30, and an information transmission device 40.
[0015] The sensor group 12 includes a recognition sensor, a vehicle state sensor, and a position sensor. The recognition sensor recognizes (detects) the situation around the vehicle 1. Examples of the recognition sensor include a camera, LIDAR (Laser Imaging Detection and Ranging), a radar, etc. The vehicle state sensor detects the state of the vehicle 1. The vehicle state sensor includes, for example, a vehicle speed sensor, an acceleration sensor, a yaw rate sensor, and a steering angle sensor. The position sensor detects the position and orientation of the vehicle 1. For example, the position sensor includes a GNSS (Global Navigation Satellite System) receiver.
[0016] Further, the sensor group 12 includes a steering touch sensor (or simply a touch sensor) 14. The touch sensor 14 is built into the steering wheel (SW) 2 of the vehicle 1 (see, for example, FIG. 3). The touch sensor 14 is, for example, a capacitive type and detects that the driver's hand has touched the SW 2. Therefore, the touch sensor 14 can be used, for example, to detect that the driver is gripping the SW 2.
[0017] More specifically, the touch sensor 14 is installed so as to be able to detect the position of the driver's hand touching the steering wheel 2. Further, as will be described later together with the seventh control example, the touch sensor 14 is installed so as to be able to detect the operation of the driver stroking SW2 clockwise or counterclockwise with a hand. Note that the steering touch sensor 14 corresponds to an example of the "detection device" according to the present disclosure. As another example of the detection device, for example, a driver monitor capable of detecting various states and operations of the driver using a camera may be used.
[0018] The traveling device 20 is a device that operates the vehicle 1. For example, the traveling device 20 includes a driving device, a braking device, and a steering device. The driving device includes, for example, at least one of an electric motor and an internal combustion engine for driving (accelerating) the vehicle 1. The braking device includes a brake actuator for braking (decelerating) the vehicle 1. The steering device includes a steering actuator 22 that steers the wheels 3. The steering actuator 22 includes an electric motor. The steering actuator 22 can be used as an actuator that assists the driver's steering or controls the steering angle of the wheels 3 during the execution of automatic steering that does not require the driver's steering operation.
[0019] Note that, as an example, SW2 is mechanically connected to the wheels 3 (steering wheels). Therefore, when the wheels 3 are steered by the steering actuator 22, SW2 rotates accordingly. However, except for the third control example described later, SW2 does not necessarily have to be mechanically connected to the wheels 3 (steering wheels), that is, it may be applied to a steer-by-wire type steering device. Also, SW2 does not necessarily have to be circular.
[0020] The ECU 30 is a computer that controls the vehicle 1. The ECU 30 includes a processor 32 and a storage device 34. The processor 32 performs various processes. The storage device 34 stores various information necessary for the processing performed by the processor 32. The ECU 30 may be configured by combining multiple ECUs. The various processes performed by the ECU 30 are realized by the processor 32 executing a computer program. The computer program is stored in the storage device 34. Alternatively, the computer program may be recorded on a computer-readable recording medium.
[0021] The information transmission device 40 is a device for transmitting information about the vehicle 1 (vehicle information), surrounding situation information, driver operation information, and the control status of the vehicle 1 to the driver. The information transmission device 40 is at least one of a display device 42 and an audio transmission device 44. The display device 42 is, for example, at least one of a HUD (Head Up Display), a MID (Multi Information Display), and an instrument panel. The audio transmission device 44 is a speaker.
[0022] 2. Driver assistance control (lateral control) In this embodiment, the vehicle control system 10 functions as an Advanced Driving Assistant System (ADAS) and controls the running gear 20 to activate predetermined driving assistance functions. The predetermined driving assistance functions include, for example, one or both of the lane change assistance function and the lane keeping assistance function, as driving assistance functions related to the lateral movement (lateral movement) of the vehicle 1. The vehicle 1 may also be an autonomous vehicle capable of performing Level 3 autonomous driving as defined by the Society of Automotive Engineers (SAE) in the United States.
[0023] Figures 2(A) to 2(G) illustrate specific examples of lateral movement of vehicle 1. Examples of lateral movement of vehicle 1 include actions performed in various scenarios, such as the following: In scenario A, the lateral movement is a lane change. In scenarios B1 to B3, the lateral movement concerns lateral movement within the same lane to avoid various obstacles. These obstacles include, for example, surrounding vehicles 100 that are moving or stationary, fallen objects 102, road fixtures 104, or road defects 106 such as sinkholes. In scenario C, the lateral movement occurs at a road junction. In scenario D, the lateral movement occurs at a merging point. Furthermore, as in scenario E, the lateral movement includes turning right or left by vehicle 1.
[0024] When a driver uses driver assistance functions for lateral movement in the various scenarios described above, the driver needs to request the vehicle 1 to initiate the desired lateral movement. Being able to easily request the initiation of lateral movement without requiring rotation of the steering wheel 2 is useful for the driver. Furthermore, if the method for requesting lateral movement is complex, it becomes difficult for the vehicle 1 to perform the intended lateral movement at the timing and location intended by the driver.
[0025] In view of the above-mentioned issues, in this embodiment, the ECU 30 performs "lateral control" as a driver assistance control to realize a driver assistance function related to lateral movement. In this lateral control, the steering touch sensor 14 is used to detect a request for lateral movement from the driver. That is, the ECU 30 controls the steering actuator 22 in response to a request for lateral movement from the driver detected based on the signal from the touch sensor 14.
[0026] Specifically, the following control examples 1 to 6 concerning lateral control share the following common point: When the driver's hand touches the right side (or right part) RP of SW2, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves laterally to the right. On the other hand, when the driver's hand touches the left side (or left part) LP of SW2, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves laterally to the left. More specifically, "right side" here refers to the right side in the direction of vehicle travel, and "left side" refers to the left side in the direction of vehicle travel. Details of the seventh control example will be described later.
[0027] Furthermore, the first to seventh control examples are described assuming a scenario in which a driver assistance function with hands-off functionality is being performed. However, the lateral control in the first to seventh control examples may also be performed when the driver's movement requesting lateral movement is detected while the driver is holding SW2.
[0028] 2-1. First control example Figure 3 is a diagram illustrating a first control example of lateral control according to the embodiment. The straight line L0 shown in Figure 3 corresponds to the center line of SW2. As shown in Figure 3, the center line L0 is parallel to the vertical direction D1 of SW2 when SW2 is viewed from the front as a standalone unit. The center of Figure 3 shows SW2 in a neutral state. In the neutral state, the center line L0 is parallel to the vehicle's vertical direction D2.
[0029] In the first control example, the right part RP of SW2 corresponds to the part located to the right of the center line L0. The left part LP corresponds to the part located to the left of the center line L0. More specifically, the angle θ used to describe the position of the parts of SW2 is the angle centered at the center point P0 of SW2, and is 0° at the upper end position P1 of SW2. The right part RP corresponds to the part where the angle θ is within the angular range from 0° to 180°, and the left part LP corresponds to the part where the angle θ is within the angular range from 180° to 360°.
[0030] In the first control example, the ECU 30 determines, based on the signal from the touch sensor 14, whether the position touched by the driver's hand is the right RP or the left LP. If the position touched by the driver's hand (e.g., right hand 4R) is the right RP, the ECU 30 controls the steering actuator 22 to cause the vehicle 1 to change lanes to the right. More specifically, the ECU 30 causes the vehicle to change lanes from the current lane LN1 to the adjacent lane LN2 to the right of LN1. As a result, as shown in Figure 3, SW2 rotates to the right in conjunction with the steering of the wheel 3. SW2 then returns to the neutral position.
[0031] On the other hand, if the position touched by the hand (for example, left hand 4L) is left LP, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the left. More specifically, the ECU 30 causes the vehicle to change lanes from the current lane LN2 to lane LN1. As a result, as shown in Figure 3, SW2 rotates to the left in conjunction with the steering of wheel 3. SW2 then returns to the neutral position.
[0032] According to the first control example described above, by lightly tapping SW2 as shown in Figure 3, for example, the driver automatically changes lanes to the right or left depending on the position of the touch on SW2. Thus, according to the first control example, the driver uses a simple and easy-to-understand action to communicate their intention to change lanes: lightly tapping the right RP or left LP of SW2 corresponding to the desired lane direction. This allows the driver to communicate their intention to change lanes to the vehicle 1 in an intuitive and simple manner. This leads to the ability to quickly and accurately support lane changes based on the driver's intentions.
[0033] As described above, according to the first control example, the driver does not need to rotate SW2, and the driver can easily request the start of lateral movement using SW2. The same applies to the second to seventh control examples.
[0034] In addition, according to the first control example, the action taken by the driver to request lateral movement is different from steering by the driver; it is an action (contact) of touching SW2, such as lightly tapping or stroking SW2. Therefore, this method makes it easy to distinguish the driver's action for requesting lateral movement from the action of the driver gripping SW2 for manual driving (hands-on action). This is also true for the second to seventh control examples.
[0035] Furthermore, according to the first control example, the existing touch sensor 14 on the vehicle 1 is used to determine whether the driver is gripping the SW2, and to determine whether the driver is performing an action to request lateral movement. This makes it possible to perform lateral control according to this embodiment without requiring the addition of any devices. The same applies to the second to seventh control examples.
[0036] 2-2. Second Control Example Figure 4 is a diagram illustrating a second control example of lateral control according to the embodiment. The second control example differs from the first control example in the content of the lateral movement operation that is the target of the lateral control. That is, in the second control example, if the position touched by the right hand 4R is the right RP, the ECU 30 controls the steering actuator 22 so that the vehicle 1 moves to the right within the same lane. On the other hand, if the position touched by the left hand 4L is the left LP, the ECU 30 controls the steering actuator 22 so that the vehicle 1 moves to the left within the same lane.
[0037] Furthermore, lateral control may be performed not only for lane changes or lateral movements within the same lane, but also for lateral movements performed at junctions or merging points, or for right or left turns (see Figures 2(E) to 2(G)). Thus, according to this embodiment, various lateral movements intended by the driver can be realized while simplifying the actions required to request lateral movement.
[0038] 2-3. Third Control Example Figure 5 is a diagram illustrating a third control example of lateral control according to the embodiment. In the first and second control examples described above, the right RP and left LP are distinguished by the center line L0. In other words, in the first and second control examples, the SW2 is assumed to be in a neutral state (i.e., in a straight-ahead state), and the SW2 is distinguished into the right RP and the left LP. On the other hand, the center of Figure 5 shows SW2 in a state where it is rotating, for example, clockwise due to automatic steering.
[0039] Even if SW2 is mechanically connected to wheel 3 (steering wheel), as in the example of vehicle 1, when moving straight, the center line L0 of SW2 coincides with or substantially coincides with the direction of center line L1, which is a straight line along the vertical plane passing through the center point P0 of SW2. On the other hand, when SW2 is mechanically connected to wheel 3, during steering, as shown in Figure 5, the direction of the center line L0 of SW2 will be different from the direction of center line L1.
[0040] Therefore, in the third control example, the right RP and left LP are distinguished by the center line L1 instead of the center line L0. That is, the right RP is identified as the part located to the right of the center line L1. Similarly, the left LP is identified as the part located to the left of the center line L1.
[0041] According to the third control example described above, the driver can request a lateral movement without being aware of the rotation angle of SW2 while steering.
[0042] In Figure 5, a lateral movement within the same lane is shown as an example of the lateral movement operation related to the third control example; however, the third control example may also be used for other lateral movement operations such as lane changes.
[0043] 2-4. Fourth Control Example Figure 6 is a diagram illustrating a fourth control example of lateral control according to the embodiment. In the fourth control example, in lateral control, the ECU 30 controls the steering actuator 22 so that the vehicle 1 moves laterally in different ways depending on the position where the driver's hand touches it.
[0044] Specifically, in the fourth control example, as in the first and second control examples, the right RP and left LP are distinguished by the center line L0. Furthermore, the right RP is distinguished into the upper right RP_upr and the lower right PP_lwr by the center line L2. Similarly, the left LP is distinguished into the upper left LP_upr and the lower left PP_lwr by the center line L2. The center line L2 is a straight line along the horizontal plane passing through the center point P0 of SW2. Therefore, in the fourth control example, the signals from the touch sensor 14 are distinguished more precisely than in the first to third control examples.
[0045] If the position touched by the right hand 4R is the upper right RP_upr, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the right. Also, if the position touched by the right hand 4R is the lower right RP_lwr, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves to the right within the same lane.
[0046] Similarly, if the position touched by the left hand 4L is the upper left LP_upr, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the left. Also, if the position touched by the left hand 4L is the lower left LP_lwr, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves to the left within the same lane.
[0047] According to the fourth control example described above, the driver can use a single component, namely SW2, to intuitively and simply communicate a request for one of several types (e.g., two types) of lateral movement to the vehicle 1. The ECU 30 can then effectively differentiate between the multiple types of lateral movement requests.
[0048] Figure 6 shows a combination of lane change and lateral movement within the same lane as an example of multiple types of lateral movement related to the fourth control example. However, the fourth control example may also be used for other combinations of multiple types of lateral movement shown in Figures 2(A) to 2(G). The same applies to the following fifth control example. In addition, in the fourth, fifth, and sixth control examples, center line L1 may be used instead of center line L0.
[0049] 2-5. Fifth Control Example Figure 7 is a diagram illustrating a fifth control example of lateral control according to the embodiment. In the fifth control example, in lateral control, the ECU 30 controls the steering actuator 22 so that the vehicle 1 performs lateral movement in different ways depending on the number of times the driver's hand touches it.
[0050] Specifically, in the fifth control example, as in the first and second control examples, the right RP and left LP are distinguished by the center line L0. Then, for example, if the touch sensor 14 detects that the right hand 4R has touched the right RP twice in a row by lightly tapping SW2, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the right. On the other hand, if the right hand 4R has touched the right RP only once, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves to the right within the same lane.
[0051] Similarly, if the ECU 30 detects using the touch sensor 14 that the left hand 4L has touched the left LP twice in a row, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the left. On the other hand, if the left hand 4L has touched the left LP only once, the ECU 30 controls the steering actuator 22 so that vehicle 1 moves to the left within the same lane.
[0052] As demonstrated by the fifth control example described above, the driver can use a single component, namely SW2, to intuitively and simply communicate a request for one of several types (e.g., two types) of lateral movement to the vehicle 1. The ECU 30 can then effectively differentiate between these multiple types of lateral movement requests.
[0053] Furthermore, in the lateral control according to a modified example of the fifth control example, the ECU 30 may control the steering actuator 22 so that the vehicle 1 performs a lateral movement in different ways depending on the "time" that the driver's hand is touching the SW2. Specifically, taking the scene in which the right hand 4R touches the right part RP as an example, if the time is longer than a predetermined threshold, for example, a lane change to the right may be performed. If the time is less than or equal to the threshold, for example, a lateral movement to the right within the same lane may be performed.
[0054] 2-6. Sixth Control Example Figure 8 is a diagram illustrating a sixth control example of lateral control according to the embodiment. The sixth control example is based on the fourth control example described above, but differs from the fourth control example in that the right RP and left LP each include the following dead zones.
[0055] Specifically, in the sixth control example, the right RP includes the upper right RP_upr, the middle right RP_mid, and the lower right RP_lwr along the rotation direction D3 of SW2 (for example, clockwise). Similarly, the left LP includes the upper left LP_upr, the middle left LP_mid, and the lower left LP_lwr along the opposite direction of rotation D3.
[0056] The right-center RP_mid and left-center LP_mid correspond to the parts where the driver grips SW2 during manual operation. More specifically, for example, the right-center RP_mid includes the position where the angle θ (see Figure 3) is 90°, and the left-center LP_mid includes the position where the angle θ is -90°.
[0057] In the sixth control example, the right-center RP_mid and left-center LP_mid are each set as dead zones. These dead zones correspond to areas where lateral control is not performed (permitted) by the ECU 30 even if the driver's hand 4R or 4L touches them. Additionally, if the driver's hand 4R or 4L touches the dead zone (right-center RP_mid or left-center LP_mid), the ECU 30 may determine that the driver has performed the action of gripping SW2 for manual operation (hands-on action).
[0058] According to the sixth control example described above, by providing the dead zone, it becomes possible to appropriately separate the driver's action of gripping SW2 for manual operation (hands-on action) from the driver's action for requesting lateral movement. This makes it possible to avoid unnecessary operation of lateral control when the driver is about to start manual operation.
[0059] 2-7. Seventh Control Example Figure 9 is a diagram illustrating a seventh control example of lateral control according to the embodiment. In the first to sixth control examples described above, the touch sensor 14 is used to detect the position where the hand touches. In contrast, in the seventh control example, the touch sensor 14 is used to detect the driver's motion of stroking the SW2 clockwise or counterclockwise with their hand. It should be added that, in this "stroking motion," no steering torque is applied to the SW2 by the driver.
[0060] In the seventh control example, if a clockwise stroking motion is detected, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the right. On the other hand, if a counterclockwise stroking motion is detected, the ECU 30 controls the steering actuator 22 so that vehicle 1 changes lanes to the left.
[0061] According to the seventh control example described above, the vehicle automatically changes lanes to the right or left depending on the direction in which the driver's hand strokes SW2. This seventh control example also allows the driver to communicate their intention to change lanes to vehicle 1 in an intuitive and simple manner. This leads to the ability to quickly and accurately support lane changes based on the driver's intentions.
[0062] In Figure 9, lane changes are shown as an example of lateral movement related to the seventh control example; however, the seventh control example may also be used for other lateral movement actions, such as lateral movement within the same lane.
[0063] 2-8. Example of a method for separating actions for lateral movement requests from hands-on actions The distinction between an action for a lateral movement request (here, action A) and a hands-on action may be made, for example, based on the amount of time the driver's hand is touching SW2, as follows. Here, the output of the touch sensor 14 when the hand is not touching SW2 is referred to as OFF, and the output when the hand is touching SW2 is referred to as ON. If a series of actions occur within a predetermined time T0 (for example, 0.1 seconds or more and 0.5 seconds or less) in which the output of the touch sensor 14 changes from OFF to ON, and then from ON to OFF, the ECU 30 may determine that action A has been performed. This method may be applied, for example, to the first to sixth control examples.
[0064] Furthermore, with respect to the fifth control example (see Figure 7), the following method may be used for the above distinction. That is, the ECU 30 determines the number of times the above series of operations were performed within a predetermined time T0 within a predetermined unit time (for example, 2 seconds). If the number is 1, the ECU 30 may determine that operation A was performed, which corresponds to the case in the fifth control example where the hand touched the right RP or left LP once. Also, if the number is 2, the ECU 30 may determine that operation A was performed, which corresponds to the case in the fifth control example where the hand touched the right RP or left LP twice.
[0065] Furthermore, in order to avoid unnecessary operation of the lateral control in this embodiment when the driver performs a hands-on operation to start manual driving, the constraints for starting the lateral control may be set as follows: That is, the constraint may be set that SW2 is in a neutral state before the start of the lateral control. This method may be applied, for example, to the first, second, and fourth to seventh control examples. [Explanation of Symbols]
[0066] 1 Vehicle, 2 Steering wheel (SW), 10 Vehicle control system, 12 Sensor group, 14 Steering touch sensor, 20 Running gear, 22 Steering actuator, 30 Electronic control unit, 32 Processor, 34 Memory device, LP Left side, RP Right side
Claims
1. A driver assistance device that controls the lateral movement of a vehicle, A steering actuator that turns the wheels, A detection device that detects the position of the driver's hand touching the steering wheel, An electronic control unit that performs lateral control of the vehicle, Equipped with, In the aforementioned lateral control, the electronic control unit, If the hand touches the right side of the steering wheel, the steering actuator is controlled so that the vehicle moves laterally to the right. If the hand touches the left side of the steering wheel, the steering actuator is controlled so that the vehicle moves laterally to the left. The aforementioned right-side portion is located to the right of the center line parallel to the vertical direction of the steering wheel when the steering wheel is viewed from the front as a standalone object, and includes the upper right portion, the middle right portion, and the lower right portion along the rotational direction of the steering wheel. The aforementioned left-side portion is located to the left of the center line when the steering wheel is viewed from the front as a standalone unit, and includes the upper left, middle left, and lower left portions in the direction opposite to the direction of rotation. The right-center and left-center areas are dead zones where the lateral control is not performed by the electronic control unit even if the hand touches them. A driving assistance device characterized by the following features.
2. The aforementioned right-side portion and left-side portion are located on the right and left sides of the vehicle, respectively, with respect to a vertical plane passing through the center of the steering wheel. The driving support device according to feature 1.
3. The detection device is a touch sensor built into the steering wheel. The driving support device according to feature 1.
Citation Information
Patent Citations
Device, method and computer product for controlling a parameter of the lateral guidance and / or vertical dynamics of a vehicle, and a corresponding vehicle
DE102019122488A1
Steering wheel, steering wheel unit, and sensor sheet
JP2019023009A
Drive assist system
JP2020033013A
Vehicle control device, vehicle and vehicle control method
JP2020117165A
Vehicle control system
JP2020138600A