WO2014041757A1 - 駐車支援装置 - Google Patents

駐車支援装置 Download PDF

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Publication number
WO2014041757A1
WO2014041757A1 PCT/JP2013/005162 JP2013005162W WO2014041757A1 WO 2014041757 A1 WO2014041757 A1 WO 2014041757A1 JP 2013005162 W JP2013005162 W JP 2013005162W WO 2014041757 A1 WO2014041757 A1 WO 2014041757A1
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WO
WIPO (PCT)
Prior art keywords
approach
parking space
parking
host vehicle
section
Prior art date
Legal status (The legal status is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the status listed.)
Ceased
Application number
PCT/JP2013/005162
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English (en)
French (fr)
Japanese (ja)
Inventor
大塚 秀樹
啓子 秋山
Current Assignee (The listed assignees may be inaccurate. Google has not performed a legal analysis and makes no representation or warranty as to the accuracy of the list.)
Denso Corp
Soken Inc
Original Assignee
Denso Corp
Nippon Soken Inc
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Denso Corp, Nippon Soken Inc filed Critical Denso Corp
Priority to DE112013004443.9T priority Critical patent/DE112013004443B4/de
Publication of WO2014041757A1 publication Critical patent/WO2014041757A1/ja
Anticipated expiration legal-status Critical
Ceased legal-status Critical Current

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    • BPERFORMING OPERATIONS; TRANSPORTING
    • B62LAND VEHICLES FOR TRAVELLING OTHERWISE THAN ON RAILS
    • B62DMOTOR VEHICLES; TRAILERS
    • B62D15/00Steering not otherwise provided for
    • B62D15/02Steering position indicators ; Steering position determination; Steering aids
    • B62D15/027Parking aids, e.g. instruction means
    • B62D15/0285Parking performed automatically
    • BPERFORMING OPERATIONS; TRANSPORTING
    • B60VEHICLES IN GENERAL
    • B60RVEHICLES, VEHICLE FITTINGS, OR VEHICLE PARTS, NOT OTHERWISE PROVIDED FOR
    • B60R16/00Electric or fluid circuits specially adapted for vehicles and not otherwise provided for; Arrangement of elements of electric or fluid circuits specially adapted for vehicles and not otherwise provided for
    • B60R16/02Electric or fluid circuits specially adapted for vehicles and not otherwise provided for; Arrangement of elements of electric or fluid circuits specially adapted for vehicles and not otherwise provided for electric constitutive elements

Definitions

  • This disclosure relates to a parking assistance device that presents a forward approach to a parking space.
  • Patent Document 1 discloses a parking assist device that calculates a backward approach when parking backwards and automatically drives a steered wheel (front wheel) according to the calculation result. Further, Patent Document 2 discloses a parking assist device that calculates a forward approach for forward-facing parking and displays the calculation result on a display device.
  • the parking space when parking backward, the parking space moves forward from the current position. It is an approach to pass in front of the car and then move backward to enter the parking space. Therefore, when passing in front of the parking space, the parking space can be detected by an in-vehicle camera, a sonar, or the like, and based on the detection result, an approach for retreating and entering the parking space can be set. In other words, in the case of backward-facing parking, the parking space can be detected when passing in front of the parking space before entering the parking space, so that the detection can be performed with high accuracy, and thus the reverse approach can be set with high accuracy. .
  • the purpose of the present disclosure is to provide a parking assist device that can set a forward approach when parking forwardly with high accuracy.
  • a parking assist device that presents a forward approach that is a vehicle path for advancing and entering a parking space is provided as follows.
  • the traveling direction of the host vehicle is the X direction and the direction perpendicular to the X direction is the Y direction, it exists on the front side of the parking space in the X direction.
  • a target acquisition section for acquiring an X-direction position and a Y-direction position of the target to be detected, and an X-direction position and a Y-direction position of the parking space based on the position of the target acquired by the target acquisition section.
  • a parking space estimation section to be estimated; and an approach setting section for setting the forward approach based on the position of the parking space estimated by the parking space estimation section.
  • the X direction position and the Y direction position of the target existing in the X direction front side of the parking space are acquired, and the X direction position and the Y direction position of the parking space are estimated based on the acquired target position. Therefore, the position of the parking space can be estimated without directly detecting the parking space, and the forward approach is set based on the estimated position, so the forward approach can be set with high accuracy.
  • the figure which shows the parking assistance apparatus concerning one Embodiment of this indication The figure explaining the estimation method of the edge part Ve, A diagram illustrating the direct and turnaround approaches, A diagram explaining how to set the direct approach, A diagram explaining the setting method of the reversal approach, A diagram showing the situation of resetting the approach based on the estimated deviation of the parking space position, A diagram showing the situation where the approach is re-established if the parking space was not present at the estimated location, A flowchart showing the steps to set the approach, The flowchart which shows the procedure which resets an approach.
  • FIG. 1 shows a vehicle V (also referred to as a host vehicle V) on which an electronic control device (ECU 10) that functions as a parking assistance device is mounted, and also, in the front-rear direction of a plurality of parked vehicles adjacent to the parking space PS or It is a top view which shows the condition which parks so that a longitudinal direction may adjoin and parallel (vehicle front-and-rear length parallel parking or vehicle length parallel parking).
  • the ECU 10 includes a microcomputer including a CPU, a ROM, and a RAM.
  • the vehicle V has a structure in which the steered wheels 11 (front wheels) are driven by the electric motor 12, and the ECU 10 controls the drive of the electric motor 12 so that the steering angle is in accordance with the steering operation amount of the driver during normal driving. To control the steering angle.
  • the ECU 10 functions as a parking assistance device by performing automatic steering described below. That is, when the driver turns on the operation switch 16 to activate the parking assist system, the electric motor 12 is driven to automatically bring the steered wheels 11 to the optimum steering angle even when the driver is not operating the steering. Operate (automatic steering). Therefore, if the driver depresses the accelerator pedal and runs without operating the steering, the vehicle can be parked in the parking space PS with the minimum number of times of turning.
  • a plurality of sonars 13, 14, 15 are attached to the vehicle V. These sonars 13 to 15 detect the distance to the obstacle by transmitting the exploration wave and receiving the reflected wave of the exploration wave reflected by the obstacle.
  • the dotted lines in FIG. 1 indicate the obstacle detectable range for each of the sonars 13-15.
  • the sonar indicated by reference numerals 13 and 14 corresponds to a “side sensor” that detects an obstacle located on the side of the vehicle V.
  • the ECU 10 estimates the position of the parking space PS (strictly speaking, the relative position of the parking space PS with respect to the host vehicle V) based on the detection results of the sonars 13-15. Then, based on the estimated position, an optimal parking approach for calculating the vehicle V into the parking space PS is calculated.
  • This parking approach includes a backward approach when the vehicle is moved backward and parked backward, and a forward approach where the vehicle is moved forward and parked forward.
  • the operation switch 16 is comprised so that back-facing parking and forward-facing parking can be selected. That is, the driver selects whether to automatically steer backward or forward, and the ECU 10 calculates either a reverse approach or a forward approach according to the selection.
  • FIG. 1A shows the layout of the parking space PS and the host vehicle V when the parking assist system is activated by the operation of the operation switch 16, and FIG. 1B shows the layout from the position of FIG. The state after going straight.
  • the traveling direction of the host vehicle V at this time is defined as the X direction, and the direction perpendicular to the X direction is defined as the Y direction.
  • the ECU 10 functions as a target acquisition section, device, or means, and based on the detection results of the sonars 13 to 15 during the period in which the host vehicle V moves forward from the position (a) to the position (b), the parking space PS
  • the X direction position and the Y direction position of the target existing on the near side in the X direction are acquired.
  • another vehicle V1 parked next to the front side of the parking space PS is the target.
  • the position of the edge portion Ve on the front side in the X direction of the other vehicle V1 is estimated based on the detection results of the sonars 13-15.
  • the target detected by the sonars 13 to 15 is a general vehicle (another vehicle V1).
  • the X-direction length W1 of the target is the vehicle width of the general vehicle (for example, about 1.8 m). (See FIG. 1B).
  • the position advanced by 1.8 m in the X direction from the edge portion Ve is the front corner portion PS1 of the parking space PS.
  • the width dimension W2 of the parking space PS is a specific value (for example, 3.2 m)
  • the position advanced 1.8 m + 3.2 m in the X direction from the edge portion Ve is the rear corner of the parking space. That means PS2. Therefore, if the position of the edge portion Ve of the target (another vehicle V1) is acquired, the positions of the corners PS1 and PS2 of the parking space PS can be accurately estimated based on the position.
  • FIG. 2 (a1), (a2), and (a3) are diagrams for explaining an estimation method of the edge portion Ve, and a dotted line 13a in (a1) indicates that the position of the vehicle V in the X direction is the position of FIG. 1 (a).
  • a detection distance of the sonar 13 at a certain time is shown, and a dotted line 13b indicates a detectable range of the sonar 13 at that time.
  • Vf in (a2) indicates the position of the edge portion Vf on the far side in the X direction of the other vehicle V1.
  • the detectable range and the detection distance of the sonar 13 when the sonar 13 is positioned forward (back side) from the near side edge portion Ve and backward (front side) from the back side edge portion Vf are shown. Show. As shown in (a2), even if the vehicle V is moved forward during this period, the detection distance does not change.
  • a dotted line 13e in (a3) indicates the detection distance of the sonar 13 when the position of the vehicle V in the X direction is further advanced than in FIG. 1B, and a dotted line 13f indicates a detectable range of the sonar 13 at that time. Indicates. Then, when the vehicle V moves forward toward the parking space PS (see the arrow in the figure) and the position of the sonar 13 in the X direction changes, the sonar 13 is moved away from the back edge portion Vf by the sonar 13. The detection distance becomes longer.
  • the inflection point Ve (x) position of the sonar 13 output shown in (b1) is the X-direction position of the near-side edge portion Ve.
  • the detection distance calculated based on the output of the sonar 13 at the inflection point Ve (x) is the Y-direction position of the near-side edge portion Ve.
  • the sonar 13 is positioned between the front edge portion Ve and the back edge portion Vf. It can be detected.
  • the inflection point Vf (x) position of the sonar 13 output shown in (b3) is the X-direction position of the back edge portion Vf.
  • the detection distance calculated based on the sonar 13 output at the inflection point Vf (x) is the Y-direction position of the back edge portion Vf.
  • the ECU 10 can grasp the relative positional relationship between the vehicle V and the edge portions Ve and Vf based on the transition of the detection distance that occurs as the vehicle V moves forward, and determines the X-direction position and the Y-direction position of the edge portions Ve and Vf. You can get it.
  • the positions of the corners PS1 and PS2 of the parking space PS can be estimated. Note that when the position of the inflection point Ve (x) shown in (b2) is detected, the position of the front edge portion Ve can be acquired, and the positions of the corners PS1 and PS2 of the parking space PS can be estimated.
  • the vehicle width for example, about 1.8 m
  • the inflection point Vf (x) position shown in (b2) moves forward to a detectable position, the positions of the corners PS1 and PS2 can be estimated with higher accuracy.
  • the direct approach is an approach in which a forward advance parking is performed directly in the parking space PS by operating the steering angle toward the parking space PS and moving forward.
  • the turn-back approach first advances from the current position shown in (b1) and passes in front of the parking space PS ( (Refer to (b2)).
  • the steering angle is operated toward the position where direct approach is possible (see (b3)). Thereafter, the vehicle advances into the parking space PS by operating the steering angle to enter the parking space PS (see (b4)).
  • the direct approach is also called the One-path approach.
  • the switching approach is also called a multi-path approach.
  • the ECU 10 calculates the Y-direction distance L1 (see FIGS. 3A1 and 3B1) between the host vehicle V and the separate vehicle V1 when the parking space PS position can be estimated as the position of the front edge portion Ve is acquired. To do. If the calculated distance L1 (first distance) is equal to or greater than the threshold th1 (predetermined value), the optimum steering angle is calculated so that automatic steering is performed by a direct approach. On the other hand, if the distance L1 is less than the threshold value th1, the optimum steering angle is calculated so that automatic steering is performed by the turning-back approach.
  • FIG. 4 is a diagram illustrating a method for setting the threshold th1.
  • An alternate long and short dash line K ⁇ b> 1 in the drawing indicates a trajectory of the vehicle V in the left-right direction center portion of the non-steering wheel 11 r (rear wheel) (hereinafter referred to as “vehicle center”).
  • Dotted lines K2 and K3 indicate the outer locus and the inner locus of the vehicle V in the case of the direct approach.
  • the radius R1 of the vehicle center locus K1 is minimized when the steering angle is maximized. Therefore, when the center of the radius R1 is located on the parking space side (lower side in FIG. 4) with respect to the predetermined position P1 in the Y direction, direct approach cannot be performed. Therefore, the above-described threshold th1 is set to the value of the Y-direction distance L1 when the center of the radius R1 coincides with the predetermined position P1.
  • the center of the radius R1 is located on the parking space side (left side in FIG. 4) in the X direction from the predetermined position P1, direct approach is not possible even if L1 ⁇ th1. Therefore, the fact that the center of the radius R1 is located on the right side in the X direction with respect to the predetermined position P1 is also one of the conditions that enable direct approach. Further, the ECU 10 directly sets the approach (vehicle center locus K1) so that the outer locus K2 of the vehicle V does not interfere with an obstacle (another vehicle V2) that is adjacent to the back side of the parking space PS.
  • FIG. 5 shows a reverse approach as shown in FIG. 3 (b3) in the situation where an obstacle (a wall W in the example of FIG. 5) exists on the opposite side of the parking space PS with respect to the host vehicle V in the Y direction.
  • An alternate long and short dash line K4 in the drawing indicates the vehicle center locus at the time of reverse, and the radius R2 of the vehicle center locus K4 is minimum when the steering angle is maximized. If the trajectory K4 at the time of reverse approach of the turn-back approach is in a state where it touches or intersects the trajectory K1 when the direct approach is possible, it switches to the forward direction shown in FIG. It means that the vehicle can be parked forward in the parking space PS as in the approach.
  • the ECU 10 directly sets an approach (vehicle center locus K1) so that the outer locus K5 of the vehicle V does not interfere with an obstacle (another vehicle V2) that is adjacent to the back side of the parking space PS.
  • the position of the parking space PS is as much as possible in the Y direction so that the locus K4 can touch or intersect the locus K1, and the outer locus K5 is different.
  • the ECU 10 sets a turn-back approach so that the vehicle 10 is guided to a position that does not interfere with the vehicle V2 (a dotted line position in FIG. 5).
  • the ECU 10 sets the turn-back approach so that the locus K4 is in contact with the locus K1. Note that when both the trajectories K4 and K1 cannot contact, the ECU 10 sets the turning approach so that the trajectory K4 intersects the trajectory K1.
  • the ECU 10 sets the approach so that the outer locus K2 of the vehicle V does not interfere with an obstacle (another vehicle V2) existing on the back side of the parking space PS.
  • the host vehicle V cannot interfere with the other vehicle V2 and move backward. Therefore, if the Y-direction distance L2 (second distance) between the host vehicle V and the wall W is not less than the threshold th2, the number of turnovers performed by the turnback approach is two or more. In this case, the approach is set so that (b3) and (b4) in FIG. 3 are repeated twice or more. Note that the above-described threshold th2 is set to the value of the Y-direction distance L2 when the center of the radius R2 coincides with the predetermined position P2.
  • FIG. 6A shows the layout of the parking space PS and the host vehicle V when the edge portion Ve of the separate vehicle V1 is detected and the parking space position is estimated
  • FIG. The state which advanced by the direct approach from the position of a) is shown.
  • the ECU 10 continuously executes obstacle search by the sonars 13 to 15.
  • the position of the separate vehicle V2 is detected during the direct approach, and when the detected position interferes with the estimated parking space position, the estimated position of the parking space PS is corrected.
  • FIG. 6 (b) is an example in which it is detected that another vehicle V2 that is estimated to be present at the dotted line position is present at the solid line position, and the positional deviation is found as indicated by the arrow A.
  • the position in the X direction of the back corner portion PS2 of the parking space PS is corrected to the near side as indicated by the arrow B by the amount of the positional deviation.
  • the ECU 10 resets the vehicle center locus K1 related to the direct approach, and the ECU 10 calculates the optimum steering angle based on the reset locus K1.
  • FIG. 6 shows a situation where an estimated shift of the parking space position has occurred
  • FIG. 7 shows a situation where the parking space PS does not exist at the estimated position. That is, when it is estimated that the parking space PS is present at the position indicated by the alternate long and short dash line in the drawing due to the detection of the edge portion Ve of the separate vehicle V1, the obstacle vehicle is continuously searched.
  • FIG. 7 shows a situation where the presence of V3 is detected.
  • FIG. 8 is a flowchart showing a procedure for setting an approach used for calculating an optimum steering angle related to automatic steering, and the processing of FIG. 8 is repeatedly executed at a predetermined cycle by the microcomputer of the ECU 10.
  • each section is expressed as S10, for example.
  • each section can be divided into a plurality of subsections, while a plurality of sections can be combined into one section.
  • each section configured in this manner can be referred to as a device, module, or means.
  • each of the above sections or a combination thereof includes not only (i) a section of software combined with a hardware unit (eg, a computer), but also (ii) hardware (eg, an integrated circuit, As a section of (wiring logic circuit), it can be realized with or without the function of related devices.
  • the hardware section can be configured inside the microcomputer.
  • S10 of FIG. 8 it is determined whether or not the operation switch 16 is turned on and the parking support system is activated. If activated (S10: YES), in the next S11 (target acquisition section, device, or means), detection of the edge portion Ve of the target (another vehicle V1) is executed as shown in FIG. Until this edge detection is completed, the host vehicle V continues to move forward in the X direction. When the edge detection is completed (S12: YES), in the subsequent S13 (parking space estimation section, device, or means), the corners PS1, PS2 of the parking space PS are determined based on the X-direction position and the Y-direction position of the edge portion Ve. X-direction position and Y-direction position are estimated.
  • the separation distance L1 (Y-direction distance L1 shown in FIG. 3) between the host vehicle V and the target V1 calculated from the Y-direction position of the edge portion Ve is set. It is determined whether or not it is less than the above-described threshold th1. If it is determined that L1 ⁇ th1 (S14: NO), it is considered that a direct approach is possible, and in the subsequent S15, a direct approach (trajectories Ka, Kb shown in FIG. 3) is set based on the parking space positions PS1, PS2. .
  • the locus Ka is set according to K1 in FIG. Then, until the vehicle V becomes parallel to the Y direction, automatic steering is performed according to the locus Ka. After the vehicle V becomes parallel, the locus of direct approach is to switch to the locus Kb that goes straight with the steering angle set to 0 degree.
  • the direct approach is regarded as impossible, and the trajectory related to the return approach is calculated according to whether or not the obstacle W exists on the return side. That is, if it is determined that the obstacle W does not exist based on the detection results of the sonars 13 to 15 (S16: NO), the process proceeds to the subsequent S17, and the vehicle center locus Kc related to the turn-back approach based on the parking space positions PS1 and PS2. , Kd, Ke (see FIG. 3).
  • a turn-back approach is set so as not to interfere with the obstacle W and another vehicle V2 when reversing.
  • S18 it is determined whether or not the separation distance L2 between the host vehicle V and the obstacle W (Y-direction distance L2 shown in FIG. 5) is less than the above-described threshold th2. If it is determined that L2 ⁇ th1 (S18: NO), it is considered that the return approach is possible by one return, and in S19, the return approach is performed based on the parking space positions PS1, PS2 and the separation distances L1, L2.
  • the vehicle center trajectories Kc, Kd, and Ke are calculated.
  • FIG. 9 is a flowchart showing a procedure for resetting the approach set in FIG. 8, and the processing in FIG. 9 is repeatedly executed by the microcomputer of the ECU 10 at a predetermined cycle.
  • the parking space PS estimated in S13 of FIG. 8 is estimated in the subsequent S31 (exploration section, device, or means). Whether or not it exists at the position is determined based on the result of the obstacle search. If it is determined that it does not exist (S31: NO), the process proceeds to S32 (resetting section, device, or means), and the direct approach set in S15 of FIG. 8 is changed to a locus K6 that advances in the X direction ( (See FIG. 7). Then, the approach is reset according to the processing of FIG.
  • S37 If it is determined that the obstacle W exists (S37: YES), the process proceeds to S39 (resetting section, device, or means), the direct approach is changed to the turn-back approach, and the host vehicle V is added to the other vehicle V5 and the obstacle W. Is set based on the actual PS position and the separation distances L1 and L2.
  • the position of the front edge portion Ve of the target existing on the front side in the X direction of the parking space PS is acquired, and the parking space position (PS position) is based on the acquired target position. Is estimated. Therefore, the PS position can be estimated without directly detecting the parking space PS, and the forward approach (direct approach or turnback approach) is set based on the estimated position, so that the forward approach can be set with high accuracy.
  • the host vehicle V is equipped with side sensors 13 and 14 for detecting obstacles located on the side of the host vehicle, and the target acquisition section S11 determines the detection result of the side sensors 13 and 14. Based on the target, the position of the edge portion Ve on the near side in the X direction is acquired. And parking space estimation section S13 estimates a parking space position based on the position of acquired edge part Ve.
  • the probability that the target is a general vehicle is high, and in this case, the length of the target in the X direction is the vehicle width of the general vehicle (for example, about 1.8 m). Then, a position that is advanced 1.8 m in the X direction from the edge portion Ve on the near side in the X direction in the target object is the near side corner PS1 of the parking space. And since the probability that the width dimension of the parking space PS is a specific value (for example, 3.2 m) is high, the position advanced 1.8 m + 3.2 m in the X direction from the edge portion Ve is the back side of the parking space PS. This is the corner PS2. Therefore, if the position of the edge portion Ve is acquired, the position of the parking space PS can be accurately estimated based on the position.
  • the width dimension of the parking space PS is a specific value (for example, 3.2 m)
  • the position of the parking space PS is estimated based on the acquired position of the edge portion Ve, even if the parking space PS does not pass in front of the parking space PS, The position can be estimated with high accuracy.
  • the approach setting section includes a direct approach determination section S14 that determines whether or not a direct approach is possible based on the estimated parking space position. That is, the ECU 10 has functions as an approach setting section and a direct approach determination section. According to this, an appropriate approach can be set as the forward approach among the direct approach and the turnback approach.
  • the presence or absence of erroneous estimation such as the parking space position estimated before the start of forward parking deviates from the actual position (S33: YES), or the parking space does not exist (S31: NO) Can be confirmed by exploring during forward parking.
  • the parking approach is reset based on the exploration results, it is possible to recover when there is an erroneous estimation.
  • the approach setting section has the first distance L1
  • the direct approach is set as the forward approach on condition that it is equal to or greater than the predetermined value th1 (S14: NO).
  • the forward approach cannot be parked in the parking space PS by the direct approach.
  • the direct approach is selected on condition that the first distance L1 is equal to or greater than the predetermined value th1 (S14: NO), the optimum approach can be set with high accuracy. .
  • the parking space PS and the host vehicle are in a situation where the parking space PS is located obliquely forward in the direction of travel of the host vehicle V and there is an obstacle W diagonally forward of the opposite side of the parking space PS when viewed from the host vehicle V.
  • the Y-direction separation distance from V is referred to as a first distance L1
  • the Y-direction separation distance between the obstacle W and the host vehicle V is referred to as a second distance L2.
  • the approach setting section sets the turning approach based on the first distance L1 and the second distance L2 when the turning approach is set as the forward approach.
  • the direct approach cannot be parked as described above, so the turnaround approach is selected.
  • the host vehicle V interferes with the obstacle in the process of reversing to the position where the direct approach is possible (reverse process) in the process of turning back.
  • the second distance is not sufficiently secured, in setting the approach of passing in front of the parking space (passing process) and the approach of the retreating process in the turning approach process, in view of avoiding the interference Need to be set.
  • the turning approach is set based on the first distance and the second distance, the optimum approach for avoiding the interference can be set with high accuracy.
  • the position of the edge portion Ve of the target V1 is detected, and the parking space position is estimated based on the detected position.
  • the ECU 10 target acquisition section
  • the X direction position of the target is acquired based on the instruction of the host vehicle driver. For example, in the X direction, when the distance between the edge portion Ve of the target V1 or the front corner portion PS1 of the parking space (predetermined position) and a specific part of the host vehicle V becomes a predetermined distance, or When the predetermined position coincides with the specific portion, the driver is prompted to turn on the operation switch 16. And a parking space position is estimated based on the ON operation timing.
  • the target V1 is a general vehicle.
  • the length of the target V1 in the X direction is the vehicle width (for example, about 1.8 m) of the general vehicle.
  • the probability that the width dimension of the parking space PS is a specific value (for example, 3.2 m) is high. Therefore, if the X direction position of the target V1 can be acquired, the X direction position of the parking space PS can be accurately estimated based on the position.
  • the Y direction position of the parking space PS is highly likely to be the same as the Y direction position of the target V1
  • the Y direction position of the parking space can be determined based on that position. It can be estimated accurately.
  • the X direction position of the target V1 is acquired according to the driver's instruction, and the Y direction distance L1 between the target V1 and the host vehicle V based on the detection results of the sonars 13-15. (Y direction position) is acquired. And the position of parking space PS is estimated based on the X direction position and Y direction position of the acquired target V1. Therefore, even if it is a case where it does not pass in front of parking space PS per forward parking, a parking space position can be estimated accurately.
  • an instruction by temporarily stopping the vehicle at a specific position of the target V1 in the X direction, or the driver operates the switch 16 at the specific position For example.
  • the obstacle detection sensor does not have to use a sound wave like the sonars 13 to 15, and may use, for example, a light wave or a radio wave.
  • a sensor such as an ultrasonic sensor, a laser radar, or a millimeter wave radar can be used.
  • the surroundings of the vehicle V may be imaged with a camera mounted on the vehicle V, and the ECU 10 may acquire the position of the target V1 based on the captured image.
  • a forward approach that is a vehicle path for advancing and entering the parking space PS by automatically steering with an optimum steering angle based on the approach set by the processing of FIG. 8 is presented.
  • the forward approach may be presented to the driver of the vehicle V by displaying the set approach on the display, or the forward approach to the driver of the vehicle V is provided by voice guidance according to the set approach. May be presented.

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  • Engineering & Computer Science (AREA)
  • Mechanical Engineering (AREA)
  • Chemical & Material Sciences (AREA)
  • Combustion & Propulsion (AREA)
  • Transportation (AREA)
  • Traffic Control Systems (AREA)
  • Steering Control In Accordance With Driving Conditions (AREA)
PCT/JP2013/005162 2012-09-12 2013-09-02 駐車支援装置 Ceased WO2014041757A1 (ja)

Priority Applications (1)

Application Number Priority Date Filing Date Title
DE112013004443.9T DE112013004443B4 (de) 2012-09-12 2013-09-02 Parkassistenzvorrichtung

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JP2012200700A JP5786833B2 (ja) 2012-09-12 2012-09-12 駐車支援装置
JP2012-200700 2012-09-12

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