This application is the national stage of PCT/EP2004/007507 filed on Jul. 8, 2004 and also claims Paris Convention priority of DE 103 43 331.7 filed on Sep. 12, 2003.
The invention relates to a method and a computer program for detecting the contour of an obstacle in the surroundings of a moving vehicle using a sensor means which is preferably disposed in a side area of the vehicle. The invention also relates to a computer program and a parking space detecting device for performing this method.
A parking aid for vehicles is conventionally known, in particular from DE 101 46 712 A1. It comprises two distance sensors providing two sensor signals of different beam geometries, which generate together a directional characteristic with a cross lobe. These sensor means are preferably disposed in the side area of a vehicle. In this cross lobe configuration, one of the sensors has a wide beam lobe in a horizontal direction and a narrow beam lobe in a vertical direction. When the vehicle passes an obstacle, at least the following steps are performed:
Emitting a first sensor signal by the sensor means in one direction having a directional portion that lies in the direction of travel of the vehicle, when the obstacle is ahead of the vehicle in the travelling direction.
Receiving at least part of the first sensor signal after reflection thereof on the obstacle in the form of a first reflection signal which represents a first position and a first shape of the contour of the obstacle;
Emitting a second sensor signal by the sensor means in a direction having a directional portion that is opposite to the direction of travel of the vehicle, when the vehicle has passed the obstacle;
Receiving at least part of the second sensor signal after reflection thereof on the obstacle in the form of a second reflection signal which represents a second position and a second shape of the contour of the obstacle; and/or
Emitting a third sensor signal by the sensor means in a direction substantially perpendicular to the direction of travel when the passing vehicle is at the position of the obstacle; and
Receiving at least part of the third sensor signal after reflection thereof on the obstacle in the form of a third reflection signal which represents a third position and third shape of the contour of the obstacle.
DE 101 46 712 evaluates, in particular, the amplitudes of the reflection signals of the two sensor means which are received when the vehicle is passing the obstacle. The evaluation thereof gives information about the position and shape of the contour of the obstacle.
Departing from the above-mentioned prior art, it is the object of the invention to further develop a conventional method and computer program, as well as a conventional parking space detecting device for detecting the contour of an obstacle in the vicinity of a moving vehicle in such a manner that the position and/or the shape of the contour of the obstacle can be recognized with more precision.
This object is achieved by the method of the independent claims. To be more precise, the solution of the above-described method lies in the following characterizing steps: generating an averaged reflection signal through mathematical, preferably arithmetical, averaging of at least two of the reflection signals and through evaluation of the averaged reflection signal towards extracting the actual position and/or the actual shape of the contour of the obstacle.
Each individual reflection signal provides rough information about the position and the shape of the contour of the obstacle. The information concerning the position and shape provided by the individual reflection signals only presents a rough indication of the actual position and the actual shape and usually does not exactly correspond therewith. However, the claimed mathematical averaging of at least two of the reflection signals advantageously provides significantly more precise information about the actual position and/or the actual shape of the contour of the obstacle. In principle, the at least two reflection signals used for averaging may be arbitrarily selected. It is, however, recommended to consider, in any case, the third reflection signal for averaging, since it provides very precise conclusions per se about the actual position and the actual shape of the contour of the obstacle.
Further precision can be achieved through suitable weighting of the reflection signals used for mathematical averaging.
The first and second and optionally also third sensor signals fundamentally lie in one plane. The claimed method detects only obstacles which are intersected by the plane. To detect a possible change of the contour shape of the obstacle in the vertical direction, the detection plane can advantageously be inclined relative to its angle with respect to a fictitious vertical plane in the travelling direction of the vehicle and perpendicular to the street surface on which the vehicle is travelling.
The inventive method is advantageously suited for radar, ultrasound or laser light signals.
Further advantageous embodiments of the method are the subject matter of the dependent claims.
The above-mentioned object of the invention is moreover achieved by a computer program and a parking space detecting device for performing the claimed method. The advantages of these solutions correspond to the advantages mentioned above with reference to the claimed method.
The description includes a total of eight figures, wherein
a shows different examples of the contour of an obstacle which would be determined from different reflection signals;
b shows the actual contour of the obstacle in comparison with the shape of the obstacle on the basis of an evaluation of a reflection signal averaged in accordance with the invention;
a shows a vehicle passing a first obstacle and comprising a sensor means that emits in different planes;
b shows a vehicle passing a second obstacle and comprising a sensor means that emits in different planes;
a shows a vehicle passing an obstacle which is stepped in the vertical direction;
b shows averaged reflection signals obtained while passing the obstacle shown in
c shows a reconstruction of the contour of the obstacle of
The invention is described in detail below using different embodiments with reference to the above-mentioned figures.
In accordance with the invention, this parking space detecting device functions as follows: At least one first sensor signal is emitted by the sensor means 110 towards the obstacle 300 with a directional portion that lies in the travelling direction F of the vehicle, preferably as long as the obstacle 300 is opposite to and ahead of the vehicle 200 in the travelling direction F. The sensor signal is reflected at the obstacle 300 and at least part of this first sensor signal is then received by the sensor means 110 in the form of a first reflection signal. The first sensor signal represents a first position x1 and a first shape V1 of the contour of the actual obstacle 300.
After the vehicle has passed the obstacle, the sensor means 110 sends a second sensor signal towards the obstacle 300 having a directional portion opposite to the direction of travel of the vehicle 200. At least part of this second sensor signal, which is reflected by the obstacle 300, is received by the sensor means 110 in the form of a second reflection signal. The second reflector signal R2 thereby represents a second position x2 and a second shape V2 of the contour of the obstacle 300. Since the two positions x1 and x2 represented by the two reflection signals, and the two contour shapes V1 and V2, taken alone, are insufficient to represent the actual relationships, they are mathematically, preferably arithmetically, averaged in accordance with the invention.
The averaged reflection signal R obtained in this manner represents the actual position x and the actual shape V of the contour of the obstacle 300 much better than the values obtained from the first or second reflection signal alone. This is shown in
A further substantial improvement in the actual position x and the actual contour shape V of the obstacle can be obtained if, in addition to the first and second reflection signals, a third reflection signal R3 is also used for averaging. To obtain the third reflection signal, a third sensor signal is emitted by the sensor means 110 in a direction substantially perpendicular to the direction of travel F and towards the obstacle 300 when the vehicle is at the position of the obstacle 300. The third reflection signal R3 then represents at least part of this third sensor signal after being reflected from the obstacle 300. The third reflection signal R3 is preferably averaged with a higher weighting factor than the first and second reflection signals, since it has turned out to represent more realistic information about the position and the contour of the obstacle 300 compared to the first and second sensor signals. The first and second reflection signals are preferably averaged with the same weighting.
As described above, it is a prerequisite of the present invention that the obstacle 300 is in the detection range of the sensor means 110 when it is ahead of the vehicle 200 in the travelling direction, and also when the vehicle 200 has already passed the obstacle. The first, second and preferably also third sensor signals or reflection signals can therefore be regarded as substantially being in one plane, as indicated in
a shows shape profiles of different angular orientations of this plane, in side view. All possible angular plane orientations E-1 . . . -N shown therein differ in position by a differing angle α-1 . . . -N relative to a fictitious vertical plane Ev, which extends in the travelling direction of the vehicle 200, perpendicular to a road surface 250 on which the vehicle is travelling. If the parking space detecting device is designed such that it emits the sensor signals only in one of these planes E-1 . . . N, the inventive method also detects only those obstacles 300 which are intersected by the respective plane. In
In order to be able to precisely detect obstacles 300 of different heights, the sensor means 110 is advantageously designed such that the sensor signals are emitted not only in one plane but in several planes E-1 . . . -N, either simultaneously or temporally offset. When the vehicle 200 passes a stepped obstacle 300″ in the travelling direction F (
The sensor means 110 for performing the inventive method must be designed to at least emit sensor signals in one of the planes E-1 . . . -N. Advantageously, it can also emit the sensor signals in a third dimension, represented by the angles α-1 . . . N. Towards this end, it is preferably designed as multi-beam or scanner system.
The inventive method is preferably realized in the form of a computer program. The computer program for a parking space detecting device is stored, possibly together with further computer programs, on a data carrier which can be read by a computer. The data carrier may be a disk, a compact disk, a so-called flash-memory or the like. The computer program stored on the data carrier can then be transferred and sold to a customer in the form of a product. The computer program can be transferred and sold to a customer even without a physical data carrier, e.g. via a communications network, in particular, the internet.
Number | Date | Country | Kind |
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103 43 331 | Sep 2003 | DE | national |
Filing Document | Filing Date | Country | Kind | 371c Date |
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PCT/EP2004/007507 | 7/8/2004 | WO | 00 | 3/8/2006 |
Publishing Document | Publishing Date | Country | Kind |
---|---|---|---|
WO2005/033736 | 4/14/2005 | WO | A |
Number | Name | Date | Kind |
---|---|---|---|
5765116 | Wilson-Jones et al. | Jun 1998 | A |
5790403 | Nakayama | Aug 1998 | A |
6292725 | Kageyama et al. | Sep 2001 | B1 |
6442476 | Poropat | Aug 2002 | B1 |
6832156 | Farmer | Dec 2004 | B2 |
7049945 | Breed et al. | May 2006 | B2 |
7248153 | Danz et al. | Jul 2007 | B2 |
20020169537 | Regensburger et al. | Nov 2002 | A1 |
20030004644 | Farmer | Jan 2003 | A1 |
20040158355 | Holmqvist et al. | Aug 2004 | A1 |
Number | Date | Country |
---|---|---|
697 10 579 | Feb 2002 | DE |
101 46 712 | Apr 2003 | DE |
101 48 289 | Apr 2003 | DE |
0 783 114 | Jul 1997 | EP |
1 333 296 | Aug 2003 | EP |
6 127 318 | May 1994 | JP |
WO 2004042423 | May 2004 | WO |
Number | Date | Country | |
---|---|---|---|
20070030347 A1 | Feb 2007 | US |