Method for monitoring an environment of a vehicle
10488856 ยท 2019-11-26
Assignee
Inventors
Cpc classification
B60Q1/249
PERFORMING OPERATIONS; TRANSPORTING
International classification
G05D1/00
PHYSICS
Abstract
A method for monitoring an environment of a vehicle is provided. The method includes generating an irradiated region in a defined environment of the vehicle using a radiation device of the vehicle. The method also includes detecting the irradiated region is detected using a detection device situated externally to the vehicle, and, in the event that at least partial shadowing of the irradiated region, is detected, controlling the vehicle by a control device situated externally to the vehicle.
Claims
1. A method for monitoring an environment of a vehicle, the method comprising: detecting, by a detection device that is external to the vehicle, an irradiated region generated at least partially by a radiation device of the vehicle in a defined environment of the vehicle; and responsive to a detection, in the detecting step, of an at least partial shadowing of the irradiated region, controlling the vehicle by a control device that is external to the vehicle.
2. The method of claim 1, wherein the radiation device is an internal illumination device of the vehicle.
3. The method of claim 2, wherein the irradiated region is generated using at least one LED.
4. The method of claim 3, wherein the radiation device is operated in a defined pulsed manner.
5. The method of claim 2, wherein the irradiated region is produced in an invisible range.
6. The method of claim 5, wherein the radiation device is operated in a defined pulsed manner.
7. The method of claim 1, wherein the radiation device is an underbody illumination device of the vehicle.
8. The method of claim 1, wherein at least one radiation source that is situated externally to the vehicle contributes to the generation of the irradiated region.
9. The method of claim 1, wherein the controlling includes controlling an assistance system of the vehicle, which is functionally connected to the control device, thereby controlling a defined driving maneuver of the vehicle.
10. A monitoring device for monitoring an environment of a vehicle, the device comprising: a detection device that is external to the vehicle and that is configured to detect at least partial shadowing of an irradiated region generated at least partially by a radiation device of the vehicle in a defined environment of the vehicle; and a control device that is external to the vehicle and that is configured to control the vehicle in response to the detection.
11. A non-transitory computer-readable medium on which are stored instructions that are executable by a processor that is external to a vehicle and that is in communication with a detection device that is external to the vehicle, wherein the instructions, when executed by the processor, cause the processor to perform a method for monitoring an environment of the vehicle, the method comprising: controlling the vehicle in response to a detection, by the detection device, of at least partial shadowing of an irradiated region generated at least partially by a radiation device of the vehicle in a defined environment of the vehicle.
Description
BRIEF DESCRIPTION OF THE DRAWINGS
(1)
(2)
(3)
DETAILED DESCRIPTION
(4) In the following text, the term vehicle is used in particular in the sense of a partially automated vehicle, a fully automated vehicle, an autonomous vehicle, and a partially autonomous vehicle. However, a use of the present method is also conceivable for exclusively manually controlled vehicles.
(5) One core idea of the present invention in particular is to provide a method that makes it possible for persons to be safely moving in an environment of a vehicle or to detect an object in an environment of the vehicle in a reliable manner.
(6) In the following text, a mode of action of exemplary embodiments of the proposed method is described with the aid of figures.
(7)
(8) As a result, a required minimum distance between vehicle 10 and the person or object 30 might not always be achievable, which may result in a dangerous situation for person 30.
(9) Therefore, according to example embodiments of the present invention, an irradiated region 20 is generated around vehicle 10 or within a defined environment of vehicle 10 with the aid of a radiation device, such as in the form of an interior illumination device 11 of vehicle 10. This advantageously enhances a contrast between vehicle 10 and person 30, i.e., the object, so that it is easier for a camera 40 of the parking building to detect the person or object 30 (e.g., a child seat that was set down).
(10) In the event that person 30 is present in the environment of vehicle 10, irradiated region 20 will at least partially be shadowed by person 30, and detection device 40 detects the shadowing of irradiated region 20 and transmits the acquired data to a control device 50 that is functionally connected to detection device 40. As a result, control device 50 wirelessly transmits a control command to vehicle 10, whereupon vehicle 10 initiates or performs a suitable driving maneuver, which is carried out by a driver-assistance system, e.g., in the form of a braking and/or evasive maneuver. In an example embodiment, suitable control commands are transmitted to a vehicle actuator system of vehicle 10 via suitable wireless communications technologies such as WLAN, mobile telephony, etc.
(11) As a result, vehicle 10 is prevented from driving off and from thereby endangering person 30 or damaging object 30 or from being damaged by object 30. In this way, the safety level in valet parking scenarios, for example, is advantageously significantly increased.
(12) With the aid of the provided method, a contrast between vehicle 10 and object/person 30 is detected and evaluated in a defined manner through the use of suitable technical means.
(13) Interior illumination device 11 and/or underbody illumination device 12 are able to be controlled by the infrastructure device, just like vehicle 10, the mentioned devices being switched on when leaving what is known as the drop-off zone, for example, or when entering a pick-up zone of a valet-parking environment.
(14) In this manner, the torso and/or the legs of a person/object 30, for example, is/are detectable since this person/object 30 at least partially interrupts the field of irradiated region 20, or in other words, shadows it. Detection device 40 detects vehicle 10 in the process and checks the integrity of irradiated region 20 around vehicle 10 within the sense of a prescribed safety field, e.g., according to ISO-26262 for safety-relevant electrical/electronic systems in motor vehicles. As an optimization in the context of satisfying the cited standard, the radiation device can also emit radiation in non-visible light (e.g., UV radiation, IR radiation, etc.).
(15) In one further alternative of the provided method, an underbody illumination device 12 of vehicle 10 is used for generating irradiated region 20, as can be gathered from
(16) As another advantageous further development, in an example embodiment, additional radiation is emitted with the aid of an additional radiation-generating device (not shown) of the infrastructure, so that another irradiated region is generated, which makes it possible to further increase the contrast of person 30 in front of vehicle 10 and to improve the detectability of person 30 even more.
(17) The mentioned radiation device in the form of an interior illumination device 11 and underbody illumination device 12 can be realized with the aid of at least one, and preferably a plurality of, LEDs, for example, which emit permanent radiation in visible light.
(18) In one advantageous further development of the present method, the radiation is emitted in a pulsed manner at defined intervals imperceptible by the human eye in an effort to improve a detection rate of detection device 40.
(19) In one further advantageous development of the present method, detection device 40 or control device 50 connected to detection device 40 implement image-processing algorithms that make it possible to distinguish persons from objects 30, for example, so that different control commands are able to be output to vehicle 10 as a function of detected object/person 30.
(20) The evaluation of the data acquired by detection device 40 can, according to an example embodiment, be carried out with the aid of a separate evaluation device (not shown).
(21) According to an example embodiment, software that is run on control device 50 and/or on detection device 40 and/or an external computer device (not shown) implements the described method, aiding in adaptability of the described method.
(22)
(23) In a step 110, irradiated region 20 is detected with the aid of a detection device 40, which is disposed externally to vehicle 10.
(24) In a step 120, in the event that at least partial shadowing of irradiated region 20 is detected, a control of vehicle 10 is carried out using a control device 50 situated externally to vehicle 10.
(25) In summary, the present invention provides a method and a device by which an environment of a vehicle is able to be monitored in a considerably better manner, which significantly increases the safety of a person located in the environment of a vehicle. Technical means (computer devices, detection devices, control devices, etc.) used for this purpose are for the most part disposed in an infrastructure external to the vehicle, which makes it possible to realize the present method at a high detection rate with the aid of cost-effective vehicles.
(26) One skilled in the art can modify and/or combine the afore-described features of the present invention in a suitable manner without departing from the core of the present invention.