System and method for testing driver assistance systems in a motor vehicle
The system and method provide a solution for accurate testing of driver assistance systems by using simulation modules to generate sensor signals independently of vehicle vibrations, addressing the limitations of existing methods and improving test accuracy.
Patent Information
- Application Number
- JP2022549347
- Authority / Receiving Office
- JP · JP
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2020-02-20
- Filing Date
- 2021-02-19
- Publication Date
- 2025-08-06
- Estimated Expiration
- 2041-02-19
AI Technical Summary
Existing methods for testing driver assistance systems in vehicles are limited by the difficulty in simulating real-world driving scenarios on a vehicle test bench, particularly due to interference from vibrations and limited space for installing multiple stimulus units, which affects the accuracy and realism of sensor signal simulations.
A system and method that utilize simulation modules with environmental sensors and stimulus devices to generate sensor signals independently of the vehicle, allowing for realistic simulation of driving scenarios without physical interference, using direct or indirect connections to a control unit, and incorporating structurally identical sensors to replicate real-world interactions.
Enables comprehensive and accurate testing of driver assistance systems by decoupling simulation modules from physical vibrations, ensuring realistic sensor signal generation and reducing interference, thus enhancing the reliability of test results.
Smart Images

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Abstract
Description
[Technical Field]
[0001] The present invention relates to a system for testing driver assistance systems of motor vehicles and to a method for testing driver assistance systems of motor vehicles on a vehicle test bench. [Background technology]
[0002] Modern driver assistance systems have become popular due to the comfort and increased driving safety they provide. The development of such systems is increasingly based on the so-called "from road to rig" approach, within which driver assistance system tests are carried out in a simulated environment rather than in a real one.
[0003] The "road-to-equipment" approach is implemented, for example, in a so-called "vehicle-in-the-loop" approach, which allows a vehicle to operate as if it were in a real-world environment, but the vehicle's interaction with that environment is simulated, and therefore controlled and generated. It is known, for example, to place a simulation device in front of a sensor on the vehicle that is configured to measure distances to simulate objects at different distances from the vehicle. This makes it possible to test the reaction of a driver assistance system to objects and their distances from the vehicle. Summary of the Invention [Means for solving the problem]
[0004] One task of the present invention is to enable improved testing of driver assistance systems on vehicle test benches.
[0005] This task is solved by a system for testing a driver assistance system of a motor vehicle and a method for testing a driver assistance system of a motor vehicle on a vehicle test bench according to the independent claims.
[0006] A first aspect of the present invention relates to a system for testing a driver assistance system of a motor vehicle, the driver assistance system comprising a control unit for processing sensor signals configured to process sensor signals of at least one environmental sensor of the motor vehicle, the environmental sensor configured to detect environmental information and convert the environmental information into a sensor signal. The system comprises a vehicle test bench configured to operate at least one drivetrain of the motor vehicle with at least one simulation module, the simulation module incorporating at least one environmental sensor and comprising a stimulation device assigned to the environmental sensor. In particular, the environmental sensor is an array of multiple environmental sensors, the array being assigned a single simulation device, or each individual environmental sensor of the array being assigned a simulation device. The environmental sensors incorporated by the simulation module correspond in particular to or are the environmental sensors of the motor vehicle in terms of function and / or structure. The simulation module is connected to the vehicle test bench for signal transmission to transmit the sensor signals from the simulation module to a control unit of the driver assistance system. This signal transmission connection is in particular designed as a direct connection or an indirect connection via a simulation platform or a simulation interface, respectively. Preferably, the signaling connection is secured via an integration platform.
[0007] A second aspect of the present invention relates to a method for testing a driver assistance system of a motor vehicle on a vehicle test bench, the method comprising the steps of simulating a test environment via at least one simulation module and generating, by the at least one simulation module, sensor signals, preferably instead of sensor signals of at least one environmental sensor of the motor vehicle fixed on or in the motor vehicle (3), for processing by a control unit of the driver assistance system. Further, the method comprises the step of operating at least one of the drivetrains of the motor vehicle on the vehicle test bench based on the sensor signals using the driver assistance system.
[0008] A third aspect of the present invention is a method for testing a driver assistance system of a motor vehicle on a test track, comprising the steps of: simulating a test environment by at least one simulation module; generating, via at least one simulation module, a sensor signal instead of a sensor signal of at least one environmental sensor of the motor vehicle, for processing by a control unit of the driver assistance system; operating the vehicle on a test track based on sensor signals generated by the at least one simulation module using the driver assistance system; The present invention relates to a method comprising:
[0009] Within the meaning of the present invention, an environmental sensor is in particular a device for detecting and / or measuring physical variables in its environment, in particular the surroundings of a motor vehicle. Preferably, the environmental sensor is configured to survey, in particular scan, the environment or surroundings of the motor vehicle, respectively. The environmental sensor preferably comprises a receiver and a signal converter, the receiver preferably reacting directly to the physical or chemical measured variable or detecting a characteristic thereof quantitatively and / or qualitatively, respectively, and the signal converter converting said detected characteristic into a signal that can be preferably transmitted electrically.
[0010] The environmental sensor is preferably designed as an active sensor, in particular an infrared camera, an ultrasonic sensor, a radar sensor and / or a lidar sensor, in particular configured to emit sound waves or, respectively, electromagnetic waves and to receive sound waves or electromagnetic waves, in particular reflected by objects and affected by the environment or the surroundings of the vehicle, respectively. Further preferred is the design of the environmental sensor as a passive sensor or receiver, in particular a camera or a GPS receiver. The environmental sensor is preferably configured to generate a sensor signal based on a received measurement signal, in particular a response signal of the stimulus device characterizing the measurement signal and / or the information contained in the signal.
[0011] Within the meaning of the present invention, a simulation module particularly comprises an environmental sensor and a stimulus device assigned to the environmental sensor. The stimulus device is preferably configured to provide a measurement signal, particularly a response signal and / or a measurement variable, to its associated environmental sensor. In particular, an environment, preferably a vehicle environment or a driving situation of a motor vehicle, is simulated by a measurement signal generated or modulated by the stimulus device. This measurement signal is preferably characterized by a physical measurement variable, which is preferably detected by a receiver of the environmental sensor and converted into a sensor signal by a signal converter of the environmental sensor. Preferably, at least one stimulus device is assigned to each environmental sensor of the simulation module, particularly preferably in a one-to-one assignment, to enable the provision of the most specific measurement signal or response signal possible for the environmental sensor.
[0012] Within the meaning of the present invention, a driver assistance system is preferably a system for assisted driving, a system for partially automated driving, a system for highly automated driving, a system for fully automated driving or a system for autonomous driving, in particular said respective system for automated driving corresponds to the classification and / or definition of the SAE J3016 standard.
[0013] Within the meaning of the present invention, a vehicle test bench is configured to operate, in particular, a drivetrain and / or a part thereof of a vehicle, or a component or vehicle, respectively, in particular the steering of the vehicle. Preferably, the vehicle test bench is a roller dynamometer or a drivetrain test bench. Real-world driving situations are preferably simulated during operation of the drivetrain and / or the vehicle on the vehicle test bench. In particular, what is shown or simulated is the real-world operation of the vehicle, in particular the physical forces or environmental conditions that the vehicle experiences during actual driving. Thus, forces transmitted or capable of being transmitted to a stimulation unit arranged on the vehicle act on the vehicle test bench. This thereby results in damage or vibrations to particularly sensitive components of the stimulation device, which adversely affect signal transmission between the stimulation unit and its associated environmental sensor.
[0014] The present invention is particularly based on a method for operating a driver assistance system in a motor vehicle on a vehicle test bench, based at least to some extent on sensor signals that characterize a simulated environment or a simulated traffic scenario, respectively. Preferably, the sensor signals processed by the control unit of the driver assistance system are generated by a simulation module. The simulation module thereby realizes the simulation of the environment / driving situation, particularly the generation of the sensor signals. In particular, the sensor signals are represented by environmental sensors integrated by the simulation module, rather than by environmental sensors located in or on the motor vehicle alone. Preferably, the system according to the present invention comprises multiple simulation modules, the environmental sensors preferably being based on different measurement principles. A system designed in this way offers a high degree of flexibility and possibilities for comprehensively testing driver assistance systems.
[0015] In particular, when simulating an environment based on sensor signals from multiple environmental sensors, one stimulus unit may be allocated to each respective environmental sensor. Due to limited space conditions on or around a vehicle to be tested on a vehicle test bench, it is difficult to install multiple stimulus units, especially when the various stimulus units each have an associated shielding device or only limited accessibility to the environmental sensors.
[0016] The simulation module of the present invention is preferably designed as a separate structural unit of a preferably modular system that can be located and operated independently of the vehicle or vehicle test bench, respectively. The simulation module allows sensor signals to be generated spatially, preferably independent of the physical location or in-use position of the environmental sensors. Due to the physical, particularly spatial, decoupling of the simulation module from the vehicle, the simulation module, particularly improves the simulation of the environment. This therefore, particularly makes it possible to operate and / or test the vehicle on a vehicle test bench without modifications, particularly without additions or superstructures to the stimulus units for the environmental sensors.
[0017] In one preferred embodiment, the simulation module is designed to generate sensor signals representing environmental information from the perspective of the vehicle's environmental sensors. This provides the control unit with a particularly accurate simulation of the environment for processing. Such sensor signals preferably include information about interactions with other environmental sensors of the vehicle. Thus, testing of environmental sensors, particularly individual environmental sensors or their influence on driver assistance systems, respectively, can be particularly realistically represented.
[0018] In a further preferred embodiment, the simulation module is connected to the vehicle test bench, in particular the control unit, only by a connection means for signal transmission. Preferably, this connection is realized in the form of one or more cables, a bus system, in particular a fieldbus, or a wireless connection for data transmission. Therefore, no additional interfaces are required for signal transmission.
[0019] This allows for a physical, particularly spatial, separation of the simulation module and the vehicle test bench. In doing so, it is possible to avoid or even completely prevent the transmission of movements, particularly shocks or vibrations, from the automobile or vehicle bench to the simulation module. Thus, stimulation of the stimulation device of the environmental sensor of the simulation module can ensure that, without physical damage, the environmental sensor detects the measurement signal emitted by the stimulation device, preferably without interference, thereby generating a sensor signal that preferably reproduces the complete simulated environmental scenario.
[0020] In a further preferred embodiment, the environmental sensors integrated by the simulation module are identical to the environmental sensors of the driver assistance system they replace. Identical environmental sensors providing sensor signals that are provided to the control unit for processing ensure a particularly realistic signal quality in the context of tests. In particular, the environmental sensors integrated by the simulation module are of structurally identical design and / or are at least functionally identical to the environmental sensors of the driver assistance system they replace.
[0021] In a further preferred embodiment, the system comprises at least two simulation modules, at least two of which differ in the measurement principles applied by their integrated environmental sensors. The use of different simulation modules allows testing of individual environmental sensors and their influence on the driver assistance system, in particular independently of each other. In particular, mutual influences and / or interactions of environmental sensors resulting from interference and overlapping measurement ranges can thereby be reduced or even prevented or systematically analyzed.
[0022] Similarly, it may be realized that the system uses multiple simulation modules based on the same measurement principle, different measurement principles, or a combination of the same and different measurement principles.
[0023] In a further preferred embodiment, at least one simulation module comprises at least two environmental sensors, two of which differ in terms of the measurement principles they apply. When using two or more environmental sensors, in particular when they are based on different measurement principles and in particular when the environmental sensors are actually actively emitting signals, their measurement ranges may overlap, which may result in interactions and / or particularly undesirable mutual interference. In order to take this mutual influence into account during testing of driver assistance systems, it may be advantageous to arrange the environmental sensors relatively close to each other in a single simulation module, with regard to accounting for this interaction.
[0024] Provision is further possible for providing environmental sensors based on the same, similar and / or different combinations within their own simulation modules in order to reliably show or respectively take into account their interactions relative to and with each other during testing of the driver assistance systems.
[0025] In a further preferred embodiment, at least one environmental sensor is arranged and / or integrated into a component, in particular a component of a vehicle, preferably the body of the vehicle, which can be incorporated by at least one simulation module. Such a component, in particular the entirety, can be separated from the vehicle to be tested and mounted in or on the simulation module. Alternatively, a second, in particular structurally identical, component can be mounted in or on the simulation module.
[0026] Such a configuration for the simulation module allows for a particularly realistic description of the environment by the generated sensor signals, in particular because the interactions and structural characteristics resulting from the unique placement of environmental sensors in or on the component are represented and taken into account by the control unit during processing. The environmental sensors may also be located within the component such that they are not accessible or easily accessible, in particular when installed within the vehicle for stimulation by the stimulation device. Decoupling the component from the vehicle or providing a structurally identical copy of the component and using said component as an environmental sensor for the simulation module may facilitate the allocation or placement of the at least one stimulation device.
[0027] In a further preferred embodiment, the simulation module, particularly the environmental sensor or stimulation device integrated with the stimulation device, is realized as a structural unit, preferably covered by a housing. Preferably, the simulation module exhibits a material particularly suitable for absorbing signals emitted by the environmental sensor, so as to absorb signals emitted by the environmental sensor that do not directly impinge on the stimulation device. Furthermore, the simulation module preferably has a shielded design to reduce, and preferably prevent, propagation of measurement signals beyond the simulation module. This facilitates complete consideration of each individual sensor signal generated. The use of one, multiple, or different simulation modules in a system is further simplified, since they can be more easily arranged as a structural unit and operate independently of each other.
[0028] In a further preferred embodiment, the stimulation device is preferably configured to generate a response signal to be received by at least one environmental sensor incorporated by the simulation device based on a signal emitted by said environmental sensor, the response signal preferably being generated based on the simulated test environment.
[0029] In a further preferred embodiment, the system comprises at least one signal converter, in particular a recognition chip of the camera of the at least one further environmental sensor, configured to transmit the sensor signal to a control device of the vehicle and to generate the sensor signal based on raw sensor data, the raw sensor data being fed into the signal converter, which generates the sensor signal.
[0030] Preferably, raw sensor data is transmitted to a signal converter, the raw sensor data including information characterizing the simulated environment to be processed by the signal converter. The environmental sensor generally includes a receiver that detects a measurement variable as a physical variable and provides the measurement value, particularly in the form of raw sensor data, to the signal converter to generate a sensor signal. When the raw sensor data is provided directly to the signal converter for conversion, the environmental sensor receiver and a stimulation device for the environmental sensor may be omitted. For example, in particular, raw images including image data from the simulation may be transmitted directly to the recognition chip of the camera for processing. Therefore, a camera option for image recording may be omitted. The sensor signal may thereby be generated and / or provided to the control unit in a particularly simple manner.
[0031] In a further preferred embodiment, the system includes at least one device configured to generate simulated sensor signals, particularly in the form of an object list and / or object data, and transmit the sensor signals to a control unit of the driver assistance system. Thus, information about the simulated environment can be directly provided to the control unit. In other words, environmental sensors are simulated. Thus, a system designed in this way provides a simple, particularly additional, possibility to transmit information in the form of simulated sensor signals to the control unit for operating the driver assistance system to represent complex environmental scenarios in a simple manner.
[0032] In one preferred embodiment, the method includes the further steps of mounting at least one environmental sensor on or in the at least one simulation module and allocating a stimulation device to the environmental sensor. In particular, environmental sensors identical to those of the automobile can be installed to provide the control device with the most reliable sensor signals possible. The mounting and allocation of the environmental sensors and stimulation devices makes the method particularly flexible and adaptable to individual test requirements. In particular, in an optional further step, the at least one environmental sensor and / or the at least one stimulation device are calibrated and / or the at least one stimulation device is aligned with the at least one environmental sensor, or vice versa, to achieve an optional realistic stimulation of the environmental sensor.
[0033] In a further preferred embodiment, the method includes mounting a component, particularly a vehicle component, having at least one environmental sensor disposed therein and / or integrated therein in or on the at least one simulation module. The use of the vehicle component to generate the sensor signal particularly allows for a particularly realistic description of the interaction between the component and the environmental sensor fixed therein or thereon. In particular, a vehicle component, such as a bumper with an integrated environmental sensor, can be mounted in the simulation module to particularly accurately represent the simulated environment.
[0034] In a further preferred embodiment, the method comprises a step of disconnecting a component of the vehicle having at least one environmental sensor arranged and / or integrated therein from the vehicle in order to enable said component to be mounted in the simulation module. Using a component of the vehicle equipped with an environmental sensor as an environmental sensor of the simulation module allows for a particularly simple provision of the environmental sensor to the simulation module.
[0035] In a further preferred embodiment, the method according to the present invention includes a step of inhibiting the transmission of signals from the vehicle's environmental sensors to the control device. For this purpose, the vehicle's environmental sensors may be disconnected or muted, and / or corresponding inputs and / or connections of the control unit may be muted. The sensor signals of the simulation module are preferably transmitted to the control unit instead of the sensor signals of the vehicle's environmental sensors that they replace. Inhibiting the transmission of signals from the vehicle's environmental sensors prevents accidental or undesired signal transmissions by the environmental sensors.
[0036] In a further preferred embodiment, the environmental sensor is an automotive environmental sensor.
[0037] The features and advantages described with respect to the first aspect of the invention and its advantageous embodiments also apply correspondingly to the second aspect of the invention and its advantageous embodiments, and vice versa, at least where this makes technical sense.
[0038] The invention is explained in more detail below on the basis of non-limiting exemplary embodiments as shown in the drawings, in which: [Brief explanation of the drawings]
[0039] [Figure 1] 1 illustrates a preferred exemplary embodiment of a system for testing driver assistance systems of a motor vehicle. [Figure 2] 1 shows a preferred exemplary embodiment of a method for testing driver assistance systems of a motor vehicle on a vehicle test bench; DETAILED DESCRIPTION OF THE INVENTION
[0040] FIG. 1 shows a system 1 for testing a driver assistance system 2 of a motor vehicle 3. The motor vehicle 3 is placed on a vehicle test bench 4 configured to operate at least one drivetrain 5 of the motor vehicle 3. In particular, the vehicle test bench 4 is configured to operate the motor vehicle 3 or components of the motor vehicle 3 using the driver assistance system 2. The vehicle test bench 4 is preferably a roller dynamometer or a drivetrain test bench having wheel emulation devices. Such a test bench further comprises a weather simulator having a temperature control device and an airflow emulation device.
[0041] The motor vehicle 3 may be operated under precisely controlled conditions on a vehicle test bench 4. For example, torque may be applied to rotatably mounted wheel emulation devices, thereby simulating different loads on the motor vehicle 3 and / or different road conditions, etc. Alternatively or additionally, different weather conditions may be simulated, for example, by temperature control devices providing different temperatures and / or airflow emulation devices providing different airflows.
[0042] To detect the environment, the vehicle 3 comprises at least one environmental sensor 6d, 6e configured to detect physical measurement variables, in particular measurement signals, and convert them into sensor signals. In particular, the environmental sensors 6a, 6b, 6c, 6d, 6e of the vehicle 3 are preferably designed as ultrasonic sensors, radar sensors, lidar sensors, cameras or as GPS receivers. In the exemplary embodiment as shown, for example, the vehicle 3 exhibits a camera 6d and a radar sensor 6e.
[0043] Preferably, the environmental sensors 6a, 6b, 6c, 6d, 6e are configured to emit measurement signals, preferably acoustic or electromagnetic waves, to detect the environment. This measurement signal, e.g., an ultrasonic signal, interacts with the environment and is thereby affected by it. The affected measurement signal can be received or detected by the at least one environmental sensor, and a sensor signal characterizing the environment of the vehicle 3 is generated thereon. The interaction corresponds, for example, to reflection, transmission, and / or at least partial absorption of the measurement signal at or by objects in the vicinity of the vehicle 3.
[0044] In FIG. 1 , the control unit 7 of the driver assistance system 2 is connected to, for example, a first environmental sensor 6d of the vehicle 3 and a second environmental sensor 6e of the vehicle 3. To be able to analyze the driver assistance system 2 in a precisely controlled environment, a first simulation module 8a and a second simulation module 8b are connected to the control unit 7 to simulate environmental scenarios for the driver assistance system, specifically the vehicle environment or the driving situation, respectively. The first simulation module 8a comprises a first environmental sensor 6a and a first stimulation device 9a assigned thereto. The second simulation module 8b comprises a second environmental sensor 6b with a second stimulation device 9b assigned thereto and two third environmental sensors 6c with two third stimulation devices 9c assigned thereto.
[0045] The control unit 7 is configured to process sensor signals of at least one environmental sensor 6a, 6b, 6c, 6d, 6e. The signal transmission connection between the control unit 7 and the environmental sensors 6a, 6b, 6c, 6d, 6e may be of wireless or wired design. Preferably, the at least one environmental sensor 6a, 6b, 6c, 6d, 6e is connected to the control unit 7 by a bus system, more preferably by a fieldbus.
[0046] The stimulation devices 9a, 9b, 9c are configured to stimulate the environmental sensors 6a, 6b, 6c such that the sensor signals they generate simulate the interaction of the vehicle 3 with its surroundings and / or the influence of the surroundings on the vehicle 3. To that end, the stimulation devices 9a, 9b, 9c may influence measurement signals, in particular measurement signals emitted by the environmental sensors 6a, 6b, 6c, or may provide measurement signals to be detected by said environmental sensors 6a, 6b, 6c. The environmental signals of the environmental sensors 6a, 6b, 6c of the simulation modules 8a, 8b preferably replace the sensor signals of the environmental sensors 6d, 6e of the vehicle 3 for processing by the control unit 7.
[0047] The simulation modules 8a, 8b can be located and operate independently, in particular at different interior distances from the motor vehicle 3 and / or the vehicle test bench 4. In a further preferred exemplary embodiment, the vehicle test bench 4 is located in a test cell and the simulation modules 8a, 8b are located outside said test cell. In particular, the system components and / or simulation modules can be completely geographically separate, for example as part of a so-called networked test bench, even if they are located in different countries.
[0048] Preferably, the simulation modules 8a, 8b are exclusively connected to the control unit 7 via a data connection. In particular, the simulation modules 8a, 8b are positioned relative to the motor vehicle 3 and / or the vehicle test bench 4 such that movements and / or forces occurring when the motor vehicle 3 is operated by the vehicle test bench 4 are not transmitted to the simulation modules 8a, 8b. This thereby protects the environmental sensors 6a, 6b, 6c and the associated, particularly sensitive, stimulation devices 9a, 9b, 9c of the simulation modules 8a, 8b from physical interference resulting from the forces and movements of the motor vehicle 3 or the vehicle test bench 4.
[0049] Preferably, the simulation modules 8a, 8b completely incorporate at least one environmental sensor 6a, 6b, 6c and at least one associated stimulation device 9a, 9b, 9c or have a housing in which the at least one environmental sensor 6a, 6b, 6c and at least one associated stimulation device 9a, 9b, 9c are arranged, thereby protecting the simulation modules 8a, 8b, in particular the sensitive stimulation device 9a, 9b, 9c, from dirt and moisture. Preferably, the simulation modules 8a, 8b exhibit an absorbent material, in particular in the form of a signal-absorbing coating designed to absorb measurement signals and / or insulate the components of the simulation modules 8a, 8b.
[0050] In the illustrated exemplary embodiment, the first environmental sensor 6d of the automobile 3 is designed as a camera. To simulate the environment based on the sensor signal and replace the sensor signal of the camera 6d of the automobile 3 for the control unit 7, the first environmental sensor 6a of the first simulation module 8a is also designed as a camera, specifically an identical camera. The first stimulation device 9a is preferably allocated to the camera 6a in such a way as to maintain the minimum distance required for stimulation of the camera. The stimulation device 9a is thereby configured to provide the camera 6a with a simulated image of the environment, specifically for optical detection by the camera 6a. The camera 6a is configured to record the environmental image and convert it into a sensor signal. This sensor signal can then be processed by the control device 7 instead of the sensor signal of the camera 6d of the automobile 3.
[0051] In a further preferred exemplary embodiment, the environmental sensor 6d of the motor vehicle 3 is designed as a stereo camera with two lenses. Preferably, similar, in particular identical, stereo cameras 6a, 6b, 6c are arranged in the simulation modules 8a, 8b, whereby one respective stimulation device 9a, 9b, 9c is allocated to each of the two lenses of the stereo camera. By providing the stereo cameras in the simulation modules 8a, 8b, the stimulation devices 9a, 9b, 9c can be advantageously allocated to both lenses of the stereo camera without having to take into account the installation circumstances on the motor vehicle 3.
[0052] The second simulation module 8b comprises a component 10, in this exemplary embodiment a bumper, mounted within the simulation module 8b. Three environmental sensors 6b, 6c are arranged within the bumper 10, each of which is assigned an applicable stimulation device 9b, 9c. For example, the two external environmental sensors 6c are designed as environmental sensors according to a first measurement principle, in particular as radar sensors, and the internal environmental sensor 6b is designed as an environmental sensor according to a second measurement principle, in particular as a lidar sensor.
[0053] The bumper 10 mounted in the second simulation module is, in particular, a bumper for a motor vehicle 3 on a vehicle test bench 4, which is structurally and / or functionally similar to, and preferably identical to, the bumper of the motor vehicle 3 and is equipped with environmental sensors 6b, 6c.
[0054] Alternatively or additionally, detachment of the bumper 10 and / or another component 10 of the motor vehicle 3 located on the vehicle test bench 4 may also be realized, in particular with the environmental sensor 6e provided therein, and mounting of said component 10 in or on the second sensor module 8b may be realized, in particular with the environmental sensors 6b, 6c provided therein.
[0055] In particular, the use of environmental sensors 6a, 6b, 6c, 6d, 6e installed in relevant components 10, such as in a motor vehicle 3, in particular enables a realistic analysis of the interactions between each individual environmental sensor 6a, 6b, 6c, 6d, 6e or between sensor systems of multiple environmental sensors 6a, 6b, 6c, 6d, 6e.
[0056] In a further exemplary embodiment, the system may comprise multiple simulation modules 8b equipped with the same components 10, in particular multiple environmental sensors 6b, 6c. As a result, for example, only the environmental sensor 6b may be provided and / or operate in a first simulation module 8a according to a first measurement principle, and only the environmental sensor 6c may be provided and / or operate in a second simulation module 8b according to a second measurement principle. This thereby prevents, in particular, interactions of the environmental sensors 6b, 6c within one stimulation device 9b, and thus prevents simulation errors.
[0057] In principle, in order to enable comprehensive testing of the driver assistance system 2, any number of, in particular combinations of, differently designed simulation modules 8a, 8b are conceivable in further exemplary embodiments of the system 1 according to the invention.
[0058] In a further exemplary embodiment, the simulation modules 8a, 8b are not used on a vehicle test bench, but on a test track, in which case the simulation modules 8a, 8b may preferably be located inside the motor vehicle 3, in particular in the trunk.
[0059] FIG. 2 shows a preferred exemplary embodiment of a method 100 according to the invention for testing a driver assistance system 2 of a motor vehicle 3 .
[0060] In an optional method step S1, at least one component 10 of the motor vehicle 3, which has at least one environmental sensor 6d, 6e arranged and / or integrated therein, is detached from the motor vehicle 3 in order to allow said component 10 to be mounted in the simulation module 8a, 8b. If no component 10 is mounted in the simulation module 8a, 8b or if a component 10 not from the motor vehicle 3 is mounted in the simulation module 8, this step S1 may be omitted. Alternatively or additionally, a detachment of the environmental sensors 6d, 6e of the motor vehicle 3 may be realized.
[0061] In method step S2, a component 10, preferably a component 10 of the motor vehicle 3, in particular preferably a component 10 that was detached from the motor vehicle 3 in method step S1, is mounted in or on at least one simulation module 8a, 8b. The component 10 thereby comprises at least one environmental sensor 6a, 6b, 6c, 6d, 6e arranged and / or integrated therein.
[0062] Alternatively or additionally, at least one environmental sensor 6a, 6b, 6c, 6d, 6e that is not integrated in the component 10 is mounted in or on at least one simulation module 8a, 8b. In particular, the environmental sensors 6a, 6b, 6c mounted in the simulation modules 8a, 8b are each connected or will be connected to the control unit 7 for transmission of the sensor signals.
[0063] If only environmental sensors 6a, 6b, 6c that are not environmental sensors of the vehicle 3 are mounted in the simulation modules 8a, 8b, the corresponding environmental sensors 6d, 6e of the vehicle 3 can then be disabled. In other words, those environmental sensors 6d, 6e with sensor signals replaced via the simulation modules 8a, 8b can be disconnected from the control unit 7 or said sensor signals can be muted in terms of control unit 7 processing. This makes it possible to minimize the interference of the environmental sensors 6d, 6e of the vehicle 3 on the control unit 7 and therefore on the driver assistance system 2.
[0064] In method step S3, a stimulation device 9a, 9b, 9c is assigned to at least one environmental sensor 6a, 6b, 6c mounted in the simulation module 8a, 8b. Preferably, a stimulation device 9a, 9b, 9c is assigned to each environmental sensor 6a, 6b, 6c in the simulation module 8a, 8b. Alternatively, one stimulation device 9a, 9b can be assigned to multiple environmental sensors 6a, 6b, 6c, specifically, environmental sensors 6a, 6b, 6c, based on the same measurement principle to stimulate the environmental sensors. The functional assignment of the stimulation devices 9a, 9b, 9c to the environmental sensors 6a, 6b, 6c is simplified by the environmental sensors 6a, 6b, 6c being arranged in the simulation module 8a, 8b in a freely accessible manner, specifically, so as not to be obscured when integrated into the automobile 3. This allows for accurate alignment of the environmental sensors 6a, 6b, 6c and the stimulation devices 9a, 9b, 9c.
[0065] Preferably, at least one environmental sensor 6a, 6b, 6c and / or stimulation device 9a, 9b, 9c is calibrated in an optional further step. Calibration within the meaning of the present invention means comparing the measurement values displayed by the environmental sensor 6a, 6b, 6c with preset reference values. Calibration specifically includes documentation of measurement deviations and calculation of measurement uncertainty, and preferably occurs under predetermined reference conditions. Preferably, this does not require technical intervention with the environmental sensor 6a, 6b, 6c and / or stimulation device 9a, 9b, 9c. Furthermore, in an optional further step, at least one stimulation device 9a, 9b, 9c is spatially adjusted / aligned with respect to at least one environmental sensor 6a, 6b, 6c, or vice versa, to achieve an optimal operating position.
[0066] In method step S4, a test environment is simulated via at least one simulation module 8a, 8b. At least one environmental sensor 6a, 6b, 6c of the at least one simulation module 8a, 8b is stimulated based on the simulated environmental scenario. To this end, the stimulation device 9a, 9b, 9c preferably modulates the measurement signal emitted by the environmental sensor 6a, 6b, 6c and provides it to the environmental sensor 6a, 6b, 6c for detection. Alternatively, the stimulation device 9a, 9b, 9c may provide the measurement signal for simulating the environmental scenario in the form of, for example, GPS data or a simulated image. In particular, the stimulation device 9a, 9b, 9c is configured to stimulate the environmental sensor 6a, 6b, 6c in such a way as to represent the surroundings from the perspective of the environmental sensor 6d, 6e of the automobile 3.
[0067] In a further method step S5, a sensor signal is generated for processing by the control unit 7 of the driver assistance system 2. This sensor signal is generated by the at least one simulation module 8a, 8b and processed by the processing unit 7 instead of a sensor signal from the at least one environmental sensor 6d, 6e of the motor vehicle 3. Thus, the at least one simulation module 8a, 8b may generate a sensor signal that characterizes a simulated environmental scenario.
[0068] In a further method step S6, the at least one drivetrain 5 of the motor vehicle 3 is operated on the vehicle test bench 4 using the driver assistance system 2 and based on at least one sensor signal of the at least one sensor module 8 a, 8 b. Alternatively, the motor vehicle 3 is operated on a test track using the driver assistance system 2 and based on at least one sensor signal of the at least one sensor module 8 a, 8 b. In both cases, additional further sensor signals may be generated by real and / or simulated sensors for processing by the control unit 7 and preferably used to operate the driver assistance system 2 and / or the drivetrain 5 and / or the motor vehicle 3.
[0069] It should be further noted that the exemplary embodiments are merely examples that are not intended to limit in any way the scope, applications and configurations of protection. Rather, the foregoing description is intended to provide those skilled in the art with guidelines for implementing at least one exemplary embodiment, whereby various modifications may be made, particularly with regard to the function and arrangement of the described components, without departing from the scope of protection arising from such equivalent combinations of claims and features. [Explanation of symbols]
[0070] 1 System 2 Driver assistance systems 3. Automobiles 4 Vehicle test bench 5. Drivetrain 6a environmental sensor, first environmental sensor, camera, stereo camera, 6b Environmental sensor, stereo camera, second environmental sensor 6c Environmental sensor, third environmental sensor, stereo camera 6d Environmental Sensor, Camera, First Environmental Sensor 6e Environmental sensor, radar sensor, second environmental sensor 7. Control Unit 8 Simulation Module 8a First Simulation Module, Simulation Module 8b second simulation module, simulation module; 9a First Stimulation Device, Stimulation Device 9b Second Stimulation Device, Stimulation Device 9c Third Stimulation Device, Stimulation Device 10. Component, bumper 100 ways S1 Separation of components S2 Environmental Sensor Installation S3 90% stimulation device S4 Test Environment Simulation S5 Sensor signal generation S6 Drivetrain Operation
Claims
1. A system (1) for testing a driver assistance system (2) of a motor vehicle (3), comprising: the driver assistance system (2) comprises a control unit (7) for processing sensor signals configured to process sensor signals of at least one environmental sensor (6a, 6b, 6c, 6d, 6e) of the vehicle (3), the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) being configured to detect environmental information and convert the environmental information into sensor signals; The system (1), a vehicle test bench (4) configured to allow the drivetrain (5) of the motor vehicle (3) to be operated; At least one simulation module (8a, 8b) wherein the simulation modules (8a, 8b) incorporate or are capable of incorporating the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) and comprise stimulation devices (9a, 9b, 9c) assigned to the environmental sensors (6a, 6b, 6c, 6d, 6e); the environmental sensors (6a, 6b, 6c, 6d, 6e) integrated or capable of being integrated into the simulation modules (8a, 8b) correspond in particular functionally and / or structurally to the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) of the vehicle (3) or are the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) of the vehicle (3), the simulation modules (8a, 8b) are connected to the vehicle test bench (4) for signal transmission in order to transmit sensor signals from the simulation modules (8a, 8b) to the control unit (7) of the driver assistance system (2); and the simulation modules (8a, 8b) are connected to the control unit (7) of the driver assistance system (2); A system (1), wherein the simulation modules (8a, 8b) are designed as separate structural units of the system (1) and can be arranged and operated independently of the motor vehicle (3) or the vehicle test bench (4).
2. 2. The system (1) according to claim 1, wherein the simulation modules (8a, 8b) are designed to generate sensor signals indicative of the environmental information from the perspective of the environmental sensors (6a, 6b, 6c, 6d, 6e) of the motor vehicle (3).
3. 3. The system (1) according to claim 1 or 2, wherein the simulation modules (8a, 8b) are connected to the vehicle test bench (4) only by connection means for signal transmission.
4. The system (1) according to claim 3, wherein the simulation modules (8a, 8b) are connected to the control unit (7) only by connection means for signal transmission.
5. The system (1) according to claim 3 or 4, wherein the connection means for signal transmission is a cable, a bus system or a wireless connection.
6. The system (1) of claim 5, wherein the bus system is a field bus.
7. A system (1) as described in any one of claims 1 to 6, wherein the environmental sensors (6a, 6b, 6c, 6d, 6e) incorporated or capable of being incorporated into the simulation module (8a, 8b) are identical to the environmental sensors (6a, 6b, 6c, 6d, 6e) of the driver assistance system (2) which they replace.
8. 8. The system (1) according to any one of claims 1 to 7, wherein the system (1) comprises or can incorporate at least two simulation modules (8a, 8b), at least two of the simulation modules differing in terms of the measurement principle applied by their incorporated environmental sensors (6a, 6b, 6c, 6d, 6e).
9. 9. The system (1) according to any one of claims 1 to 8, wherein the at least one simulation module (8a, 8b) comprises or can incorporate at least two environmental sensors (6a, 6b, 6c, 6d, 6e), and wherein at least two of the environmental sensors (6a, 6b, 6c, 6d, 6e) differ in terms of the measurement principle applied by at least two of the environmental sensors (6a, 6b, 6c, 6d, 6e).
10. 10. The system (1) according to any one of claims 1 to 9, wherein the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) is arranged and / or integrated in a component (10) of the vehicle (3), the component (10) being incorporated or capable of being incorporated in the at least one simulation module (3).
11. The system (1) of claim 10, wherein the component (10) of the vehicle (3) is the body of the vehicle (3).
12. 12. The system (1) according to any one of claims 1 to 11, wherein the simulation modules (8a, 8b) are covered by a housing.
13. A system (1) as described in claim 12, wherein the environmental sensors (6a, 6b, 6c, 6d, 6e) and stimulation devices (9a, 9b, 9c) incorporated or capable of being incorporated into the simulation modules (8a, 8b) are covered by a housing.
14. 14. The system (1) according to any one of claims 1 to 13, wherein the stimulation devices (9a, 9b, 9c) are configured to generate response signals to be received by the environmental sensors (6a, 6b, 6c, 6d, 6e).
15. The system (1) described in claim 14, wherein the stimulation device (9a, 9b, 9c) is configured to generate a response signal to be received by the environmental sensor (6a, 6b, 6c, 6d, 6e) based on a signal emitted by the at least one environmental sensor (6a, 6b, 6c, 6d, 6e) incorporated by the stimulation device (9a, 9b, 9c).
16. The system (1) of claim 14 or 15, wherein the response signal is generated based on a simulated test environment.
17. 17. The system (1) according to any one of claims 1 to 16, wherein the system (1) comprises at least one signal converter configured to transmit a sensor signal to the control unit (7) of the motor vehicle (3) and to generate the sensor signal based on raw sensor data, the raw sensor data being supplied to the signal converter, which generates the sensor signal.
18. The system (1) of claim 17, wherein the at least one signal converter is a recognition chip of a camera of at least one further environmental sensor (6a, 6b, 6c, 6d, 6e).
19. 19. The system (1) according to any one of claims 1 to 18, wherein the system (1) comprises at least one device configured to generate simulated sensor signals and to transmit the sensor signals to the control unit (7) of the driver assistance system (2).
20. The system (1) of claim 19, wherein the simulated sensor signals are generated in the form of an object list and / or object data.
21. A method (100) for testing a driver assistance system (2) of a motor vehicle (3) on a vehicle test bench (4) using a system (1) according to any one of claims 1 to 20, comprising: a step (S4) of simulating a test environment via said at least one simulation module (8a, 8b); generating (S5) sensor signals by said at least one simulation module (8a, 8b) for processing by said control unit (7) of said driver assistance system (2) instead of sensor signals of at least one environmental sensor (6a, 6b, 6c, 6d, 6e) of said motor vehicle (3); (S6) operating the drivetrain (5) of the motor vehicle (3) on the vehicle test bench (4) based on the sensor signals generated via the at least one simulation module (8a, 8b) using the driver assistance system (2); A method (100) comprising:
22. A method (100) for testing a driver assistance system (2) of a motor vehicle (3) on a test track, comprising: a step (S2) of mounting at least one environmental sensor (6a, 6b, 6c, 6d, 6e) on or in at least one simulation module (8a, 8b); A step (S3) of allocating stimulation devices (9a, 9b, 9c) to said environmental sensors (6a, 6b, 6c, 6d, 6e); a step (S4) of simulating a test environment by means of said at least one simulation module (8a, 8b); generating (S5) a sensor signal via said at least one simulation module (8a, 8b) for processing by a control unit (7) of said driver assistance system (2) in place of a sensor signal of at least one environmental sensor (6a, 6b, 6c, 6d, 6e) of said motor vehicle (3); operating (S6) the vehicle (3) on the test track based on the sensor signals generated by the at least one simulation module (8a, 8b) using the driver assistance system (2); Including, A method (100) in which the simulation module is designed as a separate structural unit and is capable of being located and operating independently of the vehicle.
23. a step (S2) of mounting a component (10) of said vehicle (3) having at least one environmental sensor (6a, 6b, 6c, 6d, 6e) arranged therein and / or integrated therein in or on said at least one simulation module (8a, 8b); 23. The method (100) of claim 21 or 22, comprising:
24. - disconnecting said component (10) of said vehicle (3) having at least one environmental sensor (6a, 6b, 6c, 6d, 6e) arranged and / or integrated therein from said vehicle (3) to enable said component (10) of said vehicle (3) to be mounted (S2) in or on said simulation module (8a, 8b).
24. The method (100) of claim 23, further comprising:
25. inhibiting the environmental sensors (6a, 6b, 6c, 6d, 6e) of the vehicle (3) from transmitting signals to the control unit (7); 25. The method (100) of any one of claims 21 to 24, further comprising:
26. 26. The method (100) according to any one of claims 21 to 25, wherein the environmental sensor (6a, 6b, 6c, 6d, 6e) is the environmental sensor (6a, 6b, 6c, 6d, 6e) of the motor vehicle (3).
27. 27. The method (100) according to any one of claims 21 to 26, wherein the simulation module (8a, 8b) incorporates or is capable of incorporating the environmental sensors (6a, 6b, 6c, 6d, 6e) and stimulation devices (9a, 9b, 9c) and is covered by a housing.
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