METHOD FOR SETTING FULLY AUTOMATIC VEHICLE CONTROL FUNCTIONS IN A PREDEFINED NAVIGATION ENVIRONMENT AND MOTOR VEHICLE
Patent Information
- Application Number
- DE502018016338
- Authority / Receiving Office
- DE · DE
- Patent Type
- Patents
- Current Assignee / Owner
- Priority Date
- 2017-11-28
- Filing Date
- 2018-10-12
- Publication Date
- 2026-01-22
- Estimated Expiration
- 2038-10-12
AI Technical Summary
Existing fully automated vehicle control systems are limited by static functional limits that reduce driving efficiency and safety due to worst-case scenario assumptions, lacking dynamic risk assessment capabilities, especially in navigation environments like parking garages.
An infrastructure facility with stationary environmental sensors provides real-time risk assessment data to vehicles, adjusting functional limits based on dynamic risk information, allowing vehicles to adapt driving behavior dynamically.
Enhances vehicle control functions by expanding functional limits in low-risk situations and restricting them in high-risk scenarios, improving safety and efficiency while reducing technical requirements on vehicles.
Description
[0001] The invention relates to a method for adjusting fully automatic vehicle guidance functions implemented by a vehicle system of a motor vehicle when operating the motor vehicles in a predefined navigation environment, namely a parking environment, wherein the navigation environment is associated with a stationary infrastructure facility that communicates with the motor vehicles, and functional limits of the respective vehicle guidance functions are defined by limit operating parameters of the vehicle guidance function. The invention also relates to a motor vehicle.
[0002] The autonomous operation of motor vehicles, and in particular the implementation of fully automated vehicle control functions, represents a current and important research topic. The corresponding vehicle systems perform trip planning to implement the vehicle control function, both with regard to the route and the trajectory to be executed. For this purpose, a wealth of information is available in the vehicles, especially sensor data from vehicle-mounted sensors that describe the current operating state of the vehicle and the current traffic situation in its detection range, as well as digital map data that can be used to supplement the description of the current traffic situation and for route planning.Another essential aspect of fully automated vehicle control functions is safety, which is why both the route planning is carried out to avoid collisions with static or dynamic obstacles and additional safety systems that serve to protect against collisions may be provided within the vehicle.
[0003] Within the framework of fully automated driving, motor vehicles can also communicate with infrastructure facilities, particularly those assigned to a currently traversed, predefined navigation environment, such as a parking environment like a parking garage. The establishment of such a communication link is usually achieved via short-range communication, for example, Wi-Fi. Various concepts for fully automated driving in such navigation environments, especially parking environments, have been proposed to date. These include concepts in which the infrastructure facility largely coordinates the fully automated operation, and concepts in which the infrastructure facility merely provides specifications, such as destination points, while the respective motor vehicle autonomously implements its fully automated driving strategy based on these specifications.
[0004] The autonomous operation of motor vehicles outside of such predetermined navigation environments, such as parking areas, is more complex to implement. For example, DE 10 2014 014 120 A1 describes a multitude of conditions for the autonomous operation of a vehicle on a preceding route, which must be met to activate a fully automatic vehicle guidance function. These conditions include, for example, that there is a physical barrier on at least one side of the vehicle's current lane, that the vehicle's lane has a minimum lane width, that there are crests and dips that significantly restrict the range of environmental sensors, that the number of lanes does not change, that there are no tunnels, and so on. Traffic reports can also be taken into account.It therefore concerns essentially static properties of an upcoming section of track, which may only change on long timescales, as a condition for allowing autonomous operation.
[0005] DE 10 2014 013 672 A1 concerns a method and a system for ensuring the safety of autonomous or semi-autonomous vehicle operation on a road network. Information on the suitability of a route for autonomous or semi-autonomous vehicle operation is determined. An external server, which collects this suitability information, then generates and provides permit information to vehicles regarding the route's permissibility for autonomous or semi-autonomous vehicle operation. The suitability information may include a justification and / or explanation of the determined suitability, so that temporary factors do not automatically lead to the denial of permit information. However, the permit information may take current traffic information regarding congestion, accidents, roadworks, or similar events into account.Here, too, the issue is the fundamental permissibility of fully automated vehicle control depending on extremely slow-changing or even static circumstances.
[0006] To ensure the greatest possible safety when using an automated driving function, fully automated driving systems are typically subject to functional limits, such as maximum permissible speeds, maximum permissible changes to various operating parameters, permitted driving maneuvers, and the like. These functional limits can be defined by limit operating parameters of the driving function. The definition of these functional limits is based on a risk assessment derived from the vehicle's perception of the traffic situation. For example, due to the spatially limited detection range of the vehicle's environmental sensors, the vehicle's information horizon or radius is restricted.This means that the functional limits, such as the maximum speed, are defined according to the technical capabilities of the vehicle, whereby certain scenarios / traffic situations may completely preclude autonomous operation of the vehicle by the fully automatic driving function. Such limitations, however, have a negative impact on driver perception, as the overall suitability of the driving function is reduced by the need for low-risk behavior. For example, very slow speeds, long plausibility checks (possibly even when the vehicle is stationary), and similar issues may occur due to the functional limits. In other words, the functional limits are chosen with the "worst-case scenario" in mind.
[0007] DE 10 2015 217 388 A1 discloses a method for operating a parking lot. This method incorporates environmental sensors for detecting the surroundings of a vehicle driving autonomously within the parking lot, thereby generating relevant environmental data concerning the vehicle. Using a digital map, the vehicle can navigate autonomously to a target position within the parking lot. A monitoring device checks whether the vehicle's surroundings are free of objects that could potentially collide with the vehicle. If so, a corresponding clearance signal is sent to the vehicle.
[0008] DE 10 2015 204 861 A1 concerns a parking system for autonomously driving vehicles in a parking lot. Position data is transmitted to the vehicle, specifically regarding locations where problems might occur. Furthermore, the vehicle receives informational data, particularly along with a digital map of the parking lot, indicating that problems could arise at these locations. Such problems might include, for example, that the vehicle's environmental sensors have limited detection of its surroundings at a given location, that there have been repeated communication problems with other vehicles, or that the topography of the parking lot could lead to radar echoes.Based on this information, the autonomous journey of the vehicle to the parking space is then planned accordingly, whereby this planning may include, for example, a reduction in the speed of the vehicle.
[0009] DE 10 2011 014 083 A1 relates to a driver assistance system in which a parameter, in particular regarding traffic density in the vicinity of the motor vehicle, is determined, and a threshold or degree of activation of the driver assistance system for the automatic activation of a motor vehicle element is set on the basis of this parameter. This could, for example, relate to a warning device for issuing a warning signal, the automatic activation of a braking device, or automatic distance control.
[0010] German patent DE 10 2010 002 706 A1 discloses a method for the adaptive parameterization of a driver assistance system concerning the control of a non-reversible actuator (e.g., an airbag). This involves classifying the vehicle's environment, based on which the value ranges of the adaptive parameters are adjusted. In other words, a threshold value is adjusted based on the classification; when this threshold is exceeded, the non-reversible actuator is triggered.
[0011] DE 10 2012 016 802 A1 discloses a method for controlling a vehicle system designed for the autonomous operation of a motor vehicle, in which setting information for the vehicle system is determined from location information describing a current position of the motor vehicle and at least one location-related permission information relating to the admissibility of the use of the vehicle system, and at least one operating parameter of the vehicle system is selected depending on the setting information.
[0012] US 2017 / 0234689 A1 concerns a real-time risk assessment to improve the safety of vehicles operating in semi-autonomous or fully autonomous modes. Road segments can be assigned risk scores to facilitate the use of less risky routes, adjustments to insurance, and the identification and warning of unsafe road segments for semi-autonomous or autonomous operation. While general data sources consider ongoing conditions on road segments and past incidents, particularly accidents, modifications to risk scores can also be made based on real-time data (such as snowfall). If a driver fails to take over when required to switch to a non-autonomous mode, a third party can assume control of the vehicle, similar to a drone.Real-time information such as the presence of fog, black ice (black ice), or rain can be taken into account when controlling a vehicle. This real-time information can be obtained from other vehicles or infrastructure.
[0013] The invention is therefore based on the objective of providing a possibility for improved risk assessment and thus situation-dependent extensions of the functional limits of a fully automatic vehicle control function of a motor vehicle.
[0014] To solve this problem, the features of claim 1 are provided according to the invention in a method of the type mentioned at the outset.These include, in particular, that the infrastructure facility uses at least partially stationary, permanently installed environmental sensors to determine current traffic situation information describing dynamic objects in the navigation environment and, together with a digital map describing stationary objects and properties of the navigation environment, uses this information to determine at least one risk information describing a potential hazard and / or property damage for each motor vehicle among the dynamic objects, whereby the vehicle-specific risk information is transmitted to the respective motor vehicles and the respective vehicle system adjusts the limit operating parameters depending on the risk information, to narrower functional limits in the case of risk information describing a higher risk and to wider functional limits in the case of risk information describing a lower risk.
[0015] According to the invention, it is therefore proposed to continuously (i.e., cyclically) provide a risk assessment regarding the potential for hazards / property damage by an active infrastructure facility with the capability of monitoring dynamic objects in the navigation environment. For this purpose, additional information is available, in particular via environmental sensors belonging to the navigation environment, which would be unknown to individual vehicles. This allows a complete picture of the (dynamic) traffic situation within the navigation environment to be determined as traffic situation information. Naturally, further input data can also be included in the determination of the traffic situation information, for example, position information transmitted by vehicles and / or sensor data from the vehicles' own sensors and / or operating data of the respective vehicles.However, a design that relies primarily on sensor data from environmental sensors is preferred.
[0016] The vehicle-specific risk assessment, described by risk information, for a motor vehicle communicating with the infrastructure via a corresponding communication device, is made available to the respective motor vehicle, which can then adjust its driving behavior based on the communicated risk assessment, in particular by adjusting functional limits. This allows, with particular advantage, the enhancement of the fully automated vehicle control function when the risk information indicates a low risk, by extending the functional limits, for example, to allow for higher speeds and / or faster adjustment of vehicle dynamics, which increases acceptance and evaluation by the driver.On the other hand, if risk information indicates a high risk, a restriction of the functional limits may be considered in the interest of safety, in order to exclude collisions / damage as far as possible.
[0017] This offers further advantages beyond increasing driver acceptance by avoiding the need to design driving behavior based on the "worst case" determined by the vehicle's constraints. For example, automated driving functions can be implemented with reduced technical effort on the vehicle side, such as in terms of sensors and / or computing power. The potential applications of autonomous vehicles in navigation environments that cannot be managed solely by vehicle technology are expanded. Furthermore, it becomes possible to incorporate a broader information base, such as taking into account specific conditions in local navigation environments, which might be described within the digital map.
[0018] The present invention also offers a particular advantage in facilitating the industrial implementation of fully automated vehicle control functions, as it enables a clear separation of responsibility for risk assessment on the vehicle side and the infrastructure side, in particular by avoiding excessive interrelationships in operation, such as constant interaction between infrastructure facilities and vehicle systems, and instead allowing the usual functional operation to be maintained unchanged based on the information available on the vehicle side, after only boundary conditions, specifically the functional limits, are adapted to the current traffic situation depending on the preferably simple risk information.In summary, the present invention enables the enhancement of fully automated vehicle control functions based on a dynamic risk assessment (hazard / property damage potential) using infrastructure-generated (environmental sensor) information at runtime. This results in a situational adaptation of the autonomous operation of motor vehicles (due to consideration of the dynamic traffic situation), with situation-dependent expansion / restriction of the functional limits.
[0019] According to the invention, the motor vehicles and / or other dynamic objects communicating with the infrastructure transmit at least one action parameter to the infrastructure describing a maximum possible and / or planned dynamic behavior, and the respective action parameters are taken into account when determining risk information. This is particularly useful with regard to risk assessment in the context of detecting the future behavior of the dynamic objects, since the action parameters essentially correspond to an assurance / limitation of the possible future dynamic behavior.Ultimately, the action parameters describe guaranteed and adhered-to dynamic capabilities, such as guaranteed vehicle dynamics and / or a guaranteed stopping distance. These action parameters are preferably provided dynamically at runtime by the vehicles and / or dynamic objects. For example, action parameters can include a maximum speed, a maximum acceleration, a direction parameter describing a maximum possible change in direction, trajectory parameters describing a planned trajectory, and / or a guaranteed stopping distance. It is also evident that a connection can exist with the functional limits of autonomously operated vehicles in the navigation environment, so that the action parameters can be determined at least partially from and / or as limit operating parameters.
[0020] It should be noted that it may be possible to assign action parameters to dynamic objects that do not communicate with the infrastructure and / or do not provide action parameters, such as pedestrians, particularly based on a classification of the respective dynamic object. For example, the typical behavior and / or dynamic range of pedestrians is known and can be retrieved from a database, for instance.
[0021] Furthermore, it is particularly advantageous if the action parameters are used to determine the action area of the respective dynamic object and / or the probability of collision with other dynamic objects, especially over at least one prediction period, and this information is used to determine the vehicle-specific risk information. In general, the infrastructure continuously assesses the risk for each motor vehicle communicating with the infrastructure and operating within the navigation environment at any given time, based on static data (digital map), such as the building geometry in the case of a parking garage, and dynamic data (situational information). This allows the influence of static objects, such as obstructions to view by walls and / or parked vehicles, and the behavior of other road users, such as pedestrians walking near roads, to be taken into account.For concrete evaluation, the use of collision algorithms is particularly suitable, such as those known in a similar, possibly differently parameterized form from vehicle safety systems. Ultimately, the behavior of other dynamic objects is predicted for a given future period in order to derive a collision probability, which can form the basis for risk assessment and thus risk information. The action parameters prove particularly useful in the prediction process performed within such a collision algorithm, as the number of possible behavioral scenarios to be covered and / or their weighting can be estimated much more accurately.
[0022] Preferably, the risk assessment process can incorporate at least historical information describing past incidents and / or risks, which is maintained and / or collected by the infrastructure. Knowledge of past problems, such as accidents and / or near misses, ultimately describes specific conditions within the navigation environment and can be taken into account accordingly. This can be achieved, for example, by identifying particularly safety-critical locations using generally known methods and marking or labeling them appropriately on the digital map. This allows motor vehicles to exercise particular caution at accident-prone locations, especially when other dynamic objects are present in the area. In this way, further benefits are derived from the broad information base available from the infrastructure.
[0023] In a suitable embodiment, the risk information can be determined by describing one of several discrete risk levels, with each risk level being assigned a set of limit operating parameters. This results in operating modes in the motor vehicles, assigned to the risk levels and described at least by the limit operating parameter sets, which can be adjusted according to the dynamic and static assessment of the traffic situation. To achieve the simplest possible yet effective implementation of the inventive procedure, and in particular to support a clear separation of responsibilities, it is therefore proposed to use, as at least part of the risk information, an easy-to-use risk parameter, especially for selecting a limit operating parameter set, which describes the risk level for the individual motor vehicle.
[0024] It should be noted here that the motor vehicle, or more specifically the vehicle system implementing the fully automatic driving function, interprets the received risk information independently and initiates appropriate behavioral changes based on this interpretation. Therefore, the previously mentioned separation of responsibilities can be further emphasized in this context.
[0025] According to the invention, the limit operating parameters describe a maximum permissible dynamic range within the framework of fully automated vehicle control. They can also describe permissible driving maneuvers. For example, in areas with poor visibility and / or numerous dynamic objects, maximum speeds, and thus also the actual speed of the vehicle, can be reduced. It is also conceivable to permit or additionally enable certain driving maneuvers only under low-risk conditions, or to allow more dynamic driving maneuvers overall by appropriately raising the functional limits with respect to the maximum permissible dynamic range.
[0026] In a preferred embodiment, it may be provided that at least one further operating parameter of the vehicle control function and / or the vehicle system and / or another vehicle system of the motor vehicle is adapted depending on the risk information. The other vehicle system may, in particular, be a safety system of the motor vehicle. For example, the further operating parameters may specifically relate to the preconditioning of at least one of the at least one other vehicle system, in particular a safety system, and / or the detection characteristics of at least one sensor of the motor vehicle.If, for example, risk information also includes a risk class and / or a spatial risk area and / or a risk object, which can be static and / or dynamic, it is particularly possible to adapt the operation of the vehicle, even beyond its functional limits, to the more specific risk information in this case. For example, the vehicle's sensors and / or computing capacity can be focused on areas appropriate to a risk indicated by the risk information, and so on. In the case of a high risk of collision, for example, safety systems can be preconditioned by adjusting their operating parameters to increase safety, so that, for example, a faster reaction is possible in the event of an actual collision.
[0027] As already mentioned, the risk information for individual vehicles, and preferably also the action parameters, are updated as frequently as possible, thus keeping them current. This is achieved, for example, by conducting a cyclical reassessment of the risk information and / or by updating and forwarding action parameters to the infrastructure facility when they change. This also applies in particular to the adjustment of functional limits and, consequently, to the corresponding action parameters, creating a kind of "feedback" for such coordinated improvements.
[0028] As previously mentioned, the actual execution of the vehicle guidance function within the vehicle is preferably influenced as little as possible; instead, only its boundary conditions are adapted based on the risk assessment by the infrastructure facility. Thus, it can be stipulated that the trajectory calculation and / or the collision calculation within the vehicle guidance function are performed within the vehicle and depend on sensor data acquired by the vehicle's sensors. In particular, it can be stipulated that the sensor data be exclusively dependent on the vehicle's sensors in order to realize the previously described, potentially clear separation of responsibilities. It can therefore be said that the fully automatic vehicle guidance function within the vehicle can remain technically unchanged, since the risk information only influences the parameterization.This allows for a simplified implementation of the inventive procedure, since ultimately only additions, for example the modifiability of the limit operating parameters, are necessary.
[0029] In a particularly advantageous embodiment of the present invention, it can be provided that sub-areas, for which risk information can be determined, particularly due to the coverage provided by the environmental sensors, are marked in the digital map of the navigation environment, and that these sub-areas are taken into account during route planning within the vehicle. Preferably, the route planning can be carried out in a way that maximizes the traversal of these sub-areas. In other words, sub-areas in which the vehicle can be supported by risk information from the infrastructure are stored in the digital map and marked accordingly. This allows for advantageous planning of the driving maneuvers on the vehicle side, for example, to plan a route with maximum support coverage for vehicles with limited capabilities.For the sub-areas, it is therefore known that dynamically provided risk information can be obtained through the active infrastructure.
[0030] In addition to the method, the present invention also relates to a motor vehicle with the features of claim 11. The motor vehicle has a vehicle system that implements a fully automatic vehicle guidance function at least within a navigation environment, namely a parking environment, and a communication device for communication with an infrastructure device assigned to the navigation environment, wherein functional limits of the vehicle guidance function are defined by limit operating parameters of the vehicle guidance function, wherein the limit operating parameters describe a maximum permissible dynamic within the scope of the fully automatic vehicle guidance, wherein the motor vehicle is characterized bythat a control unit of the vehicle system is configured to adapt the limit operating parameters depending on risk information received from the infrastructure facility, to tighter functional limits in the case of risk information describing a higher risk and to wider functional limits in the case of risk information describing a lower risk, and to transmit at least one action parameter describing a maximum possible and / or planned dynamic to the infrastructure facility for consideration in determining the risk information. The motor vehicle is thus configured to use risk information provided by an external infrastructure facility and can be used within the framework of the method according to the invention. All embodiments of the method according to the invention that relate to the motor vehicle can be applied accordingly to the motor vehicle according to the invention.so that the aforementioned advantages can also be obtained with it.
[0031] It is also conceivable to implement a communication system in a navigation environment with an infrastructure facility and several motor vehicles, wherein the infrastructure facility and the respective control units of the motor vehicles are designed to carry out the method according to the invention.
[0032] Further advantages and details of the present invention will become apparent from the exemplary embodiments described below and from the drawings. These show: Fig. 1 a flowchart to explain the method according to the invention, Fig. 2 a schematic of a navigation environment with traffic situations, and Fig. 3 a schematic diagram of a motor vehicle.
[0033] An exemplary embodiment of the method according to the invention will now be presented, as it can be implemented in a parking environment, in particular a parking garage, as a navigation environment. The parking environment comprises an infrastructure facility and environmental sensors that supply their environmental sensor data to the infrastructure facility. Motor vehicles operating within the parking environment use a vehicle-side communication device to establish a communication connection via an infrastructure-side communication device, for example, using Wi-Fi or LTE-V. This initial establishment of a communication connection 1 between the infrastructure facility (domain I) and a motor vehicle (domain II), which in this case has a vehicle system implementing a fully automatic vehicle guidance function, is carried out by steps S1 and S2 inFig. 1 As indicated. After the motor vehicle is registered by establishing the communication connection 1, the motor vehicle receives from the infrastructure facility, as symbolized by the arrow 2, a digital map 3 of the parking environment, which is used in step S3 by the motor vehicle to determine a route to a parking space, in particular one assigned by the infrastructure facility.
[0034] In step S2, a special feature exists: three sub-areas are marked within the digital map where, due to existing environmental sensors in the navigation environment, the infrastructure can provide support for fully automated vehicle control through risk assessment, as will be explained in more detail below. The route in step S3 is determined to maximize support along the route, meaning that the largest possible proportion of the route passes through sub-areas where support is available.
[0035] During operation within the navigation environment, the vehicle operates autonomously throughout using the fully automatic vehicle guidance function, as indicated by step S4. Vehicle-side sensors for operational and environmental data are used for trajectory and collision calculations. The functional limits of the vehicle guidance function in step S4 are described by its limit operating parameters. These limits can define the maximum permissible dynamics and / or permissible / impermissible maneuvers.
[0036] These functional limits influence the maximum dynamics that can occur within the vehicle and the guaranteed stopping distance. This information, along with further action parameters 5 relating to the currently planned further course of the vehicle's journey, in particular the trajectory planning, is regularly updated and transmitted to the infrastructure facility as indicated by arrow 4.
[0037] Continuously, and thus cyclically, updating, the infrastructure facility uses various input data in step S5 to determine a risk assessment in the form of risk information 8 for each motor vehicle operated within the navigation environment, which is why environmental data 6 from the aforementioned environmental sensors and optionally additional information transmitted by the motor vehicles are used to determine current dynamic traffic situation information describing objects in the navigation environment.This traffic situation information, together with the digital map 3 describing the stationary objects and properties of the navigation environment, the action parameters 5, and, in this case, also historical information 7 (which may also be stored in the digital map 3 and describes past incidents of damage and / or risk), is used to determine the risk information 8 for the individual autonomously operated vehicles communicating with the infrastructure in the navigation environment. In this process, action parameters from a database are assigned to dynamic objects that do not communicate with the infrastructure and to dynamic objects that do not provide action parameters 5, such as pedestrians, after a corresponding classification of the dynamic object has been carried out.The action parameters 5 prove to be particularly useful with regard to a prediction of the traffic situation over a prediction period within step S5 using a collision algorithm, in order to determine a collision probability of different static and / or dynamic objects with each other as a guideline for risk assessment.
[0038] In the present embodiment, at least one risk level is determined as risk information 8, to which limit operating parameter sets and, optionally, further operating parameter sets (which will be discussed in more detail below) are assigned within the motor vehicles. For example, a number increasing with increasing risk can be used as the risk level, for example, natural numbers from one to six or the like. The resulting risk information 8 for the motor vehicle assigned to domain II is in Fig. 1 The information is displayed in the same way and is then transmitted to the motor vehicle according to arrow 9, so that it is always aware of the current risk assessment of the infrastructure facility.
[0039] Risk information 8 is used by the vehicle in step S6 to adapt the behavior of the vehicle control algorithm, in particular by setting the limit operating parameters according to the limit operating parameter set assigned to the risk level. Furthermore, additional measures are conceivable for at least some risk levels and / or any further risk information that may be provided, for example, preconditioning safety systems as other vehicle systems by adjusting operating parameters and / or adjusting the detection characteristics of at least one sensor of the vehicle, for example, focusing on a risk area.
[0040] At a risk level currently indicating a low risk, the vehicle guidance algorithm can be granted greater freedoms according to step S4, for example, higher permitted speeds and / or other dynamic parameters; this means the functional limits are extended. Conversely, at high risk, the functional limits can also be restricted. It is preferred if only the functional limits are reparameterized and the other operation of the vehicle guidance algorithm remains unaffected. This sufficiently separates domain II from domain I, enables simple technical implementation, and allows for a clear allocation of responsibility.
[0041] Steps S5 and S6 are performed continuously while the vehicle is operating in the navigation environment, meaning they are repeated frequently and cyclically, for example, every second or more often. In this context, communication should only occur when there is a change in the action parameter 5 or the risk information 8.
[0042] Fig. 2 Figure 1 shows a schematic diagram of the navigation environment 10, designed as a parking environment, with two traffic situations 11 and 12 to illustrate the procedure. The infrastructure 13 is only indicated; for the sake of clarity, communication links to the permanently installed, stationary environmental sensors 14, which may include cameras and / or distance-measuring sensors, are not shown in detail. Within the navigation environment 10, various motor vehicles 15, 16, and 17 are operated autonomously, and their communication links 1 with the infrastructure 13 are again indicated. A pedestrian 18 is shown as an example of a further dynamic object in traffic situation 11.
[0043] Traffic situation 11 is clearly classified as confusing and risky due to the wall 19. In this case, the numerous dynamic objects (vehicles 15, 16 and pedestrian 18) constitute a traffic situation 11 that can indeed be assessed as extremely critical. The vehicles 15, 16 cannot detect each other with their vehicle-side sensors; furthermore, there is the pedestrian 18, who is moving close to and towards the roadway. Traffic situation 11 would therefore be assessed as having a high risk level (risk information 8) for the vehicles 15, 16, which, by limiting their functional limits in step S6, drive accordingly cautiously.
[0044] In contrast, in traffic situation 12, where there is also a lack of visibility due to walls 19, the environmental sensors 14 of the infrastructure facility 13 know that the motor vehicle 17 is currently the only dynamic object in the relevant area, so that despite the unclear situation, autonomous operation is even possible to a greater extent thanks to a lower risk level.
[0045] Fig. 3Figure 1 shows a schematic diagram of a motor vehicle 20 as it can be used in the method according to the invention. The motor vehicle 20 comprises a vehicle system 21 for implementing a fully automatic vehicle guidance function, the operation of which is controlled by a control unit 22, which, in addition to performing step S4, is also configured to perform steps S2, S3, and S6. Input data is supplied by environmental sensors 23 of the motor vehicle 20, which may include, for example, cameras, radar sensors, lidar sensors, and the like. Further input data describing the operating state of the motor vehicle 20 can originate from other information sources of the motor vehicle 20, in particular also from operating sensors 24 such as an inertial platform. A communication link 1 to the infrastructure device 13 can be established via a communication device 25 on the motor vehicle side.The vehicle system 21 is also connected to other vehicle systems, in this case safety systems 26.
Claims
1. A method for setting fully automatic vehicle guidance functions implemented by a vehicle system (21) of a motor vehicle (15, 16, 17, 20) during operation of the motor vehicles (15, 16, 17, 20) in a predefined navigation environment (10), namely a parking environment, wherein the navigation environment (10) is assigned a stationary infrastructure device (13) communicating with the motor vehicles (15, 16, 17, 20), and functional limits of the respective vehicle guidance functions are defined by limit operating parameters of the vehicle guidance function, wherein the limit operating parameters describe a maximum permissible dynamic within the scope of fully automatic vehicle guidance, wherein the infrastructure device (13) uses at least partially stationary, permanently installed environmental sensors (14) of the navigation environment (10) to determine current traffic situation information describing dynamic objects in the navigation environment (10) and to use this current traffic information, together with a digital map (3) describing stationary objects and properties of the navigation environment (10) to determine at least one risk information (8) describing a potential hazard and / or property damage for each motor vehicle (15, 16, 17, 20) among the dynamic objects, wherein the motor vehicle-specific risk information (8) is transmitted to the respective motor vehicles (15, 16, 17, 20) and the respective vehicle system (21) adapts the limit operating parameters as a function of the risk information (8) to narrower functional limits in the case of risk information (8) describing a higher risk and to broader functional limits in the case of risk information (8) describing a lower risk, wherein the motor vehicles (15, 16, 17, 20) and / or other dynamic objects that communicate with the infrastructure device (13) transmit at least one action parameter (5) describing a maximum possible and / or planned dynamic to the infrastructure device (13), and wherein the respective action parameters (5) are taken into account when determining the risk information (8).
2. The method according to claim 1, wherein a maximum speed and / or a maximum acceleration and / or a direction parameter describing a maximum possible change of direction and / or a trajectory parameter describing a planned trajectory and / or a guaranteed stopping distance are used as action parameters (5) and / or the action parameters (5) are determined at least in part from the limit operating parameters and / or are determined as these.
3. The method according to claim 1 or claim 2, wherein by means of the action parameters (5) an action range of the respective dynamic object and / or a collision probability with other dynamic objects, in particular over at least one prediction period, are used in the determination of the vehicle-specific risk information (8).
4. The method according to any one of the preceding claims, wherein the determination of the risk information (8) includes at least one historical information (7) describing damage events and / or risk events that have occurred in the past, which historical information is provided and / or determined by the infrastructure device (13).
5. The method according to any one of the preceding claims, wherein the risk information (8) is determined as describing one of multiple discrete risk levels, wherein respective limit operating parameter sets to be set are assigned to the risk levels.
6. The method according to any one of the preceding claims, wherein the limit operating parameters additionally describe permissible driving maneuvers.
7. The method according to any one of the preceding claims, wherein at least one further operating parameter of the vehicle guidance function and / or of the vehicle system (21) and / or of another vehicle system of the motor vehicle (15, 16, 17, 20) is adapted as a function of the risk information (8).
8. The method according to claim 7, wherein the further operating parameters relate to the preconditioning of at least one other vehicle system, in particular a safety system (26), and / or the detection characteristics of at least one sensor (23, 24) of the motor vehicle (15, 16, 17, 20).
9. The method according to any one of the preceding claims, wherein in the digital map (3) of the navigation environment (10) also available to the motor vehicles (15, 16, 17, 20) sub-regions are marked, for which it is possible to determine the risk information (8), in particular on the basis of coverage by the environmental sensors (14), wherein the sub-regions are taken into account during route planning within the motor vehicle (15, 16, 17, 20).
10. The method according to claim 9, wherein route planning is performed in a manner that maximizes the crossing of sub-regions.
11. A motor vehicle (15, 16, 17, 20) comprising a vehicle system (21) implementing a fully automatic vehicle guidance function at least within a navigation environment (10), namely a parking environment, and a communication device (25) for communicating with an infrastructure device (13) associated with the navigation environment (10), wherein functional limits of the vehicle guidance function are defined by limit operating parameters of the vehicle guidance function, wherein the limit operating parameters describe a maximum permissible dynamic within the scope of the fully automatic vehicle guidance, wherein a control unit (22) of the vehicle system (21) is configured for adapting the limit operating parameters depending on risk information (8) received from the infrastructure device (13) to narrower functional limits in the case of risk information (8) describing a higher risk and to broader functional limits in the case of risk information (8) describing a lower risk, and for transmitting at least one action parameter (5) describing a maximum possible and / or planned dynamic to the infrastructure device (13) for consideration in determining the risk information (8).