METHOD FOR SAFETY ASSESSMENT OF A LANE CHANGE MANEUVER IN AUTOMATED DRIVING OPERATION OF A VEHICLE

AT1925606TActive Publication Date: 2026-06-15MERCEDES BENZ GROUP AG
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Patent Information

Application Number
AT2023744461T
Authority / Receiving Office
AT · AT
Patent Type
Patents
Current Assignee / Owner
Priority Date
2022-08-16
Filing Date
2023-07-18
Publication Date
2026-06-15
Estimated Expiration
2043-07-18

AI Technical Summary

Technical Problem

Current autonomous driving systems lack effective risk quantification and safety measures for lane change maneuvers, particularly when considering unpredictable behavior of vehicles in adjacent lanes, leading to potential collisions during lane changes on multi-lane road sections.

Method used

A method that assesses collision risk by calculating longitudinal accelerations and determining collision probability based on relative positions and speeds of vehicles, using hypothetical lane change maneuvers to evaluate safety, and adjusts target behavior or postpones the lane change to minimize risk, incorporating environmental sensor data and predictive models.

Benefits of technology

This method enables the autonomous vehicle to quantify collision risk and ensure safe lane changes by adjusting its acceleration and timing, reducing the likelihood of collisions and improving safety during lane changes.

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Abstract

The invention relates to a method for evaluating the safety of a lane-change manoeuvre in the automated driving mode of a vehicle (EGO) having a surroundings sensor system, wherein the surroundings of the vehicle (EGO) and objects located therein are detected. According to the invention: - prior to an initiated lane-change manoeuvre of the vehicle (EGO) from a left-hand lane (F1) to a central lane (F2) or from a right-hand lane (F3) to the central lane (F2) of a multi-lane carriageway section (F), a collision risk is determined by means of hypothetical lane-change manoeuvres of other vehicles (PE1 to PE3) to the right-hand lane (F3) or the left-hand lane (F1); - based on a maximum lane-change duration and a cutting-in moment (t EM ), longitudinal accelerations (a x,PE ) of the other vehicles (PE1 to PE3) are determined which lead to a collision, and - performance of a lane-change manoeuvre is evaluated on the basis of a longitudinal position (Δ xMM,init,PEi ) of the vehicle (EGO) relative to the other vehicles (PE1 to PE3) and initial longitudinal speeds (Δ vx,init,PEi ) of the vehicle (EGO) relative to the other vehicles (PE1 to PE3) at the beginning of a lane-change manoeuvre, using a collision probability as safety measure (S1) and a minimum distance (dx,min) in the event of a non-occurrence of a collision as additional safety measure (S2).
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Description

[0001]Mercedes-Benz Group AG Heinzelmann July 13, 2023 Method for the safety assessment of a lane change maneuver in automated driving operation of a vehicle The invention relates to methods for the safety assessment of a lane change maneuver in automated driving operation of a vehicle with an environmental sensor system, wherein an environment of the vehicle and objects located therein are detected based on signals recorded by the environmental sensor system. US Pat. No. 8,244,408 B2 discloses a method for assessing a risk associated with driving operation of an autonomous vehicle control system. A vehicle is configured to perform an autonomous lane change maneuver and is equipped with a monitoring system. In this process, each of several objects located in the vicinity of the vehicle ismonitored. Locations of each of the objects are predicted relative to a projected trajectory of the vehicle, and a collision risk level between the vehicle and each of the objects is assessed. The invention is based on the object of specifying a novel method for the safety assessment of a lane change maneuver in autonomous driving mode of a vehicle. The object is achieved according to the invention by a method having the features specified in claim 1. Advantageous embodiments of the invention are the subject of the subclaims. A method for the safety assessment of a lane change maneuver in autonomous driving mode of a vehicle with an environmental sensor system, wherein an environment of the vehicle and objects located therein are detected based on detected signals from the environmental sensor system, provides according to the invention,that - before a lane change maneuver of the vehicle from a left lane to a middle lane or from a right lane to a middle lane of a multi-lane road section is initiated, a collision risk is determined by means of hypothetical lane change maneuvers of other vehicles in the right lane or the left lane, whereby - based on a maximum lane change duration and a cutting-in moment, longitudinal accelerations are calculated which lead to a collision due to an overlap of the vehicle surfaces of the vehicle and the other vehicles,- the execution of the lane change maneuver is evaluated depending on the vehicle's relative longitudinal position to the other vehicles and the vehicle's relative longitudinal speeds to the other vehicles at the start of the lane change maneuver, using a collision probability as a safety measure and a minimum distance in the absence of a collision as a further safety measure. In particular, the method provides for a check, even before the vehicle begins to change lanes, whether a lane change can still be performed safely even if the vehicle misjudges the other vehicles when predicting lane change maneuvers, or if a lane change cannot be predicted from a given context. For this reason, the collision probability is determined solely based on the longitudinal acceleration.since a lane change by other vehicles cannot be predicted. By applying the method, a vehicle's collision risk can be assessed / quantified at the tactical level for performing a lane change maneuver into the center lane. A vehicle system for automated, particularly autonomous, driving can reduce the collision risk even before the lane change maneuver by adapting its target behavior, or can postpone the start of the lane change maneuver if both positive and negative acceleration effort are too high for the vehicle and / or until the initial situation for a safe lane change has improved. Embodiments of the invention are explained in more detail below with reference to drawings. In the drawings: Fig. 1 schematically shows a road section with three lanes and two vehicles,Fig.2 schematically shows two images of the road section with one and the same initial situation and changed longitudinal acceleration, Fig.3 schematically shows a derivation of the cutting-in moment in a specific situation, Fig.4 schematically shows a derivation of the cutting-in moment in another specific situation, Fig.5 schematically shows a derivation of the cutting-in moment in another specific situation, Fig.6 schematically shows a derivation of the cutting-in moment in another specific situation, Fig.7 schematically shows starting position limit cases and their relative longitudinal speed curves, Fig.8 schematically shows a derivation of a collision probability as a safety measure,Fig. 9 shows a schematic representation of a calculation of a minimum distance between the vehicle and a next-but-one vehicle in a lane next to the next as a further safety measure, and Fig. 10 shows a schematic representation of different limiting cases for calculating longitudinal acceleration limits. Corresponding parts are provided with the same reference numerals in all figures. Figure 1 shows a road section F with three lanes F1 to F3 running in the same direction. In a left lane F1, a vehicle EGO is traveling in autonomous driving mode and intends to perform a lane change maneuver into a center lane F2. A lane change trajectory T1 of vehicle 1 from the left lane F1 to the center lane F2 is shown. In a right lane F3, another vehicle PE1 is traveling, which may, even without a recognizable intention, intend toto perform a lane change maneuver into the center lane F2. A hypothetical lane change trajectory T2 of the additional vehicle PE1 from the right lane F3 to the center lane F2 is also shown. A lane following trajectory ST of the additional vehicle PE1, which exclusively concerns the right lane F3, is also shown in Figure 1. For automated, particularly autonomous, driving of a vehicle EGO, a lane change represents a comparatively complex driving maneuver. This requires planning and implementing longitudinal and lateral movements of the vehicle EGO, taking into account the environmental situation. According to Donges and Michon, it is known that an evaluation of a lane change maneuver takes place on three levels: strategic, tactical, and operational. The following problem description refers in particular to the tactical level.which describes the attractiveness and feasibility of a lane change maneuver. Typically, an autonomous lane change at this level is analyzed only by including object information assigned to the vehicle's own lane, according to the present embodiment in Figure 1, the left lane F1, and a target lane ZS, i.e., the middle lane F2. However, object information of other vehicles PE1 to PE3, shown in the following figures, in the next but one lane, i.e., the right lane F3, is not taken into account, or only indirectly, for example, via potential fields, if a predicted behavior is not relevant for the target lane ZS. The number of other vehicles PE1 to PE3 is not fixed at 3 and can vary. Incorrect predictions or lane changes that are not apparent from a context,are therefore not taken into account or are only taken into account by generic fallback trajectories. However, during lane change maneuvers on three or more lane sections F, especially on a motorway, from a left lane F1 or a right lane F3 to the middle lane F2, it can happen that another vehicle PE1 to PE3 decides to change to the same target lane ZS during the same period of time, even without any recognizable intention. Such a case represents a comparatively critical situation. During lane change maneuvers, there is therefore a risk of a collision with other vehicles PE1 to PE3 that could change to the middle lane F2 during the same period of time. While a human driver of the vehicle EGO, based on his previous experience, can predict the behavior of surrounding traffic during lane change maneuvers, also taking into account objects, i.e. road users, on the lane after the next but one,In order to assess the driver's ability to predict the situation in the right lane F3 (referring to Figure 1) and subsequently evaluate his tactical driving decision in terms of attractiveness and feasibility, automated vehicle systems rely on rule sets that evaluate planned tactical behavior based on measurement data from environmental sensors. In particular, there is neither a risk quantification, particularly in the form of a safety measure S1, S2, nor a calculation rule for a desired target behavior of the vehicle's automated driving system EGO. In order to evaluate a lane change maneuver into the middle lane F2 at the tactical level, considering object information in the next lane, i.e., the right lane F3, it is therefore necessary to define measured variables and parameters.which allow a quantification of the collision risk of these objects during lane-changing maneuvers. Based on this, a desired target behavior for the automated driving system can then be derived. The following describes a method for the safety assessment of a lane-changing maneuver in autonomous driving mode of the vehicle EGO with an environmental sensor system. The environment of the vehicle EGO and the objects located therein are detected based on signals recorded by the environmental sensors. To implement the method, it is assumed that lane-changing maneuvers of other vehicles PE1 to PE3 cannot be predicted. Figure 2 shows two images A1, A2 with a road section F and the same initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^.Vehicle EGO is traveling in the left lane F1 and intends to perform a lane change maneuver into the center lane F2. Three other vehicles PE1 to PE3 are traveling in the right lane F3. A lane change maneuver by vehicle EGO into the center lane F2 is tested for collision potential by means of hypothetical lane change maneuvers by the other vehicles PE1 to PE3. The other vehicles PE1 to PE3 may be passenger cars or trucks. This means that each of the other vehicles PE1 to PE3 represents a potential lane changer for vehicle EGO. The other vehicles PE1 to PE3 may also be other vehicles, such as motorcycles.Here, too, acceleration ranges are determined and the same principle is applied for risk analysis with regard to a lane change by vehicle EGO. To verify the lane change maneuver based on the hypothetical lane change maneuvers of the other vehicles PE1 to PE3, longitudinal accelerations ax,PE are calculated using linearized cross-sectional profiles, in particular based on a maximum lane change duration and a cut-in moment, which lead to a collision due to an overlap of vehicle surfaces between vehicle EGO and one of the other vehicles PE1 to PE3. For this purpose, it is defined that a probability of occurrence of the respective longitudinal accelerations ax,PE leading to a collision simultaneously describes the probability of a collision or corresponds to the probability of a collision, since the longitudinal acceleration ax,PE is directly related to an overlap of the vehicle surfaces and thus a collision. An evaluation of the lane change maneuver at the tactical level is carried out depending on a relative longitudinal position ∆^^^,^^^^,^^^, also referred to as the initial distance between vehicle centers, as vehicle measurement variable 1, and an initial relative longitudinal speed, as vehicle measurement variable 2 at the start of the lane change maneuver based on two safety measures S1, S2. The relative longitudinal position ∆^^^,^^^^,^^^ is calculated as follows: ∆^^^,^^^^,^^^= ^^,^^^, ^^^^− ^^,^^^,^^^^(1) The initial relative longitudinal velocity ∆^^,^^^^,^^^ is calculated as follows: ∆^^,^^^^,^^^= ^^,^^^, ^^^^− ^^,^^^,^^^^(2) In particular, an initial longitudinal distance is negative if the vehicle EGO is traveling behind another vehicle PE1 to PE3. The situation is similar for a relative velocity ∆^ ^(^^^), which is positive if the vehicle EGO has a higher longitudinal speed ^^,^^^, ^^^^than another vehicle PE1 to PE3. A safety measure S1 forms a collision probability and a further safety measure S2 represents, if no collision is imminent, a minimum distance dx,min between the vehicle EGO and the other vehicles PE1 to PE3. An evaluation of the collision probability as a safety measure S1 is carried out using a collision probability, which is derived from a previously determined probability of expected longitudinal accelerations ax,PE of the other vehicles PE1 to PE3, based on the initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^,, based on geometric vehicle information ^ ^^^ of the vehicle EGO, a geometric vehicle information ^ ^^of the other vehicles PE1 to PE3, based on the lane change start times of the other vehicles PE1 to PE3, a duration of the lane change maneuver and a planned longitudinal acceleration ax,EGO,n of the vehicle EGO. An evaluation of the minimum distance dx,min as a further safety measure S2 is carried out based on a minimum longitudinal distance between the bumpers closest to each other. The minimum distance dx,min is selected during the entire lane change maneuver after lateral coordinates between the vehicle EGO and at least one other vehicle PE1 to PE3 intersect. The two safety measures S1, S2 are calculated using a model-based method. By changing the longitudinal acceleration ax,EGO,n, represented by the index n, and / or a lane change duration, the vehicle EGO can influence the collision probability and the minimum distance dx,min during the lane change maneuver.A first figure A1 shows a scenario with three other vehicles PE1 to PE3 as potential entrants into the middle lane F2 in their respective initial situations ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^. An overall collision probability ^GKol,PE^,^> 0 of the vehicle EGO exists for the vehicle EGO with another first vehicle PE1, whereby in the first figure A1 a minimum distance dx,min to the respective other vehicle PE1 to PE3 applies for a longitudinal acceleration a,x,EGO,0, which is set to zero for an overall collision probability ^^^^^,^^^,^> 0. A second figure A2 in Figure 2 shows the same initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^ as shown in the first figure A1. The vehicle EGO has a changed longitudinal acceleration ax,EGO,n, resulting in new values ​​for the respective collision probability and the respective minimum distance dx,min.The EGO vehicle is therefore capable of reducing the risk of a collision even before the lane change maneuver is initiated, or of deliberately postponing the start of the lane change maneuver if the EGO vehicle's positive or negative acceleration effort is too high and / or until the initial situation has improved for a safe lane change. To implement the procedure, a definition of a start time and an end time for the lane change maneuver is required in order to differentiate a given scenario from others. These times are determined using the method known from Source: Vasile, Laurin, Kiran Divakar, and Dieter Schramm. Deep-Learning-Based Behavior Prediction of Rearing Road Users for Highly Automated Lane Changes. Transforming Mobility – What Next? - Conference Proceedings of the 13th Science Forum on Mobility: Springer Fachmedien Wiesbaden, 2021.Using a defined start and end time of a lane change maneuver, averaged longitudinal accelerations are determined on the basis of the recorded measurement data as a function of a lane change direction, in particular with regard to a faster / slower lane F1 to F3, and a vehicle class from a real driving data set with which lane change maneuvers are carried out. In addition, the probability of an averaged longitudinal acceleration with which the lane change maneuver is carried out is also determined. In this case, a probability density function ^^^ is created using a frequency distribution as a function of the lane change direction and vehicle class, the integral of which describes the probability of a corresponding acceleration range. The probability density function ^^^ is then applied to the other vehicles PE1 to PE3 as a function of the lane change direction and their vehicle class.Based on the measurement data, a lane change duration ^ is determined using the start and end times. ^^ (∆^ ^^,^^ ) depending on a distance ∆^ ^^, ^^ of a vehicle PE1 to PE3 to a target lane center ZM, determined by a lane change direction, particularly with respect to a faster / slower lane F1 to F3, and a vehicle class. The lane change duration ^ ^^ (∆^ ^^ ) is determined by several lane change maneuvers that require a similar distance ∆^ ^^, ^^to the target lane center ZM, are determined by averaging. Using the determined longitudinal acceleration, a model is developed by means of which the collision probability as safety measure S1 and the minimum distance dx,min between the vehicle EGO and the other vehicles PE1 to PE3 as a further safety measure S2 can be determined, in particular calculated, on the basis of a respective initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^, and which takes into account the possible influences of the vehicle EGO by changing its longitudinal acceleration ax,EGO,n. Longitudinal acceleration ranges and their probability are used to calculate the collision probability as safety measure S1. In doing so, it is checked which longitudinal accelerations ax,PE of the respective other vehicle PE1 to PE3 lead to a collision with the vehicle EGO during a lane change maneuver into the middle lane F2.Lane change maneuvers of the vehicle EGO are evaluated based on the initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^ to one or more other vehicles PE1 to PE3 in the right lane F3. This evaluation is described by an initial distance ∆^^^,^^^^,^^^between the two vehicle centers and an initial relative longitudinal speed ∆^^,^^^^,^^^. These two parameters are recorded using signals from the environmental sensors of the automated, in particular autonomous, vehicle EGO. Based on the initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^, a minimum longitudinal acceleration ax,PE,min and a maximum longitudinal acceleration ax,PE,max of the other vehicles PE1 to PE3 are then determined, for which a collision just still occurs during a lane change maneuver with a linearized cross-section of the vehicle EGO and the other vehicles PE1 to PE3.Values ​​within these longitudinal acceleration limits, including the limit values, also lead to a collision. A necessary longitudinal acceleration range ax,PE,min to ax,PE,max of the other vehicle PE1 to PE3, which leads to a potential collision, can be influenced by the longitudinal acceleration ax,EGO, with different longitudinal accelerations ax,EGO,n being represented by the index n. A period to be considered is defined by a maximum of the lane change duration (SWD) ^. ^^^ of the vehicle EGO and the other vehicles PE1 to PE3 defined. In particular, this is done because a longer lane change duration offers more time to reduce a higher initial relative longitudinal speed ∆^^,^^^^,^^^ and distances with a lower acceleration difference between the vehicle EGO and at least one of the other vehicles PE1 to PE3, whereby this represents a more critical case. Such a case is described further below. In addition, the beginning of the period to be considered, within which a collision can occur, is defined by a time ^ ^^ of a reeving process. To determine the time ^ ^^To determine the time at which the two vehicle surfaces first laterally intersect, the lateral movements of the vehicle EGO and the corresponding other vehicle PE1 to PE3 are linearized. Figures 3 to 6 each illustrate a calculation rule and show four possible cases. Assuming a constant lateral speed, the initial distance ∆^ ^^, ^^ to the target lane center ZM four possible points in time ^ ^^ Calculate for a lane-change maneuver. Case 1: An example shown in Figure 3 shows possible intersection points of resulting straight lines, which represent the linearized transverse movement of the vehicle sides facing the vehicle (ZF). If the two vehicle surfaces intersect before the end of one of the two lane-change maneuvers, the following applies: ^ ^^ = ^^ ^^,^^^ (^ ^^ )^^ ^^,^^,^^^^ ^^^ ^,^^^ ^^ ^,^^ ^ (3) Condition: (4) ^ ^^ describes a shift in the lane change start of the corresponding additional vehicle PE1 to PE3. Assuming that there are lane change maneuvers that cannot be recognized in context, the corresponding additional vehicle PE1 to PE3 can decide to also change lanes F1 to F3 at any possible point in time during the lane change maneuver of the vehicle EGO. Due to the shift ^ ^^ If the lane change of the corresponding other vehicle PE1 to PE3 is postponed to a later time, the period to be considered is shortened. The initial position and relative speed are calculated as follows: It is assumed that the initial longitudinal acceleration ^^,^^^,^^^^of other vehicles PE1 to PE3 cannot be measured exactly or only inaccurately and is assumed to be zero for the procedure described here. A first possible contact FPC between the vehicle EGO and the corresponding further vehicle PE1 to PE3 is also shown in Figure 3. Case 2: If the corresponding further vehicle PE1 to PE3 reaches a lateral end position of the vehicle EGO after the vehicle EGO has completed its lateral movement, but before the end of the considered period (^ ^^^ − ^ ^^ ), then: as shown in the embodiment in Figure 4. Case 3: If the corresponding further vehicle PE1 to PE3 reaches the lateral end position only after the end of the considered period (tmax - tSP), but still reaches the lane boundary (^ ^^,^^) of the target track ZS, then: ^ ^^ = t ^^^ − t ^^ (11) t ^^ ^^,^^ ^^ ^^,^^,^^^^ ^ ^ ^^ − t ^^ ≥ ^ ^^,^^ = . |^ ^,^^ | Although there is no actual overlap between vehicle surfaces, the presence of both vehicles EGO, PE1 to PE3 next to each other in the same lane F2 is considered critical and therefore counted as an overlap. Case 4: If the corresponding additional vehicle PE1 to PE3 reaches its lateral end position before the EGO vehicle reaches a lateral end position of the corresponding additional vehicle PE1 to PE3, the following applies: Case 4 is completed with equation (13). Using the following calculation rule, a minimum longitudinal acceleration ^ ^,^^^,^^^ and a maximum longitudinal acceleration ^ ^,^^^,^^^of the corresponding additional vehicle PE1 to PE3. Values ​​within these limits, including limit values, lead to a collision under the given initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^: Figure 7 shows explanations of the calculation rule. An acceleration limit case is an acceleration difference ∆^^^,^^^^ / ^^^, with which the relative velocity ∆^ ^ (^ ^^ ) at the time ^ ^^ to the end of the lane change or at the time ^ ^^ to the reeving process is completely reduced. Depending on the sign of the relative speed ∆^ ^ (^ ^^ ) at the time ^ ^^ the initial limiting distance ∆^^^,^^,^^^^ / ^^^ of the vehicle centers can be calculated, which would be necessary so that at a given relative speed ∆^ ^ (^ ^^) a final approach point before the vehicles EGO, PE1 to PE3 would move away from each other again is a touch of the bumpers. If the distance ∆^ ^^ (^ ^^ ) of the vehicle centers at time ^ ^^ between the limits determined in equations (15) and (16), a differential acceleration is sought for which the bumpers of the vehicles EGO, PE1 to PE3 touch (∆^ ^^,^ = 0) before the vehicles EGO, PE1 to PE3 move away from each other again. This case occurs when: Solving for t yields only one solution. This is the case when the square root of the solution for quadratic equations of the form ^^ ^ + ^^ + ^ = 0 results in zero. The calculation for a time of contact of the bumpers∆^ ^^,^ lies between the time ^ ^^ of the merging process and an end of the lane change maneuver and is used for each shift ^ ^^of the starting time. Depending on the sign of the relative velocity ∆^ ^ (^ ^^ ) at the time ^ ^^ the number of possible cases in equations (21) and (22) changes. For positive relative velocity ∆^ ^ (^ ^^ ) the maximum longitudinal acceleration ^ ^,^^^,^^^ determined by equation (21a), (21b) or (21c), while the minimum longitudinal acceleration ^ ^,^^^,^^^ is determined only by equation (22d) or (22f). For a negative relative velocity ∆^ ^ (^ ^^ ) the situation is reversed, with the maximum longitudinal acceleration ^ ^,^^^,^^^ then determined by equation (21a) or (21c). Equation (17) for the limiting position for the minimum longitudinal acceleration ^ ^,^^^,^^^ at positive relative velocity ∆^ ^ (^ ^^) is obtained by equating equations (22d) and (22f) , or equation (18) for the limiting position for the maximum longitudinal acceleration ^ ^,^^^,^^^ at negative relative velocity ∆^ ^ (^ ^^ ) by equating equations (21a) and (21c). Figure 10 illustrates the limiting positions from equations (15) to (18) and individual ranges from equations (21a-c) and (22d-f). Determined longitudinal acceleration values ​​^ ^,^^,^^^ and ^ ^,^^,^^^ from equations (21a) to (21c) and (22d) to (22f) are then used as integral limits, as shown in Figure 8, in the calculation of the collision probability as a safety measure S1. For this purpose, the probability density function ^^^ determined at an earlier time is integrated. The collision probability is determined as a function of the displacement ^ ^^ weighted, with the weighting being determined by a straight line shown in Figure 8 ^ ^^,^^^is defined. In particular, Figure 8 shows a derivation of the collision probability as a safety measure S1. The reason for the weighting line is: the later the lane change maneuver begins for the corresponding additional vehicle PE1 to PE3, the less time is available to complete the lane change maneuver, thereby reducing the risk of a collision. Furthermore, it can be assumed that as the lane change maneuver of vehicle EGO progresses, the probability that a lane change will be initiated by additional vehicles PE1 to PE3 also decreases, since the probability with which the movement of vehicle EGO is perceived by additional vehicles PE1 to PE3 increases. The weighted individual collision probabilities are then summed to form an overall collision probability ^^^^^,^^^,^. The overall collision probability ^^^^^,^^^,^ can also be calculated without a weighting line and used as a safety measure S1. (24) In an upper section of Figure 8, two areas B1, B2 are shown with different hatching. A first area B1 represents possible transverse collisions due to overlapping vehicle surfaces between the vehicle EGO and a corresponding further vehicle PE1 to PE3. A lower area B2 represents a possible occurrence of longitudinal collisions between the vehicle EGO and the corresponding further vehicle PE1 to PE3. By means of the straight line ^ ^^,^^^ there is an area below this ^ ^ = 1 = ^ ^ ^ ^^,^^^ In addition, an intersection point with the abscissa is determined using a last relevant starting time ^ ^^,^^^ for the lane change of the corresponding additional vehicle PE1 to PE3. This last relevant start time ^ ^^,^^^represents a point in time at which the corresponding further vehicle PE1 to P3 begins its lane change maneuver and at which time is sufficient to touch the lane boundary SB of the target lane ZS with the vehicle surface facing the vehicle EGO. An intersection point G0 with the ordinate axis results from a requirement for the ^ ^ area ^ ^ = 1 = ^ ^ ^ ^ ^^,^^^ below the straight line ^ ^^,^^^ to ^ ^ = ^ ^^,^^^ . A gradient ^ ^^^ the straight line ^ ^^,^^^ is determined as follows: (25) The total collision probability of all PEs is then summed (^^^^^=accumulated GKol, ^ ^^ = number of potential cut-ins). The total collision probability ^^^^^^,^^,^can be integrated into any cost function of a trajectory planning to determine the optimal longitudinal acceleration a x,EGOunder various requirements and / or restrictions with regard to engine size, coefficient of friction, comfort requirements, legal requirements, etc. If the calculated acceleration effort of the vehicle EGO, which would be necessary to exclude a potential collision, has too strong an adverse impact on other requirements, it is also possible to perform the lane change maneuver at a later time, when the initial situation for performing a safe lane change maneuver has changed. Figure 9 shows a representation of a relative longitudinal distance profile of the vehicle bumpers for calculating a minimum distance d x,min between the vehicle EGO and the corresponding other vehicle PE1 to PE3, if no collision occurs between them. If no collision occurs, the minimum distance d x,min, also known as minimum longitudinal distance, is used as an additional safety measure S2. The minimum distance d x,min either at the moment of reeving ^ ^^ or at the moment of maximum lane change duration ^ ^^^ minimal. In particular, Figure 9 shows the relationship between the minimum distance d x,min and the relative longitudinal velocity ∆^ ^ (^ ^^ = 0) about the lane change maneuver. The shift ^ ^^The starting time for initiating the lane change maneuver of the corresponding additional vehicle PE1 to PE3 is set to zero, since when both lane change maneuvers start simultaneously, the most time is available to reduce a relative longitudinal distance. The distance between the two facing vehicle bumpers at the moment of merging and the time of the maximum lane change duration depends on the most critical acceleration of the corresponding additional vehicle PE1 to PE3 depending on the initial situation ∆^^^,^^^^,^^^, ∆^^,^^^^,^^^: A minimum of the minimum distance dx,min is then determined depending on the case distinction: The procedure enables a safety assessment for an automated, particularly autonomous, vehicle (EGO). By changing the longitudinal acceleration ^ ^,^^^,^ of the vehicle EGO, the longitudinal accelerations ^ ^,^^The other vehicles PE1 to PE3, which would be necessary for a collision, are shifted so that they are outside a critical area determined based on real-world driving data. The EGO vehicle is thus able to reduce the risk of a collision even before a lane change maneuver into the center lane F2 or to deliberately postpone the start of the lane change maneuver, thereby increasing safety for the EGO vehicle and the other vehicles PE1 to PE3.

Claims

Mercedes-Benz Group AG Heinzelmann July 13, 2023 Patent claims 1. Method for the safety assessment of a lane change maneuver in automated driving operation of a vehicle (EGO) with an environmental sensor system, wherein an environment of the vehicle (EGO) and objects located therein are detected on the basis of detected signals from the environmental sensor system, characterized in that - before an initiated lane change maneuver of the vehicle (EGO) from a left lane (F1) to a middle lane (F2) or from a right lane (F3) to the middle lane (F2) of a multi-lane road section (F) by means of hypothetical lane change maneuvers of other vehicles (PE1 to PE3) in the right lane (F3) or the left lane (F1), a collision risk is determined, - based on a maximum lane change duration and a cutting-in moment (^ ^^ ) Longitudinal accelerations (^ ^,^^) of the other vehicles (PE1 to PE3) are determined, which lead to a collision due to an overlap of vehicle surfaces of the vehicle (EGO) and the other vehicles (PE1 to PE3), and - an execution of the lane change maneuver is assessed as a function of a relative longitudinal position (^^^^,^^^^,^^^) of the vehicle (EGO) to the other vehicles (PE1 to PE3) and initial relative longitudinal speeds (^^^,^^^^,^^^) of the vehicle (EGO) to the other vehicles (PE1 to PE3) at the start of a lane change maneuver using a collision probability as a safety measure (S1) and a minimum distance (dx,min) if a collision does not occur as a further safety measure (S2).

2. Method according to claim 1, characterized in that the two safety measures (S1, S2) are determined model-based and by changing the longitudinal acceleration (^ ^,^^^,^) and / or the initial situation of the vehicle (EGO) (∆^^^,^^^^,^^^, ∆^^,^^^^,^^^) to a subsequent vehicle (PE1 to PE3), the collision probability and the minimum distance (dx,min) during a lane change maneuver are influenced.

3. Method according to claim 1 or 2, characterized in that the collision probability is used as a safety measure (S1) based on a previously determined probability of expected longitudinal accelerations (a x,PE ) of the other vehicles (PE1 to PE3), based on an initial situation ), based on geometric vehicle information (^ ^^^ ) of the vehicle (EGO) and geometric vehicle information (^ ^^^ ) of the other vehicles (PE1 to PE3), based on the starting times of the hypothetical lane change maneuvers of the other vehicles (PE1 to PE3), a duration of the lane change maneuver and a planned longitudinal acceleration (^ ^,^^^,^) of the vehicle (EGO) is determined.

4. Method according to one of the preceding claims, characterized in that an evaluation of the minimum distance (d x,min ) as a further safety measure (S2) based on a minimum longitudinal distance between a bumper of the vehicle (EGO) and a bumper of the next vehicle (PE1 to PE3), whereby the minimum distance (d x,min ) is selected during the lane change maneuver after it is determined that the lateral coordinates of the vehicles (EGO, PE1 to PE3) overlap.