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Generating Critical Test Scenarios for Automated Vehicles with Evolutionary Algorithms., and . IV, page 2352-2358. IEEE, (2019)CommonRoad-Reach: A Toolbox for Reachability Analysis of Automated Vehicles., , , and . ITSC, page 2313-2320. IEEE, (2022)Scenario Factory: Creating Safety-Critical Traffic Scenarios for Automated Vehicles., , , and . ITSC, page 1-7. IEEE, (2020)A Multi-Step Approach to Accelerate the Computation of Reachable Sets for Road Vehicles., and . ITSC, page 1-7. IEEE, (2020)Synthesizing Traffic Scenarios from Formal Specifications for Testing Automated Vehicles., and . IV, page 2065-2072. IEEE, (2020)Real-Time Path Planning in Unknown Environments for Bipedal Robots., , , , , , , and . IEEE Robotics Autom. Lett., 2 (4): 1856-1863 (2017)AROC: a toolbox for automated reachset optimal controller synthesis., , , , , and . HSCC, page 23:1-23:6. ACM, (2021)Falsifying Motion Plans of Autonomous Vehicles With Abstractly Specified Traffic Scenarios., and . IEEE Trans. Intell. Veh., 8 (2): 1717-1730 (February 2023)CommonRoad Scenario Designer: An Open-Source Toolbox for Map Conversion and Scenario Creation for Autonomous Vehicles., , and . ITSC, page 3176-3182. IEEE, (2021)Coupling SUMO with a Motion Planning Framework for Automated Vehicles., , , and . SUMO, volume 62 of EPiC Series in Computing, page 1-9. EasyChair, (2019)