SOTAVerified

NavSim

Data-Driven Non-Reactive Autonomous Vehicle Benchmark.

Evaluates autonomous driving stacks that produce waypoints with a static dataset using the PDM-Score metric. The PDM-score metric performs a pseudo-simulation by rolling out the trajectory and simulating all other actors via log-replay. This results in an open-loop evaluation that correlates with closed-loop performance.

Papers

Showing 1120 of 26 papers

TitleStatusHype
End-to-End Driving with Online Trajectory Evaluation via BEV World ModelCode3
Hydra-NeXt: Robust Closed-Loop Driving with Open-Loop TrainingCode1
Centaur: Robust End-to-End Autonomous Driving with Test-Time Training0
Finetuning Generative Trajectory Model with Reinforcement Learning from Human Feedback0
GoalFlow: Goal-Driven Flow Matching for Multimodal Trajectories Generation in End-to-End Autonomous DrivingCode3
DrivingGPT: Unifying Driving World Modeling and Planning with Multi-modal Autoregressive Transformers0
Bench2Drive-R: Turning Real World Data into Reactive Closed-Loop Autonomous Driving Benchmark by Generative Model0
DiffusionDrive: Truncated Diffusion Model for End-to-End Autonomous DrivingCode5
NAVSIM: Data-Driven Non-Reactive Autonomous Vehicle Simulation and BenchmarkingCode7
Enhancing End-to-End Autonomous Driving with Latent World ModelCode3
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