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One Diffusion Model, Two Roles: Guided Trajectory Planning and Safety-Critical Scenario Generation in Closed-Loop Simulation

2026-09-07 12:00 Models 🔥 42.2 heat score
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To improve the closed-loop performance of nuPlan autonomous driving development, researchers proposed a single-pretrained diffusion traffic model that can simultaneously perform both ego motion planning and generation of critical safety scenarios within the closed loop. The study introduced a single-stream and dual-stream (SSDS) diffusion-Transformer decoder to fuse scene context through a joint attention mechanism; it also proposed a training-free DAPSE guidance scheme by injecting arbitrary energy functions at the clean sample level to avoid first-order approximation errors and eliminate the auxiliary network. In the nuPlan closed-loop simulation with an independent black-box planner, this model was used as a controllable scenario generator, utilizing guidance during inference to direct selected agents towards critical safety behaviors such as aggressive切入 and front-vehicle braking for closed-loop evaluation. Results showed that the generated scenarios revealed hidden failure modes under standard benchmarks; although the planner based on SSDS was stronger in nominal performance, it exhibited greater performance degradation in these challenging scenarios, proving that benchmark superiority does not necessarily translate into robustness.

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A arXiv cs.AI en 2026-09-07 12:00

One Diffusion Model, Two Roles: Guided Trajectory Planning and Safety-Critical Scenario Generation in Closed-Loop Simulation

一项研究提出单一预训练扩散交通模型在自动驾驶开发闭环中兼具 ego 运动规划与安全关键场景生成双重角色。为提升 nuPlan 闭环性能,研究者引入单流双流(SSDS)扩散 -Transformer 解码器,通过联合注意力融合场景上下文;同时提出无需训练的 DAPSE 引导方案,在干净样本级注入任意能量函数以避免一阶近似误差并省去辅助网络。该模型还被用作可控场景生成器,利用推理时引导将选定代理导向激进切入、前车制动等安全关键行为以进行闭环评估。在独立黑盒规划器的 nuPlan 闭环仿真中,生成的场景暴露出标准基准下隐藏的失效模式;尽管基于 SSDS 的规划器在名义性能上更强,但在这些挑战性场景中表现出更大的性能下降,证明基准优越性并不必然转化为鲁棒性。