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UniMM: A Unified Mixture Model Framework for Multi-Agent Simulation

About

Simulation plays a crucial role in assessing autonomous driving systems, where the generation of realistic multi-agent behaviors is a key aspect. In multi-agent simulation, the primary challenges include behavioral multimodality and closed-loop distributional shifts. In this study, we formulate a unified mixture model (UniMM) framework for generating multimodal agent behaviors, which can cover the mainstream methods including regression-based mixture models and discrete NTP models. Furthermore, we introduce a closed-loop sample generation approach tailored for mixture models to mitigate distributional shifts. Within the UniMM framework, we recognize critical configurations from both the model and data perspectives. We conduct a systematic examination of various model configurations, and comprehensively characterize their effects. Moreover, our investigation into the data configuration highlights the pivotal role of closed-loop samples in achieving realistic simulations. To extend the benefits of closed-loop samples across a broader range of mixture models, we further introduce a temporal disentanglement-and-alignment mechanism to address the shortcut learning and off-policy learning issues. Leveraging insights from our exploration, the distinct variants proposed within the UniMM framework, including discrete, anchor-free, and anchor-based models, all achieve state-of-the-art performance on the WOSAC benchmark.

Longzhong Lin, Xuewu Lin, Kechun Xu, Haojian Lu, Lichao Huang, Rong Xiong, Yue Wang• 2025

Related benchmarks

TaskDatasetResultRank
Multi-agent trajectory simulationWaymo Open Sim Agents Challenge (WOSAC) 2024 (test)
minADE1.2947
28
Traffic SimulationWaymo Open Motion Dataset (WOMD) v2025 (private test)
RMM Score78.39
14
Motion SimulationWaymo Open Sim Agents Challenge 2025
Realism Score78.29
14
Traffic SimulationWOSAC (Waymo Open Sim Agents Challenge) leaderboard latest (test)
RMM78.29
11
Traffic SimulationWaymo Open Motion Dataset (WOMD) 1.1 (test)
RMM Score76.84
10
Short-term Traffic SimulationWOSAC 2025 (test)
Composite Score0.7829
9
Multi-agent SimulationWOSAC 2023 (test)--
4
Simulating AgentsWaymo Sim Agents Challenge (WOSAC) 2025 (test)
Realism Score0.7829
3
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