Multi-agent Trajectory Prediction with Fuzzy Query Attention
Nitin Kamra, Hao Zhu, Dweep Trivedi, Ming Zhang, Yan Liu
摘要
Trajectory prediction for scenes with multiple agents and entities is a challenging problem in numerous domains such as traffic prediction, pedestrian tracking and path planning. We present a general architecture to address this challenge which models the crucial inductive biases of motion, namely, inertia, relative motion, intents and interactions. Specifically, we propose a relational model to flexibly model interactions between agents in diverse environments. Since it is well-known that human decision making is fuzzy by nature, at the core of our model lies a novel attention mechanism which models interactions by making continuous-valued (fuzzy) decisions and learning the corresponding responses. Our architecture demonstrates significant performance gains over existing state-of-the-art predictive models in diverse domains such as human crowd trajectories, US freeway traffic, NBA sports data and physics datasets. We also present ablations and augmentations to understand the decision-making process and the source of gains in our model.
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引用它的顶会 Paper7
- On Adversarial Robustness of Trajectory Prediction for Autonomous VehiclesQingzhao Zhang, Shengtuo Hu, Jiachen Sun, Qi Alfred Chen 等CVPR 2022 · 被引用 132 次
- M2I: From Factored Marginal Trajectory Prediction to Interactive PredictionQiao Sun, Xin Huang, Junru Gu, Brian C. Williams 等CVPR 2022 · 被引用 104 次
- GRIN: Generative Relation and Intention Network for Multi-agent Trajectory PredictionLongyuan Li, Jian Yao, Li K. Wenliang, Tong He 等NeurIPS 2021 · 被引用 51 次
- Transition-Informed Reinforcement Learning for Large-Scale Stackelberg Mean-Field GamesPengdeng Li, Runsheng Yu, Xinrun Wang, Bo AnAAAI 2024 · 被引用 7 次
- JointDiff: Bridging Continuous and Discrete in Multi-Agent Trajectory GenerationGuillem Capellera, Luis Ferraz, Antonio Romano, Alexandre Alahi 等ICLR 2026 · 被引用 6 次
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