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Social-WaGDAT: Interaction-aware Trajectory Prediction via Wasserstein Graph Double-Attention Network

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arxiv 2002.06241 v1 pith:OY3AV5A2 submitted 2020-02-14 cs.CV cs.LGcs.MAcs.RO

classification cs.CVcs.LGcs.MAcs.RO
keywords predictiontrajectorysystemdynamicgraphmodelperformancerelational
verification ladder T0 review T1 audit T2 compute T3 formal
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Effective understanding of the environment and accurate trajectory prediction of surrounding dynamic obstacles are indispensable for intelligent mobile systems (like autonomous vehicles and social robots) to achieve safe and high-quality planning when they navigate in highly interactive and crowded scenarios. Due to the existence of frequent interactions and uncertainty in the scene evolution, it is desired for the prediction system to enable relational reasoning on different entities and provide a distribution of future trajectories for each agent. In this paper, we propose a generic generative neural system (called Social-WaGDAT) for multi-agent trajectory prediction, which makes a step forward to explicit interaction modeling by incorporating relational inductive biases with a dynamic graph representation and leverages both trajectory and scene context information. We also employ an efficient kinematic constraint layer applied to vehicle trajectory prediction which not only ensures physical feasibility but also enhances model performance. The proposed system is evaluated on three public benchmark datasets for trajectory prediction, where the agents cover pedestrians, cyclists and on-road vehicles. The experimental results demonstrate that our model achieves better performance than various baseline approaches in terms of prediction accuracy.

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  1. ILNet: Trajectory Prediction with Inverse Learning Attention for Enhancing Intention Capture

    cs.CV 2025-07 conditional novelty 6.0 of 10

    ILNet reports top INTERACTION joint metrics and strong Argoverse marginal metrics using inverse temporal attention plus learned dynamic anchor refinement.

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