Learning Game-Theoretic Models of Multiagent Trajectories Using Implicit Layers

Author:

Geiger Philipp,Straehle Christoph-Nikolas

Abstract

For prediction of interacting agents' trajectories, we propose an end-to-end trainable architecture that hybridizes neural nets with game-theoretic reasoning, has interpretable intermediate representations, and transfers to downstream decision making. It uses a net that reveals preferences from the agents' past joint trajectory, and a differentiable implicit layer that maps these preferences to local Nash equilibria, forming the modes of the predicted future trajectory. Additionally, it learns an equilibrium refinement concept. For tractability, we introduce a new class of continuous potential games and an equilibrium-separating partition of the action space. We provide theoretical results for explicit gradients and soundness. In experiments, we evaluate our approach on two real-world data sets, where we predict highway drivers' merging trajectories, and on a simple decision-making transfer task.

Publisher

Association for the Advancement of Artificial Intelligence (AAAI)

Subject

General Medicine

Cited by 6 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Learning Rationality in Potential Games;2023 62nd IEEE Conference on Decision and Control (CDC);2023-12-13

2. GTP-Force: Game-Theoretic Trajectory Prediction through Distributed Reinforcement Learning;2023 IEEE 20th International Conference on Mobile Ad Hoc and Smart Systems (MASS);2023-09-25

3. Graph-Based Scenario-Adaptive Lane-Changing Trajectory Planning for Autonomous Driving;IEEE Robotics and Automation Letters;2023-09

4. Learning to Play Trajectory Games Against Opponents With Unknown Objectives;IEEE Robotics and Automation Letters;2023-07

5. Interaction-Aware Merging in Mixed Traffic with Integrated Game-theoretic Predictive Control and Inverse Differential Game;2023 IEEE Intelligent Vehicles Symposium (IV);2023-06-04

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