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Benjamin Rivière

3 accepted papers

2024

Model Predictive Trees: Sample-Efficient Receding Horizon Planning with Reusable Tree Search

IROS 2024poster

We present Model Predictive Trees (MPT), a receding horizon tree search algorithm that improves its performance by reusing information efficiently. Whereas existing solvers reuse only the highest-quality trajectory from the previous iteration as a "hotstart", our method reuses the entire optimal sub…

Cited by 0SourcecodeScholar
2021

Neural Tree Expansion for Multi-Robot Planning in Non-Cooperative Environments

RA-L 2021

We present a self-improving, Neural Tree Expansion (NTE) method for multi-robot online planning in non-cooperative environments, where each robot attempts to maximize its cumulative reward while interacting with other self-interested robots. Our algorithm adapts the centralized, perfect information,

Cited by 14SourcecodeScholar
2020

GLAS: Global-to-Local Safe Autonomy Synthesis for Multi-Robot Motion Planning With End-to-End Learning

RA-L 2020

We present GLAS: Global-to-Local Autonomy Synthesis, a provably-safe, automated distributed policy generation for multi-robot motion planning. Our approach combines the advantage of centralized planning of avoiding local minima with the advantage of decentralized controllers of scalability and distr

Cited by 101SourcecodeScholar