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Manshi Limbu

4 accepted papers

2024

Learning Coordinated Maneuver in Adversarial Environments

IROS 2024poster

This paper aims to solve the coordination of a team of robots traversing a route in the presence of adversaries with random positions. Our goal is to minimize the overall cost of the team, which is determined by (i) the accumulated risk when robots stay in adversary-impacted zones and (ii) the missi…

Cited by 0SourceScholar
2024

Scaling Team Coordination on Graphs with Reinforcement Learning

ICRA 2024poster

This paper studies Reinforcement Learning (RL) techniques to enable team coordination behaviors in graph environments with support actions among teammates to reduce the costs of traversing certain risky edges in a centralized manner. While classical approaches can solve this non-standard multi-agent…

Cited by 6SourceScholar
2024

Team Coordination on Graphs: Problem, Analysis, and Algorithms

IROS 2024poster

Team Coordination on Graphs with Risky Edges (TCGRE) is a recently emerged problem, in which a robot team collectively reduces graph traversal cost through support from one robot to another when the latter traverses a risky edge. Resembling the traditional Multi-Agent Path Finding (MAPF) problem, bo…

Cited by 3SourceScholar
2023

Team Coordination on Graphs with State-Dependent Edge Costs

IROS 2023poster

This paper studies a team coordination problem in a graph environment. Specifically, we incorporate “support” action which an agent can take to reduce the cost for its teammate to traverse some high cost edges. Due to this added feature, the graph traversal is no longer a standard multi-agent path p…

Cited by 9SourceScholar