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Kazuki Shibata

4 accepted papers

2025

ICCO: Learning an Instruction-conditioned Coordinator for Language-guided Task-aligned Multi-robot Control

IROS 2025

Recent advances in Large Language Models (LLMs) have permitted the development of language-guided multi-robot systems, which allow robots to execute tasks based on natural language instructions. However, achieving effective coordination in distributed multi-agent environments remains challenging due

Cited by 1SourcecodeScholar
2024

Language to Map: Topological map generation from natural language path instructions

ICRA 2024poster

In this paper, a method for generating a map from path information described using natural language (textual path) is proposed. In recent years, robotics research mainly focus on vision-and-language navigation (VLN), a navigation task based on images and textual paths. Although VLN is expected to fa…

Cited by 5SourceScholar
2021

Deep reinforcement learning of event-triggered communication and control for multi-agent cooperative transport

ICRA 2021poster

In this paper, we explore a multi-agent reinforcement learning approach to address the design problem of communication and control strategies for multi-agent cooperative transport. Typical end-to-end deep neural network policies may be insufficient for covering communication and control; these metho…

Cited by 23SourceScholar