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HRIarXiv:2408.15864

FlowAct: 知覚の連続フローとモジュール型行動サブシステムによる能動的なマルチモーダル人間-ロボットインタラクションシステム

FlowAct: A Proactive Multimodal Human-robot Interaction System with Continuous Flow of Perception and Modular Action Sub-systems

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環境状態追跡と行動プランナーの2つのコントローラで、知覚から行動までの非同期ループを構成し、モジュール型行動サブシステムを動的に調整する能動的HRIシステムを提案。実世界実験で応答性と適応性の向上を示した。

著者: Timothée Dhaussy, Bassam Jabaian, Fabrice Lefèvre

分類: cs.RO

原文アブストラクト

The evolution of autonomous systems in the context of human-robot interaction systems necessitates a synergy between the continuous perception of the environment and the potential actions to navigate or interact within it. We present Flowact, a proactive multimodal human-robot interaction architecture, working as an asynchronous endless loop of robot sensors into actuators and organized by two controllers, the Environment State Tracking (EST) and the Action Planner. The EST continuously collects and publishes a representation of the operative environment, ensuring a steady flow of perceptual data. This persistent perceptual flow is pivotal for our advanced Action Planner which orchestrates a collection of modular action subsystems, such as movement and speaking modules, governing their initiation or cessation based on the evolving environmental narrative. The EST employs a fusion of diverse sensory modalities to build a rich, real-time representation of the environment that is distributed to the Action Planner. This planner uses a decision-making framework to dynamically coordinate action modules, allowing them to respond proactively and coherently to changes in the environment. Through a series of real-world experiments, we exhibit the efficacy of the system in maintaining a continuous perception-action loop, substantially enhancing the responsiveness and adaptability of autonomous pro-active agents. The modular architecture of the action subsystems facilitates easy extensibility and adaptability to a broad spectrum of tasks and scenarios.

関連論文

PR本紙発行元 EmplifAI