Knowledge-Based Sensing/Acting in Mobile Autonomous Robots

Michèle Ruta, Floriano Scioscia, Giuseppe Loseto, Eugenio Di Sciascio · 2017

The paper proposes a knowledge-based framework for mobile autonomous robots. It exploits data annotation for semantic-based context description. High-level event/situation detection and action decision are performed through a semantic matchmaking approach, supporting approximate matches and relevance-based ranking. The framework was fully implemented in a prototype built with off-the-shelf components, validated in a Search And Rescue (SAR) case study and evaluated in an early performance analysis, supporting the feasibility of the proposal. The work demonstrates novel analysis methods on data extracted by inexpensive sensors can yield useful results without requiring hefty computational resources.

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