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A Bio-Inspired Fluid Dynamics Approach for Unified and Efficient Path Planning and Control

  • Mohammed Baziyad
  • , Raouf Fareh*
  • , Tamer Rabie
  • , Ibrahim Kamel
  • , Brahim Brahmi*
  • *Corresponding author for this work

Research output: Contribution to journalArticlepeer-review

Abstract

This paper presents a novel bio-inspired fluid dynamics framework that unifies path planning and control within a single continuous navigation process. Unlike conventional approaches that separate trajectory generation and execution, the proposed method models the robot as a particle immersed in an artificial fluid field, where the goal acts as a sink and obstacles modify the flow to produce collision-free motion. To ensure global optimality and eliminate local minima traps, the framework incorporates a sampling-based enhancement that evaluates multiple trajectories within high-flow regions and selects the optimal path using graph-based optimization. A fluid-based control law directly converts the velocity field into robot motion commands, enabling seamless integration between planning and execution. Theoretical stability is established using Lyapunov analysis, guaranteeing convergence to the goal. Extensive experiments on a Pioneer P3-DX robot demonstrate that the proposed approach achieves execution speeds 1.5 to 9.7 times faster than A*, PRM, and RRT*, while producing paths 3.6% to 29.5% shorter. Furthermore, the unified framework provides smooth and accurate motion with tracking errors within ±0.1 m. These results confirm that the proposed method improves path quality, computational efficiency, and real-time navigation performance.

Original languageEnglish
Article number133
JournalActuators
Volume15
Issue number3
DOIs
StatePublished - Mar 2026

Bibliographical note

Publisher Copyright:
© 2026 by the authors.

Keywords

  • artificial potential fields
  • autonomous robots
  • fluid dynamics
  • path planning
  • robot navigation
  • unified planning and control

ASJC Scopus subject areas

  • Control and Systems Engineering
  • Control and Optimization

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