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Improving Path Accuracy of Mobile Robots in Uncertain Environments by Adapted Bézier Curves

Ioana-Alexandra Șomîtcă, Stelian Brad, Vlad Florian, Ștefan-Eduard Deaconu

Year
2022
Citations
8
Access
Open access

Abstract

An algorithm that presents the best possible approximation for the theoretical Bézier curve and the real path on which a mobile robot moves in a dynamic environment with mobile obstacles and boundaries is introduced in this paper. The algorithm is tested on a set of scenarios that comprehensively cover critical situations of obstacle avoidance. The selection of scenarios is made by deploying robot navigation performances into constraints and further into descriptive characteristics of the scenarios. Computer-simulated environments are created with dedicated tools (i.e., Gazebo) and modeling and programming technologies (i.e., Robot Operating System (ROS) and Python). It is shown that the proposed algorithm improves the performance of the path for robot navigation in a highly dynamic environment, with dense mobile obstacles.

Keywords

Mobile robotComputer scienceRobotPython (programming language)ObstacleObstacle avoidanceMotion planningPath (computing)Mobile robot navigationBézier curve

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