ROJun 18

Increasing Resilience of Continuum Robots via Motion Planning Algorithms

arXiv:2606.204950.0
Predicted impact top 100% in RO · last 90 daysOriginality Synthesis-oriented
AI Analysis

For continuum robotics, this work offers a multi-criteria path planning approach to increase operational lifespan, but it is incremental as it applies existing methods (AHP, GA, A*) to a specific domain.

This paper modifies Genetic and A* algorithms with Analytical Hierarchy Process to optimize continuum robot paths for resilience (distance, motor damage, mechanical damage, accuracy). Results show Genetic algorithm generates more diverse paths with environment-independent performance, improving robot resilience.

This paper presents an experimental study of motion planning for resilient continuum robots. In this study we mainly focused on multi-criteria decision-making, its application for path-planning algorithms, impact on the generated path and execution time. To do this, we used two well-known algorithms for path planning, namely Genetic algorithm and A star algorithm, and modified them by adding the Analytical Hierarchy Process algorithm to evaluate the quality of the paths generated. In our experiment the Analytical Hierarchy Process considers four different criteria, i.e. distance, motors damage, mechanical damage of the robot's arm and accuracy, each considered to contribute to the resilience of a continuum robot. The use of different criteria is necessary to increase the time to maintenance operations of the continuum robot. We conducted the experiments using two different simulated environments of the robot. Although we significantly simplified the robot's model and its environment, we still implemented some of the features of the environment based on the real robot prototype. In particular, one of the environments has single- as well as multi-path points, and other consists of the multi-path points only. The results show that, in contrast to A star, the performance time of Genetic algorithm does not depend on the environment's cardinality. It generates more diverse paths, which increases the robot's resilience.

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