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Integrating cloud model in evolutionary algorithm for path planning of mobile robots

Xuefeng Dai, Xiaomei Ning, Zhifeng Yao, Hongbo Shao

Year
2010
Citations
4

Abstract

Evolutionary algorithms (EA) have been used to solve path planning of mobile robots successfully. However, accuracy and convergence are always topics. The cloud model which transforms qualitative concept into quantitative description, and vice versa, is adept in uncertainty modeling. It can be used in EA for evolving in a uniform and natural way. An EA embedded with cloud model (EACM) for path planning of mobile robots was proposed in this paper. The algorithm adopted floating-point coding and realized fast converging. Simulation results verified the efficiency of our algorithm.

Keywords

Computer scienceMobile robotMotion planningRobotCloud computingCoding (social sciences)Convergence (economics)Path (computing)AlgorithmArtificial intelligence

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