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Memetic Algorithm for Energy Optimization in Point-to-Point Robotized Operations

Sandi Baressi Šegota, Domagoj Frank, Ivan Lorencin, Nikola Anđelić

发表年份
2025
引用次数
2
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摘要

This paper presents a memetic algorithm (MA) for energy cost estimation of a robot path. The developed algorithm uses a random recombination genetic algorithm (GA) as the basis for the first stage of the algorithm and performs a local search based on feature importances determined from the data in the second stage. To allow for the faster determination of the solution quality, the algorithm uses an ML-driven fitness function, based on MLP, for the determination of path energy. The performed tests show that not only does the GA itself optimize the point-to-point paths well, but the usage of MA can lower the energy use by 58% on average (N = 100) when compared to a linear path between the same two points.

关键词

Memetic algorithmGenetic algorithmPath (computing)Energy (signal processing)Basis (linear algebra)Feature (linguistics)RobotSearch algorithm

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