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A Dedicated Genetic Algorithm for Two-Dimensional Non-Guillotine Strip Packing

机译:二维非断头带填料的专用遗传算法

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摘要

This paper introduces DGA, a new dedicated genetic algorithm for a two-dimensional (2D) non-guillotine strip packing problem (2D-SPP). DGA integrates two key features: a hierarchical fitness function and a problem-specific crossover operator (WAX for "wasted area based crossover"). The fitness function takes into account not only the final height of the strip (to be minimized), but also the wasted areas. The goal of the meaningful (and "visual”) WAX crossover operator is to preserve the good property of parent packing configurations. To assess the proposed DGA, experimental results are shown on a set of well-known zero-waste benchmark instances and compared with previously reported genetic algorithms as well as the best performing meta-heuristic algorithms.
机译:本文介绍DGA,这是一种用于二维(2D)非断头台带状包装问题(2D-SPP)的新型专用遗传算法。 DGA集成了两个关键功能:分层适应度函数和特定于问题的交叉算子(用于“基于浪费区域的交叉”的WAX)。适应度功能不仅要考虑条带的最终高度(要最小化),还要考虑浪费的区域。有意义的(和“可视的”)WAX交叉算子的目标是保留父包装结构的良好特性,为评估建议的DGA,在一组众所周知的零废物基准实例上显示了实验结果,并与先前报道的遗传算法以及性能最佳的元启发式算法。

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