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An improved hybrid immune algorithm for mechanism kinematic chain isomorphism identification in intelligent design

机译:一种改进的混合免疫算法,用于智能设计中的机构运动链同构识别

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摘要

In intelligent mechanism design, isomorphism identification of mechanism kinematic chains (IIMKC) is aimed at avoiding repeated mechanism design and is proved to be an NP-complete problem. In this paper, kinematic chains are represented by graphs. An improved hybrid immune algorithm, which integrates the clonal selection immune algorithm with genetic algorithm and the local search algorithm, is proposed to solve IIMKC problem. Moreover, the novel saving and updating operator is proposed to save the best antibodies and maintain a diverse repertoire of antibodies for improving performance of clonal selection. In addition, the pseudo-crossover operator is introduced to enhance the efficiency of genetic algorithm. Simulation results validate the high efficiency and robustness of the hybrid immune algorithm.
机译:在智能机构设计中,机构运动链(IIMKC)的同构识别旨在避免重复进行机构设计,并被证明是一个NP完全问题。在本文中,运动链由图形表示。提出了一种改进的混合免疫算法,将克隆选择免疫算法与遗传算法和局部搜索算法相结合,以解决IIMCK问题。此外,提出了新颖的保存和更新操作员以保存最佳抗体并维持抗体的多样化库以改善克隆选择的性能。另外,引入伪交叉算子以提高遗传算法的效率。仿真结果验证了混合免疫算法的高效性和鲁棒性。

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