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Research of Electric Power Industry's Production Logistics Model Based on Hybrid Chaos Immune Evolutionary Optimization Algorithm

机译:基于混合混沌免疫进化优化算法的电力行业生产物流模型研究

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Inventory control is an important aspect of production logistics management in power system. According to the characteristic of raw material purchase and stock, the paper puts forward an optimal inventory model to minimize the cost. A novel hybrid chaos immune evolutionary optimization algorithm (HCIEOA) of solving the minimal purchasing cost problem is presented. This algorithm integrates space-searching advantages of the chaos optimization algorithm (COA) and immune evolutionary algorithm (IEA). It uses the ergodic property of the chaos system to overcome redundancies, and uses the chaos initial sensitivity to enlarge the searching space. Thus, the diversity of population is retained, the local optimization is avoided, and the rapidity of global optimization is improved. Then, this model is applied to the process of searching the optimization in the purchase and storage model. At last, the example shows that the HCIEOA is effective and reliable.
机译:库存控制是电力系统生产物流管理的重要方面。根据原料采购和库存的特点,提出了一种优化的库存模型以最小化成本。提出了一种解决最小采购成本问题的新型混合混沌免疫进化优化算法。该算法融合了混沌优化算法(COA)和免疫进化算法(IEA)的空间搜索优势。它利用混沌系统的遍历特性来克服冗余,并利用混沌初始灵敏度来扩大搜索空间。这样,保留了种群的多样性,避免了局部优化,并提高了全局优化的速度。然后,将此模型应用于在购买和存储模型中搜索优化的过程。最后,算例表明HCIEOA是有效且可靠的。

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