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Improved Quantum Artificial Fish Algorithm Application to Distributed Network Considering Distributed Generation

机译:考虑分布式发电的改进型量子人工鱼算法在分布式网络中的应用

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摘要

An improved quantum artificial fish swarm algorithm (IQAFSA) for solving distributed network programming considering distributed generation is proposed in this work. The IQAFSA based on quantum computing which has exponential acceleration for heuristic algorithm uses quantum bits to code artificial fish and quantum revolving gate, preying behavior, and following behavior and variation of quantum artificial fish to update the artificial fish for searching for optimal value. Then, we apply the proposed new algorithm, the quantum artificial fish swarm algorithm (QAFSA), the basic artificial fish swarm algorithm (BAFSA), and the global edition artificial fish swarm algorithm (GAFSA) to the simulation experiments for some typical test functions, respectively. The simulation results demonstrate that the proposed algorithm can escape from the local extremum effectively and has higher convergence speed and better accuracy. Finally, applying IQAFSA to distributed network problems and the simulation results for 33-bus radial distribution network system show that IQAFSA can get the minimum power loss after comparing with BAFSA, GAFSA, and QAFSA.
机译:这项工作提出了一种改进的量子人工鱼群算法(IQAFSA),用于解决考虑分布式发电的分布式网络规划。基于量子计算的IQAFSA具有启发式算法的指数加速能力,它使用量子位来对人工鱼和量子旋转门进行编码,捕食行为以及量子人工鱼的跟随行为和变化来更新人工鱼以寻找最佳值。然后,我们将提出的新算法,量子人工鱼群算法(QAFSA),基本人工鱼群算法(BAFSA)和全球版人工鱼群算法(GAFSA)应用于一些典型测试功能的仿真实验,分别。仿真结果表明,该算法可以有效地逃避局部极值,收敛速度更快,精度更高。最后,将IQAFSA应用于分布式网络问题,并通过33总线径向配电网系统的仿真结果表明,与BAFSA,GAFSA和QAFSA相比,IQAFSA可以获得最小的功耗。

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