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A Multi-swarm PSO and its Application in Operational Optimization of Ethylene Cracking Furnace

机译:一种多群PSO及其在乙烯裂解炉操作优化中的应用

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The exiting PSO algorithms are analyzed deeply, a multi-swarm PSO (MSPSO) is studied. The whole swarm is divided into three sub-swarms randomly, the first particle group obeys the standard PSO principle to search the optimal result, the second searches randomly inner neighborhood of the optimal result, the third does not care about the optimal result but flies freely according to themselves velocities and positions. So the algorithm enhances its global searching space, enriches particles' diversity in order to let particles jump out local optimization points. Testing and comparing results with standard PSO and linearly decreasing weight PSO by several widely used benchmark functions show optimization performance of the algorithm is better. Furthermore, the proposed algorithm is employed to resolve the operational optimization problems of ethylene cracking furnace. The operational optimization results for built cracking model are effective and satisfying.
机译:将退出的PSO算法深,研究了多群PSO(MSPSO)。整个群体随机分为三个子群,第一个粒子组遵守标准的PSO原则搜索最佳结果,第二个搜索最佳结果的随机内部邻域,第三个不关心最佳结果但是自由的效果根据自己的速度和位置。因此,该算法增强了其全球搜索空间,丰富粒子的多样性,以使粒子跳出局部优化点。用标准PSO的测试和比较结果,通过几种广泛使用的基准功能来进行标准PSO和线性减少重量PSO,显示算法的优化性能更好。此外,采用该算法来解决乙烯裂化炉的操作优化问题。构建开裂模型的操作优化结果是有效且令人满意的。

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