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Application of Improved MAGA to Water Pollution Control System Planning

机译:改进的MAGA在水污染控制系统规划中的应用

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Combining the ability of apperception and counteractive to environment of agent with search method of genetic algorithm, an improved multi-agent genetic algorithm (MAGA) is advanced. It ensures diversity of population and improves local search ability of genetic algorithm by simulating competition, cooperate and self-learning of different agents using neighboring cross operator, aberrance operator and self-learning operator of agent. The algorithm is applied to the optimal planning for the waste treatment system of Urumqi, Xinjiang. Results show an improved performance in finding the global minimum when water quality requirements have been fulfilled. The result demonstrates nicer performance and factual value of improved MAGA.
机译:将遗传算法的感知能力和对代理环境的抵抗能力与遗传算法的搜索方法相结合,提出了一种改进的多代理遗传算法。它通过使用代理的相邻交叉算子,异常算子和自学习算子来模拟不同代理的竞争,协作和自学习,从而确保了种群的多样性并提高了遗传算法的局部搜索能力。该算法被应用于新疆乌鲁木齐市垃圾处理系统的优化规划。结果表明,当满足水质要求时,在寻找全球最低值方面的性能有所提高。结果表明改进的MAGA具有更好的性能和实际价值。

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