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Fuzzy nonlinear programming for mixed-discrete design optimization through hybrid genetic algorithm

机译:混合遗传算法的模糊非线性规划在混合离散优化设计中的应用

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摘要

Many practical engineering optimization problems involve discrete or integer design variables, and often the design decisions are to be made in a fuzzy environment in which the statements might be vague or imprecise. A mixed-discrete fuzzy nonlinear programming approach that combines the fuzzy λ-formulation with a hybrid genetic algorithm is proposed in this paper. This method can find a globally compromise solution for a mixed-discrete fuzzy optimization problem, even when the objective function is nonconvex and nondifferentiable. In the construction of the objective membership function, an error from the early research work is corrected and the right conclusion has been made. The illustrative examples demonstrate that more reliable and satisfactory results can be obtained through the present method.
机译:许多实际的工程优化问题涉及离散或整数设计变量,并且通常在模糊的环境中做出设计决策,在这种环境中陈述可能含糊不清或不精确。提出了一种将模糊λ公式与混合遗传算法相结合的混合离散模糊非线性规划方法。即使目标函数是非凸且不可微的,该方法也可以找到混合离散模糊优化问题的全局折衷解决方案。在建立目标隶属函数时,纠正了早期研究工作中的一个错误,并得出了正确的结论。说明性的例子表明,通过本方法可以获得更可靠和令人满意的结果。

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