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RESEARCH ON THE MINIMUM ZONE CYLINDRICITY EVALUATION BASED ON GENETIC ALGORITHMS

机译:基于遗传算法的最小区域圆柱度评估研究

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摘要

A genetic algorithm (GA)-based method is proposed to solve the nonlinear optimization problem of minimum zone cylindricity evaluation. First, the background of the problem is introduced. Then the mathematical model and the fitness function are derived from the mathematical definition of dimensioning and tolerancing principles. Thirdly with the least squares solution as the initial values, the whole implementation process of the algorithm is realized in which some key techniques, for example, variables representing, population initializing and such basic operations as selection, crossover and mutation, are discussed in detail. Finally, examples are quoted to verify the proposed algorithm. The computation results indicate that the GA-based optimization method performs well on cylindricity evaluation. The outstanding advantages conclude high accuracy, high efficiency and capabilities of solving complicated nonlinear and large space problems.
机译:提出了一种基于遗传算法的最小区域圆柱度评价非线性优化方法。首先,介绍问题的背景。然后从尺寸和公差原理的数学定义中得出数学模型和适应度函数。第三,以最小二乘解作为初始值,实现了算法的整个实现过程,详细讨论了变量表示,种群初始化以及选择,交叉和变异等基本操作等关键技术。最后,引用实例来验证所提出的算法。计算结果表明,基于遗传算法的优化方法在圆柱度评估中表现良好。突出的优点是具有很高的精度,效率和解决复杂的非线性和大空间问题的能力。

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