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THE PARAMETER OPTIMIZATION IN THE INVERSE DISTANCE METHOD BY GENETIC ALGORITHM FOR ESTIMATING PRECIPITATION

机译:遗传算法的逆距离法参数优化

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摘要

The inverse distance method, one of the commonly used methods for analyzing spatial variation of rainfall, is flexible if the order of distances in the method is adjustable. By applying the genetic algorithm (GA), the optimal order of distances can be found to minimize the difference between estimated and measured precipitation data. A case study of the Feitsui reservoir watershed in Taiwan is described in the present paper. The results show that the variability of the order of distances is small when the topography of rainfall stations is uniform. Moreover, when rainfall characteristic is uniform, the horizontal distance between rainfall stations and interpolated locations is the major factor influencing the order of distances. The results also verify that the variable-order inverse distance method is more suitable than the arithmetic average method and the Thiessen Polygons method in describing the spatial variation of rainfall. The efficiency and reliability of hydrologic modeling and hence of general water resource management can be significantly improved by more accurate rainfall data interpolated by the variable-order inverse distance method.
机译:如果距离的顺序可调,则逆距离法是分析降雨空间变化的常用方法之一。通过应用遗传算法(GA),可以找到最佳距离距离,以最大程度地减少估计降水数据和实测降水数据之间的差异。本文以台湾翡翠水库流域为例进行了研究。结果表明,雨量站地形均匀时,距离阶次的变化较小。此外,当降雨特征一致时,降雨站与内插位置之间的水平距离是影响距离顺序的主要因素。结果还证明,在描述降雨的空间变化方面,变阶逆距离法比算术平均法和蒂森多边形法更合适。通过用变阶逆距离法插值更准确的降雨数据,可以显着提高水文建模的效率和可靠性,进而提高一般水资源管理的效率和可靠性。

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