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Application of Taguchi Optimization and ANOVA Statistics in Optimal Parameter Setting of Multi-Resolution Segmentation

机译:田口优化和方差分析统计在多分辨率分割最优参数设置中的应用

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Over the past two decades, object-based image analysis (OBIA) has become an important tool for information extraction from remote sensing images. Segmentation parameter estimation and optimization is one of the most important research areas in OBIA studies. However, parameter optimization is an extremely difficult and laborious process for high-quality segmentation. In this paper, Taguchi optimization technique was employed to determine the optimal values of main parameters of multi-resolution segmentation (MRS) (i.e. scale, shape, compactness) using the L25(35) experimental design. Based on the signal to noise ratio criteria, the best optimum MRS parameters have been determined as 10-0.1-0.9 for scale, shape and compactness, respectively. In addition, analysis of variance (ANOVA) was conducted in order to specify the effects of the MRS parameters considering root mean square (RMS) of over-and under-segmentation. The results showed that the scale was the most dominant factor with the contribution of 57.97% compared with shape and compactness. It was also observed that the Taguchi technique was effective in the optimization of MRS parameters within the reliability interval of 95%.
机译:在过去的二十年中,基于对象的图像分析(OBIA)已成为从遥感图像中提取信息的重要工具。分割参数估计和优化是OBIA研究中最重要的研究领域之一。但是,参数优化对于高质量分段而言是极其困难且费力的过程。本文使用Taguchi优化技术,使用L25(3)确定多分辨率分割(MRS)主要参数(即比例,形状,紧密度)的最佳值 5 ) 实验设计。基于信噪比标准,对于比例,形状和紧凑性,最佳最佳MRS参数已分别确定为10-0.1-0.9。此外,进行了方差分析(ANOVA),以考虑到过度分割和不足分割的均方根(RMS)来指定MRS参数的效果。结果表明,规模是最主要的因素,贡献率为57.97。 与形状和紧凑性相比。还观察到,Taguchi技术可在95%的可靠性区间内有效地优化MRS参数。

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