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首页> 外文期刊>Geoscience and Remote Sensing Letters, IEEE >Semivariogram-Based Spatial Bandwidth Selection for Remote Sensing Image Segmentation With Mean-Shift Algorithm
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Semivariogram-Based Spatial Bandwidth Selection for Remote Sensing Image Segmentation With Mean-Shift Algorithm

机译:基于均值漂移算法的基于半变异函数的空间带宽选择

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摘要

Image segmentation is a key procedure that partitions an image into homogeneous parcels in object-based image analysis (OBIA). Scale selection in image segmentation is always difficult for high-performance OBIA. This letter is aimed at scale selection before segmentation in OBIA and proposes a spatial statistics-based spatial bandwidth selection method based on mean-shift segmentation. This study uses Ikonos and Quickbird panchromatic images as the experimental data and then computes their semivariances to select the optimal spatial bandwidth for mean-shift segmentation. To validate this method and interpret the relationship between the semivariances and segmentation scale, this letter implements an image segmentation evaluation based on the homogeneity within and the heterogeneity between the segmentation parcels. The evaluation results basically support the proposed scale selection method based on the semivariogram. Consequently, the semivariogram-based spatial bandwidth selection method is practically meaningful for pre-estimating the appropriate scale and thus contributes to improving the performance and efficiency of OBIA.
机译:图像分割是在基于对象的图像分析(OBIA)中将图像划分为同质宗地的关键过程。对于高性能OBIA,图像分割中的缩放比例选择始终很困难。这封信的目的是在OBIA中进行分段之前的尺度选择,并提出一种基于均值漂移分段的基于空间统计的空间带宽选择方法。这项研究使用Ikonos和Quickbird全色图像作为实验数据,然后计算它们的半方差,以选择最佳空间带宽进行均值漂移分割。为了验证该方法并解释半方差与分割尺度之间的关系,该字母基于分割宗地内部的均匀性和分割宗地之间的异质性来实现图像分割评估。评估结果基本支持所提出的基于半变异函数的量表选择方法。因此,基于半变异函数的空间带宽选择方法对于预先估计适当的比例具有实际意义,因此有助于提高OBIA的性能和效率。

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