首页> 外文期刊>Optik: Zeitschrift fur Licht- und Elektronenoptik: = Journal for Light-and Electronoptic >A novel multi-scale relative salience feature for remote sensing image analysis
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A novel multi-scale relative salience feature for remote sensing image analysis

机译:一种新颖的多尺度相对显着特征的遥感影像分析

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摘要

This paper presents a novel feature for remote sensing image analysis, called multi-scale relative salience (MsRS) feature. It is constructed by modeling the process of feature value changing with scales. Firstly, the multi-scale observation values at each site are obtained by convolved with recursive Gaussian filters for efficiency. Secondly, the multi-scale observation values are compared with the initial value to generate the relative salience. Lastly, the relative salience between multi-scales are embed into a single feature called the MsRS. The scale in MsRS has explicit spatial meaning which is convenient to choose appropriate scale for specified object. In the MsRS map, the inner of each object become more consistent, while the contrast between object and background is enlarged. The MsRS can be used as preprocessing step of many applications, such as segmentation. Two state-of-art segmentations (the mean shift and the statistical region merging) are taken into experiments and the results proved that it brings improvement obviously.
机译:本文提出了一种新颖的遥感图像分析功能,称为多尺度相对显着性(MsRS)功能。它是通过对特征值随比例变化的过程进行建模而构造的。首先,通过与递归高斯滤波器卷积获得每个站点的多尺度观测值以提高效率。其次,将多尺度观测值与初始值进行比较以产生相对显着性。最后,多尺度之间的相对显着性被嵌入到称为MsRS的单个功能中。 MsRS中的比例尺具有明确的空间含义,便于为指定对象选择合适的比例尺。在MsRS贴图中,每个对象的内部变得更加一致,而对象和背景之间的对比度则扩大了。 MsRS可用作许多应用程序的预处理步骤,例如分段。实验采用了两种最新的分割方法(均值漂移和统计区域合并),结果证明该方法带来了明显的改进。

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