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Detection and Characterization of Urban Objects from VHR Optical Image Data

机译:VHR光学图像数据的城市对象检测和表征

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The focus of this research is to develop an image analysis tool for building recognition in very high resolution (VHR) satellite image data. This method consists of two stages of analysis of a VHR satellite scene extract covering an urban area. Firstly, an initial image segmentation is carried out, based on a 4 neighbor connectivity similarity threshold and a segment range constraint. Statistical analysis of local difference in the scene is used to initialize the values of these two parameters. This results in accurate and consistent object detection. This will be followed in subsequent work by a second stage, consisting of the extraction and analysis of object features useful for object recognition. The object analysis will be based on morphological, topological and reflectance features of image segments and will attempt to determine to what extent buildings can be distinguished from other objects in an image, based on the statistical distributions of these features. The results presented in this paper use mostly panchromatic data, but the method is applicable to multispectral image data, which clearly allows better characterization of the spectral signatures of image objects.
机译:本研究的重点是开发用于在非常高分辨率(VHR)卫星图像数据中构建识别的图像分析工具。该方法包括覆盖城市地区的VHR卫星场景提取物的两个分析阶段。首先,基于4个邻居连接相似性阈值和段范围约束来执行初始图像分割。对场景中局部差异的统计分析用于初始化这两个参数的值。这导致精确且一致的对象检测。随后的工作遵循第二阶段,该第二阶段包括对对象识别有用的对象特征的提取和分析。对象分析将基于图像段的形态学,拓扑和反射率特征,并且基于这些特征的统计分布,可以尝试确定可以从图像中的其他对象区分的范围内建筑物。本文呈现的结果主要使用了Panchromatic数据,但该方法适用于多光谱图像数据,这显然允许更好地表征图像对象的光谱签名。

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