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HOUSEDIFF: A MAP-BASED BUILDING CHANGE DETECTION FROM HIGH RESOLUTION SATELLITE IMAGERY USING GEOMETRIC OPTIMIZATION METHOD

机译:HOUSEDIFF:使用几何优化方法的高分辨率卫星图像的基于地图的建筑物改变检测

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This paper presents a novel structural image analysis method based on geometric optimization techniques towards automatic building change detection. The aim of this method is to efficiently detect the changes of various buildings such as small houses and houses with complex roof in an urban area from high resolution satellite imagery by comparing with spatial database (maps). The previous research has indicated of the effectiveness of a map-based building change detection approach, and further investigation suggests the following three problems; (1) the large diversity of building types, roof shape, roof materials, illumination condition and shadow, (2) the difficulty of imagery and maps matching which normally leads to considerable position error, (3) the capacity of extracting various types of newly-built buildings. To solve these problems, we propose a new geometric optimization method which consists of the following two steps; (1) the building recognition based on a combinatorial optimization method for optimal building boundary extraction, (2) the newly-built building extraction based on an optimal building hypothesis search method. The experimental results showed that the detection rate was approximately 89% for existing and changed buildings, and approximately 83% for newly-built buildings. These results demonstrate the effectiveness of the proposed geometric optimization methods to integrate bottom-up and top-down analysis. By combining the locally detected image features with consideration of regional contexts from map, our method can achieve highly accurate building change detection in urban area. The method has been applied to a building change detection service named "HouseDiff" and succeeded in assisting users.
机译:本文介绍了一种基于几何优化技术朝向自动建筑变化检测的新型结构图像分析方法。这种方法的目的是通过与空间数据库(地图)进行比较,有效地检测各种建筑物等各种建筑物的变化,例如来自高分辨率卫星图像的城市地区的复杂屋顶。以前的研究表明,基于地图的建筑改变检测方法的有效性,进一步调查表明以下三个问题; (1)大型建筑类型,屋顶形状,屋顶材料,照明条件和阴影,(2)图像难度和地图匹配,通常导致相当大的位置误差,(3)提取各种类型的新的能力 - 建筑物。为了解决这些问题,我们提出了一种新的几何优化方法,包括以下两个步骤; (1)基于组合优化方法的建筑识别,用于最优建筑边界提取,(2)基于最优建筑假设搜索方法的新建建筑提取。实验结果表明,现有和改变建筑物的检出率约为89%,新建建筑物约为83%。这些结果证明了所提出的几何优化方法的有效性,以集成自下而上和自上而下的分析。通过将局部检测的图像特征与地图的区域相结合,我们的方法可以在城市地区实现高度准确的建筑变革检测。该方法已应用于名为“Housediff”的建筑变更检测服务,并成功协助用户。

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