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Detecting Man-Made Structures and Changes in Satellite Imagery With a Content-Based Information Retrieval System Built on Self-Organizing Maps

机译:利用基于自组织地图的基于内容的信息检索系统检测人造图像和人造卫星图像的变化

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The increasing amount and resolution of satellite sensors demand new techniques for browsing remote sensing image archives. Content-based querying allows an efficient retrieval of images based on the information they contain, rather than their acquisition date or geographical extent. Self-organizing maps (SOMs) have been successfully applied in the PicSOM system to content-based image retrieval in databases of conventional images. In this paper, we investigate and extend the potential of PicSOM for the analysis of remote sensing data. We propose methods for detecting man-made structures, as well as supervised and unsupervised change detection, based on the same framework. In this paper, a database was artificially created by splitting each satellite image to be analyzed into small images. After training the PicSOM on this imagelet database, both interactive and off-line queries were made to detect man-made structures, as well as changes between two very high resolution images from different years. Experimental results were both evaluated quantitatively and discussed qualitatively, and suggest that this new approach is suitable for analyzing very high resolution optical satellite imagery. Possible applications of this work include interactive detection of man-made structures or supervised monitoring of sensitive sites
机译:随着卫星传感器数量的增加和分辨率的提高,需要用于浏览遥感图像档案的新技术。基于内容的查询允许基于图像所包含的信息而不是图像的获取日期或地理范围来有效地检索图像。自组织映射(SOM)已在PicSOM系统中成功应用于常规图像数据库中基于内容的图像检索。在本文中,我们研究并扩展了PicSOM在遥感数据分析中的潜力。我们提出了基于同一框架的人造结构检测方法,以及有监督和无监督的变更检测方法。在本文中,通过将每个要分析的卫星图像分割成小图像,人为地创建了一个数据库。在该imagelet数据库上训练了PicSOM之后,进行了交互式和脱机查询,以检测人造结构以及不同年份的两个非常高分辨率的图像之间的变化。对实验结果进行了定量评估和定性讨论,表明这种新方法适用于分析超高分辨率的光学卫星图像。这项工作的可能应用包括对人造结构的交互式检测或对敏感站点的监督监控

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