首页> 外文会议>IAPR Workshop on Pattern Recognition in Remote Sensing >Extracting Rural Residential Areas from High-Resolution Remote Sensing Images in the Coastal Area of Shandong, China Based on Fast Acquisition of Training Samples and Fully Convoluted Network
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Extracting Rural Residential Areas from High-Resolution Remote Sensing Images in the Coastal Area of Shandong, China Based on Fast Acquisition of Training Samples and Fully Convoluted Network

机译:基于快速获取训练样本和全卷积网络的高分辨率遥感影像在山东沿海地区提取农村居民区

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Automatic extraction of rural residential areas from high-resolution remote sensing images in large regions is a challenging task, because all kinds of background features, such as roads, green houses, and urban areas, must be excluded effectively by an extraction method. For the unsupervised methods of rural residential areas extraction, it is difficult to manually design features which are only sensitive to residential areas. At the same time, the supervised methods utilize training samples to obtain the discrimination between rural residential areas and the background features. However, manual labeling in large regions is tedious and time-consuming. The drawbacks of the existing methods for extracting rural residential areas limit their application in large regions. Therefore, we proposed a novel methodology for extracting rural residential areas in large regions based on fast acquisition of training samples and the fully convoluted network (FCN). A block-based method was proposed to extract rural residential areas rapidly and acquire training samples. Then, the large amount of training samples were used to train the FCN for rural residential area extraction. Finally, all ZY-3 satellite images in in the coastal area of Shandong, China were feed into the FCN, and the extraction result were obtained.
机译:从大型区域的高分辨率遥感图像中自动提取农村居民区是一项艰巨的任务,因为必须使用一种提取方法来有效排除各种背景特征,例如道路,温室和城市地区。对于无监督的农村居民区提取方法,很难手动设计仅对居民区敏感的特征。同时,监督方法利用训练样本来获得农村居民区与背景特征之间的区别。但是,在大区域中手动贴标签既繁琐又耗时。现有的提取农村居民区的方法的缺点限制了它们在大区域中的应用。因此,我们提出了一种基于快速获取训练样本和完全卷积网络(FCN)的大区域农村居民区提取方法。提出了一种基于块的方法来快速提取农村居民区并获取培训样本。然后,使用大量的训练样本来训练FCN,以提取农村居民区。最后,将中国山东沿海地区的所有ZY-3卫星图像输入到FCN中,并获得了提取结果。

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