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An experimental study on content-based image classification for satellite image databases

机译:基于内容的卫星图像数据库图像分类实验研究

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Current art uses metadata associated with satellite images to facilitate their retrieval from image repositories. Typical metadata are geographic location, time, and data type. Because the metadata do not indicate which regions within an image are obscured by clouds, retrieval with such metadata may produce an image within which the region of interest (ROI) for the user is not visible. We report a system that can automatically determine whether an ROI is visible in the image, and can incorporate this into the metadata for individual images to enhance searching capability. The goal is to annotate each image with metadata regarding a number of ROIs. An experiment with the system annotated 236 advanced very high resolution radiometer (AVHRR) images of the North Atlantic from a five-month viewing period with descriptors that expressed the visibility of an ROI centered on Long Island, NY. For ground truth, we used the classifications of three human subjects to determine visibility of the same region of interest, and labeled the ROI with the majority decision of the three subjects. Partial cloud cover made the human determination subjective, and resulted in disagreements among the subjects. Using randomly selected training subsets of the images, we found the two images whose regions were most like those in images for which the Long Island region was visible.
机译:当前技术使用与卫星图像相关联的元数据来促进其从图像库中的检索。典型的元数据是地理位置,时间和数据类型。因为元数据未指示云遮盖图像中的哪些区域,所以使用此类元数据进行检索可能会生成图像,在该图像中看不到用户感兴趣的区域(ROI)。我们报告了一个系统,该系统可以自动确定ROI在图像中是否可见,并将其合并到单个图像的元数据中以增强搜索功能。目的是为每个图像添加有关多个ROI的元数据。使用该系统进行的实验注释了五个月观察期内来自北大西洋的236张超高分辨率超高分辨率辐射计(AVHRR)图像,并用描述符表示了以纽约州长岛为中心的ROI的可见性。对于地面真相,我们使用了三个人类受试者的分类来确定相同兴趣区域的可见性,并用三个受试者的多数决定来标记ROI。局部的云层覆盖使人的主观判断变得主观,从而导致受试者之间意见分歧。使用随机选择的图像训练子集,我们发现了两个图像,它们的区域最类似于可见长岛区域的图像。

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