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An Approach for Automatic Change Inference in High Resolution Satellite Images

机译:高分辨率卫星图像中自动变化推断的一种方法

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摘要

Recently, more detailed change detection is becoming possible due to increases in the availability of satellite imageries for practical use and improvements in their spatial resolution. While the amount of data is increasing, manual interpretation is still being used as a conventional method of change detection. For these reasons, practical change detection techniques are required. This paper proposes a knowledge-based change detection approach, which can obtain change information that includes not only land cover changes, but also contextual changes, such as types of damage caused by natural hazards. This approach mainly consists of two processes: information extraction and change inference using Bayesian network. Information extraction employs object-based image analysis for extracting spatial information. Change inference uses extracted information and the Bayesian network constructed from knowledge of change detection process. To demonstrate this approach, change detection of mudslide damage caused by heavy rain in Yamaguchi Pret, Japan was conducted.
机译:近来,由于增加了实际使用的卫星图像的可用性以及其空间分辨率的提高,更详细的变化检测变得可能。在数据量不断增加的同时,人工解释仍被用作变化检测的常规方法。由于这些原因,需要实用的变更检测技术。本文提出了一种基于知识的变化检测方法,该方法可以获取变化信息,不仅包括土地覆被变化,还包括上下文变化,例如自然灾害造成的破坏类型。该方法主要由两个过程组成:信息提取和使用贝叶斯网络进行变化推断。信息提取采用基于对象的图像分析来提取空间信息。变更推论使用提取的信息和根据变更检测过程的知识构建的贝叶斯网络。为了证明这种方法,对日本山口县大雨造成的泥石流破坏进行了变化检测。

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