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Surface water detection and delineation using remote sensing images:a review of methods and algorithms

机译:使用遥感的地表水检测和描绘图像:方法和算法综述

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Multispectral and hyperspectral images captured by remote sensing satellites or airborne sensors contain abundant informa- tion that can be used to study and analyze objects of interest on the surface of earth and their properties. The potential of remotely sensed images for studying natural resources like water has been studied by researchers over the past many years. As water is an important natural resource that needs to be conserved, such studies have been of great interest to the scientific community. By employing appropriate digital image processing techniques on images taken from remote sensing satellites or airborne sensors, an effective system can be developed to study the quantitative and qualitative changes happening to sur- face water bodies over a period of time. Surface water detection and mapping is a crucial and necessary step in such studies and different automated and semi-automated methods have been developed over the years for mapping water in remotely sensed images. Remote sensing sensors capture images at multiple bands corresponding to different wavelength ranges in the EM spectrum. Digital image processing based techniques for water mapping falls predominantly into four categories; (ⅰ) single band based methods, (ⅱ) spectral index based methods, (ⅲ) machine learning based methods and (ⅳ) spectral mixture analysis based methods. This paper presents a review of techniques, methods, algorithms and the sensors/satellites that have been developed and experimented with to perform surface water body detection and delineation from remote sensing images.
机译:遥感卫星或空气传感器捕获的多光谱和高光谱图像包含丰富的信息,可用于研究和分析地球表面的感兴趣的物体及其性质。研究人员在过去多年上已经研究了用于研究水的自然资源的远程感测图像的潜力。随着水是一种需要保守的重要自然资源,这些研究对科学界非常感兴趣。通过采用从遥感卫星或机载传感器拍摄的图像上采用适当的数字图像处理技术,可以开发有效的系统来研究在一段时间内研究发生在水面上的定量和定性变化。表面水检测和测绘是在这种研究中的一个至关重要的步骤,并且多年来在远程感测图像中映射水的多年来已经开发了不同的自动化和半自动方法。遥感传感器在与EM谱中对应于不同波长范围的多个频带处捕获图像。基于数字图像处理的水映射技术主要落入四类; (Ⅰ)基于单带基的方法,(Ⅱ)基于光谱指数的方法,(Ⅲ)基于机器学习的方法和(ⅳ)基于光谱混合分析的方法。本文介绍了已经开发和实验的技术,方法,算法和传感器/卫星的审查,以便从遥感图像执行表面水体检测和描绘。

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