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Machine learning in remote sensing data processing

机译:遥感数据处理中的机器学习

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Remote sensing data processing deals with real-life applications with great societal values. For instance urban monitoring, fire detection or flood prediction from remotely sensed multispectral or radar images have a great impact on economical and environmental issues. To treat efficiently the acquired data and provide accurate products, remote sensing has evolved into a multidisciplinary field, where machine learning and signal processing algorithms play an important role nowadays. This paper serves as a survey of methods and applications, and reviews the latest methodological advances in machine learning for remote sensing data analysis.
机译:遥感数据处理处理具有重大社会价值的现实应用。例如,城市监测,火灾探测或来自遥感多光谱或雷达图像的洪水预报对经济和环境问题具有重大影响。为了有效处理采集的数据并提供准确的产品,遥感技术已经发展成为一个多学科领域,如今机器学习和信号处理算法在其中发挥着重要作用。本文是对方法和应用的概述,并回顾了机器学习用于遥感数据分析的最新方法学进展。

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