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Assessments of preprocessing methods for Landsat time series images of mountainous forests in the tropics

机译:热带山区山地山地山地山地景观图像预处理方法评估

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摘要

Monitoring forest changes based on numerous satellite images has been recently conducted in the tropics. Preparation of a time series of satellite images, sometimes referred to as preprocessing, is essential for conducting robust detection of forest change. To create consistent and stable conditions in satellite images, the best methods have to be used in each step to correct various sources of noise. This study assessed three atmospheric correction methods, six topographic correction methods, and eight gap-filling methods to produce the best possible time series of Landsat images of tropical seasonal forests. The results showed that the best methods for atmospheric and topographic correction were relative corrections using a Landsat Ecosystem Disturbance Adaptive Processing System (LEDAPS), which is based on a 6S radiative transfer model, and the C-correction, respectively. Weighted linear regression and multiple linear regression models were selected as the best models for the filling of data gaps associated with Scan Line Corrector-off and clouds, respectively. This study provided the best possible image preprocessing for trajectory-based change detection using annual Landsat images. Although the best possible preprocessing methods might vary depending on the change detection methods used in different study areas, the results highlight the preferable preprocessing methods, even for different types of time series analysis.
机译:最近在热带地区进行了基于许多卫星图像的监测森林变化。制备卫星图像的时间序列,有时被称为预处理,对于进行森林变化的鲁棒检测至关重要。为了在卫星图像中创建一致和稳定的条件,必须在每个步骤中使用最佳方法来纠正各种噪声源。本研究评估了三种大气校正方法,六种外形校正方法和八种差距填充方法,以产生热带季节性森林的最佳时间序列。结果表明,瓦斯特生态系统扰动自适应处理系统(LEDAPS)的最佳用于大气和地形校正的最佳方法是分别基于6S辐射传输模型和C校正。选择加权线性回归和多元线性回归模型作为填充与扫描线校正和云相关联的数据间隙的最佳模型。本研究提供了使用年度LANDSAT图像的基于轨迹的变化检测的最佳图像预处理。虽然最好的预处理方法可能因不同研究领域的变化检测方法而异,但结果突出了优选的预处理方法,即使对于不同类型的时间序列分析。

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