首页> 外文期刊>Remote Sensing of Environment: An Interdisciplinary Journal >AN ASSESSMENT OF SEVERAL LINEAR CHANGE DETECTION TECHNIQUES FOR MAPPING FOREST MORTALITY USING MULTITEMPORAL LANDSAT TM DATA
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AN ASSESSMENT OF SEVERAL LINEAR CHANGE DETECTION TECHNIQUES FOR MAPPING FOREST MORTALITY USING MULTITEMPORAL LANDSAT TM DATA

机译:利用多时态LANDSAT TM数据评估森林死亡率的几种线性变化检测技术的评估

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Forest canopy changes can be detected by a variety of methods of analysis of multitemporal satellite images. Issues surrounding the use of remote sensing in operational forest monitoring include which change detection method is most appropriate, and to what extent scenes should be preprocessed for the minimization of irrelevant interdate differences. Results indicate better performance for principal component analysis and a multitemporal Kauth-Thomas transformation as compared to the Cramm-Schmidt orthogonalization process. There is little evidence to suggest that preprocessing beyond simple DN matching methods improves results. Relationships between change components and mortality are found to be specific to the particular image data being used and the particular forest type under study. Canopy change can be detected reliably, but precise estimates of mortality levels require calibration using field data in all new situations. Change in Kauth-Thomas wetness is the most reliable single indicator of forest change. [References: 27]
机译:可以通过多种分析多时相卫星图像的方法来检测森林冠层的变化。在操作性森林监测中使用遥感的问题包括哪种变化检测方法最合适,以及应在多大程度上对场景进行预处理以最大程度地减少无关的中间日期差异。结果表明,与Cramm-Schmidt正交化过程相比,主成分分析和多时间Kauth-Thomas变换的性能更好。几乎没有证据表明,通过简单的DN匹配方法进行预处理可以改善结果。发现变化成分与死亡率之间的关系特定于所使用的特定图像数据和所研究的特定森林类型。可以可靠地检测到冠层变化,但是要精确估计死亡率,就需要在所有新情况下使用现场数据进行校准。 Kauth-Thomas湿度的变化是森林变化最可靠的单一指标。 [参考:27]

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