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Applying a logistic-Gaussian complex signal model to restore surface hyperspectral reflectance of an old-growth tree species in cool temperate forest

机译:应用对数-高斯复合信号模型恢复凉爽温带森林中老树种的表面高光谱反射率

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This paper applied a Logistic-Gaussian complex signal model (LGM) to restore spectroradiometer-obtained canopy SWIR reflectance signals of red cypress, an old-growth conifer species. This species distributes within a temperate forest in Taiwan over a wide range of altitude from 1000 to 2800 m. A large amount of reflectance data of trees in a variety of light environments was used for this study. Although the reflectance curve of tree crowns is decreased as the directly incident light is blocked by shadow of uphill tree crowns, the particular pattern of tree reflectance curve in such a noisy region remained similar. Results showed that the pronounced noise in the region from 1350 to 1410 nm can be removed using the LGM complex signal model. In other words, the reflectance signals of trees in such spectral areas can be restored successfully. Briefly, the research revealed that the model shows acceptable ability to fix the noise problem in the water-sorption spectral wavelengths under a variety of incident radiance. This is valuable for the use of remotely sensed data for continuous monitoring of water stress in forest canopy.
机译:本文应用Logistic-Gaussian复合信号模型(LGM)来恢复由光谱仪获得的红柏(一种老龄针叶树种)的冠层SWIR反射信号。该物种分布在台湾的温带森林中,高度范围从1000到2800 m。这项研究使用了在各种光照环境下树木的大量反射率数据。尽管由于直接入射光被上坡树冠的阴影所阻挡,树冠的反射率曲线降低了,但是在这种嘈杂区域中树形反射率曲线的特定图案仍然相似。结果表明,使用LGM复信号模型可以消除1350至1410 nm范围内的明显噪声。换句话说,可以成功地恢复树木在这种光谱区域的反射信号。简而言之,研究表明该模型显示出在各种入射辐射下解决吸水光谱波长噪声问题的可接受能力。这对于使用遥感数据连续监测林冠层中的水分胁迫非常有价值。

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