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Mapping tropical rainforest canopies using multi-temporal spaceborne imaging spectroscopy

机译:使用多时相星载成像光谱图绘制热带雨林林冠

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The use of imaging spectroscopy for florisic mapping of forests is complicated by the spectral similarity among coexisting species. Here we evaluated an alternative spectral unmixing strategy combining a time series of EO-1 Hyperion images and an automated feature selection strategy in MESMA. Instead of using the same spectral subset to unmix each image pixel, our modified approach allowed the spectral subsets to vary on a per pixel basis such that each pixel is evaluated using a spectral subset tuned towards maximal separability of its specific endmember class combination or species mixture. The potential of the new approach for floristic mapping of tree species in Hawaiian rainforests was quantitatively demonstrated using both simulated and actual hyperspectral image time-series. With a Cohen's Kappa coefficient of 0.65, our approach provided a more accurate tree species map compared to MESMA (Kappa = 0.54). hi addition, by the selection of spectral subsets our approach was about 90% faster than MESMA. The flexible or adaptive use of band sets in spectral unmixing as such provides an interesting avenue to address spectral similarities in complex vegetation canopies.
机译:共存物种之间的光谱相似性使利用成像光谱技术对森林进行花序映射变得复杂。在这里,我们评估了将EO-1 Hyperion图像的时间序列与MESMA中的自动特征选择策略相结合的替代光谱分解策略。与其使用相同的光谱子集来分解每个图像像素,我们的改进方法允许光谱子集在每个像素的基础上变化,从而使用针对特定端成员类别组合或物种混合物的最大可分离性调整的光谱子集来评估每个像素。 。使用模拟和实际的高光谱图像时间序列定量地证明了这种新方法在夏威夷雨林中进行树种植物区系制图的潜力。 Cohen的Kappa系数为0.65,与MESMA(Kappa = 0.54)相比,我们的方法提供了更准确的树种图。此外,通过选择光谱子集,我们的方法比MESMA快90%。这样在光谱解混中灵活或自适应地使用频带集为解决复杂植被冠层中的光谱相似性提供了有趣的途径。

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