作者
Offer Rozenstein, Tarin Paz-Kagan, Christoph Salbach, Arnon Karnieli
发表日期
2015
期刊
IEEE Journal of Selected Topics in Applied Earth Observations and Remote Sensing
卷号
8
期号
6
页码范围
2393 - 2404
出版商
IEEE
简介
Advanced classifiers, e.g., partial least squares discriminant analysis (PLS-DA) and random forests (RF), have been recently used to model reflectance spectral data in general, and of soil properties in particular, since their spectra are multivariate and highly collinear. Preprocessing transformations (PPTs) can improve the classification accuracy by increasing the variability between classes while decreasing the variability within classes. Such PPTs are common practice prior to a PLS-DA, but are rarely used for RF. The objectives of this paper are twofold: to compare the performances of PLS-DA and RF for modeling the spectral reflectance of soil in changed land-uses with different treatments and to compare the effects of nine different PPTs on the prediction accuracy of each of these classification methods. Differences in six physical, biological, and chemical soil properties of changed land-uses from the northern …
引用总数
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