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基于移动近红外光谱和变量选择的偏最小二乘回归土壤碳含量估算研究

[Study on soil carbon estimation by on-the-go near-infrared spectra and partial least squares regression with variable selection].

作者信息

Shen Zhang-Quan, Lu Bi-Hui, Shan Ying-Jie, Xu Hong-Wei

机构信息

Institute of Agricultural Remote Sensing and Information Technology Application, Zhejiang University, Hangzhou 310058, China.

出版信息

Guang Pu Xue Yu Guang Pu Fen Xi. 2013 Jul;33(7):1775-80.

Abstract

The present paper tried to evaluate the effectiveness and improvement of variable selection before modeling with partial least squares regression (PLSR). Based on the independent test dataset, and compared with the PLSR model derived from all spectral variables, the prediction accuracy by modeling after variable selection has been improved. Thus, the results showed that variable selection was beneficial and necessary for soil carbon modeling by on-the-go NIRS. UVE (uninformative variable elimination) and UVE-SPA (successive projection algorithm) could perform effective variable selection and created promising models, and SPA and GA-PLS (genetic algorithm PLS) failed to make appropriate models. For synergy interval PLS (siPLS), change in interval number and number of interval for modeling could affect the prediction accuracy obviously. Promising models could be made by selecting appropriate interval number and number of interval for modeling, and siPLS could achieve similar prediction accuracy to UVE or UVE-SPA, and the shortcoming was that siPLS required a lot of computing time to find optimal combination of intervals for modeling.

摘要

本文试图评估在进行偏最小二乘回归(PLSR)建模之前变量选择的有效性和改进情况。基于独立测试数据集,并与从所有光谱变量导出的PLSR模型进行比较,变量选择后建模的预测准确性得到了提高。因此,结果表明变量选择对于基于车载近红外光谱仪的土壤碳建模是有益且必要的。无信息变量消除法(UVE)和无信息变量消除-连续投影算法(UVE-SPA)能够进行有效的变量选择并创建出有前景的模型,而连续投影算法(SPA)和遗传算法偏最小二乘法(GA-PLS)未能建立合适的模型。对于协同区间偏最小二乘法(siPLS),区间数量的变化以及建模所用区间的数量会明显影响预测准确性。通过选择合适的区间数量和建模所用区间数量可以创建出有前景的模型,并且siPLS能够实现与UVE或UVE-SPA相似的预测准确性,其缺点是siPLS需要大量计算时间来寻找建模区间的最优组合。

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