应用近红外光谱预测水稻叶片氮含量

被引:28
作者
张玉森
姚霞
田永超
曹卫星
朱艳
机构
[1] 南京农业大学/江苏省信息农业高技术研究重点实验室
关键词
新鲜叶片; 干叶粉末; 近红外光谱; 氮含量; 水稻;
D O I
暂无
中图分类号
S511 [稻];
学科分类号
0901 ;
摘要
以水稻(Oryza sativa)新鲜叶片和干叶粉末两种状态的样品为研究对象,基于近红外光谱(NIRS)技术,应用偏最小二乘法(PLS)、主成分回归(PCR)和逐步多元回归(SMLR),建立并评价了水稻叶片氮含量(NC)近红外光谱模型。结果表明,基于PLS建立的模型表现最好,鲜叶氮含量近红外光谱校正模型校正决定系数RC2为0.940,校正标准误差RMSEC为0.226;干叶粉末氮含量的近红外光谱校正模型RC2为0.977,RMSEC为0.136。模型的内部交叉验证分析表明,预测鲜叶氮含量内部验证决定系数RCV2为0.866,内部验证标准误差RMSECV为0.243;预测干叶粉末氮含量RCV2为0.900,RMSECV为0.202。模型的外部验证分析表明,预测水稻鲜叶氮含量的外部验证决定系数RV2大于0.800,外部验证标准误差RMSEP小于0.500,预测干叶粉末氮含量的RV2为0.944,RMSEP为0.142。说明,近红外光谱分析技术与化学分析方法一致性较好,且基于干叶粉末建立的近红外光谱预测模型的准确性和精确度较新鲜叶片高。
引用
收藏
页码:704 / 712
页数:9
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