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Application of the chlorophyll fluorescence ratio in evaluation of paddy rice nitrogen status

机译:叶绿素荧光比在水稻氮地位评价中的应用

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摘要

In this research, laser-induced fluorescence (LIF) technique combined with back-propagation neural network (BPNN) was employed to analyse different nitrogen (N) fertilization levels in paddy rice. Leaf fluorescence characteristics (FLCs) were measured by using the LIF system built in our laboratory and exhibited different FLCs with different nitrogen fertilization levels. The correlation between fluorescence intensity ratios (F685/F460, F735/F460 and F735/F685) and the dose of N fertilization was established and analysed. Then, the BPNN algorithm was utilized to validate that the different N fertilization levels can be classified based on the three FLCs. The overall identification accuracies of 2014 and 2015 were 90% and 92.5%, respectively. Experimental results demonstrated that the three FLCs with the help of multivariate analysis can be served as a helpful tool in the evaluation of paddy rice N fertilization levels. Besides, this study can also provide guidance for the selection of LIF Lidar channels in the following research.
机译:在该研究中,采用激光诱导的荧光(LiF)技术与背部繁殖神经网络(BPNN)进行分析水稻中的不同氮气(N)施肥水平。通过使用实验室内置的LIF系统测量叶荧光特性(FLC),并显示出不同的氮肥水平的不同FLC。建立和分析荧光强度比(F685 / F460,F735 / F460和F735 / F685)与N施肥剂量之间的相关性。然后,利用BPNN算法验证不同的抗施肥水平可以根据三个FLC分类。 2014年和2015年的整体鉴定准确性分别为90%和92.5%。实验结果表明,在多变量分析的帮助下,三种FLC可以作为评估水稻施肥水平的有用工具。此外,本研究还可以为以下研究中选择LiF LIDAR频道提供指导。

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