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用高光谱成像技术检测柑橘红蜘蛛为害叶片的色素含量

李震 洪添胜 倪慧娜 李楠 王建 郑建宝 林瀚

农业工程学报Issue(6):124-130,7.
农业工程学报Issue(6):124-130,7.DOI:10.3969/j.issn.1002-6819.2014.06.015

用高光谱成像技术检测柑橘红蜘蛛为害叶片的色素含量

Pigment content measurement for citrus red mite infected leaf using hyper-spectral imaging technology

李震 1洪添胜 2倪慧娜 1李楠 2王建 1郑建宝 2林瀚3

作者信息

  • 1. 南方农业机械与装备关键技术教育部重点实验室,广州 510642
  • 2. 华南农业大学工程学院,广州 510642
  • 3. 华南农业大学公共基础课实验教学中心,广州 510642
  • 折叠

摘要

Abstract

In order to solve the high workload and low efficiency problems while measuring the pigment content variation of citrus red mite infested leaves using the traditional physical and chemical methods, a novel pigment content measurement method for citrus red mite infested leaf using the hyper-spectral imaging technology was studied in this paper. In the research, 400 healthy leaves and 400 sick leaves were included as the test samples in which 350 healthy leaves and 350 sick leaves were utilized for model establishment and the other 50 leaves of each type were used for a model test. Each leaf’s original spectrum and its first order deviation in its particular healthy and sick area were acquired to investigate the characteristic spectrum bands which could mostly reflect the variation of leaf pigment content. The correlation between characteristic spectrum band ratios and pigment content was analyzed. An univariate linear regression method was applied to analyze the pigment content prediction effect using the common vegetation indexes. A leaf pigment content prediction model was established, using the stepwise regression method, and the model’s prediction ability was tested using the F test. Experimental results indicated that it is not satisfactory using the common vegetation indexes to predict leaf pigment content since they are not specially selected for citrus trees. The selected three characteristic spectrum band ratios of 667/522, 667/647, and 522/647 nm, each of which has a high correlation with a leaf’s three types of pigment content, were applied in the stepwise regression method to establish pigment content prediction models. Two out of three of the characteristic spectrum band ratios of 667/522 and 667/647 nm, which gave the best performance, were used as independent values for model establishment. The F test results indicated that the established models could preferably predict both healthy and sick leaves chlorophyll a, chlorophyll b, and carotenoid content. The selected characteristic bands, as well as the established prediction models, could be used as the foundation to further study the citrus red mite infestation fast detection methods and techniques.

关键词

光谱检测/预测/模型/叶绿素/高光谱成像/特征波段/柑橘/红蜘蛛

Key words

spectrometry/forecasting/models/chlorophyll/hyper-spectral imaging/characteristic band/citrus/red mite

分类

农业科技

引用本文复制引用

李震,洪添胜,倪慧娜,李楠,王建,郑建宝,林瀚..用高光谱成像技术检测柑橘红蜘蛛为害叶片的色素含量[J].农业工程学报,2014,(6):124-130,7.

基金项目

国家自然科学基金(31101077);广东省科技计划(2011B020308009);现代农业产业技术体系建设专项资金 ()

农业工程学报

OA北大核心CSCDCSTPCD

1002-6819

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