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基于PDWT與高光譜的生菜葉片農(nóng)藥殘留檢測(cè)
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國(guó)家自然科學(xué)基金項(xiàng)目(31471413)、江蘇高校優(yōu)勢(shì)學(xué)科建設(shè)工程項(xiàng)目(蘇政辦發(fā)2011 6號(hào))、江蘇大學(xué)現(xiàn)代農(nóng)業(yè)裝備與技術(shù)重點(diǎn)實(shí)驗(yàn)室開放基金項(xiàng)目(NZ201306)、江蘇省六大人才高峰項(xiàng)目(ZBZZ—019)和江蘇省自然科學(xué)基金項(xiàng)目(20140550)


Detection of Pesticide Residues on Lettuce Leaves Based on Piece-wise Discrete Wavelet Transform and Hyperspectral Data
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    摘要:

    在離散小波變換特征提取算法基礎(chǔ)上,結(jié)合有機(jī)物近紅外譜區(qū)倍頻中心近似位置,提出一種分段離散小波變換特征提取的方法。以4類農(nóng)藥殘留水平(重度超標(biāo)、中度超標(biāo)、輕微超標(biāo)、低于國(guó)標(biāo))生菜為研究對(duì)象,通過(guò)透射電鏡對(duì)生菜葉片微觀結(jié)構(gòu)進(jìn)行檢測(cè),并利用近紅外高光譜成像儀采集生菜樣本的高光譜圖像。在生菜高光譜圖像中選取感興趣區(qū)域并提取該區(qū)域的平均光譜,依據(jù)常見基團(tuán)主要中心近似位置對(duì)平均光譜進(jìn)行有效分段,以sym5為小波基函數(shù),依次對(duì)每段光譜數(shù)據(jù)進(jìn)行小波變換分解。通過(guò)每段不同層次高頻小波系數(shù)曲線的奇異值分析,來(lái)獲取光譜特征波段。為了便于判斷特征提取波段的優(yōu)劣,提出初步評(píng)估參數(shù)契合度,并結(jié)合支持向量機(jī)分類準(zhǔn)確率進(jìn)一步評(píng)估提取特征波段。試驗(yàn)結(jié)果表明:隨著農(nóng)藥殘留濃度的增加,生菜葉片內(nèi)部嗜鋨顆粒數(shù)量變多,而淀粉顆粒變少,細(xì)胞間隙逐漸變大。不同濃度農(nóng)藥殘留的生菜葉片內(nèi)部細(xì)胞排列結(jié)構(gòu)方式和組織結(jié)構(gòu)存在差異,從而使不同濃度農(nóng)藥殘留的生菜近紅外光譜具有一定的差異性。與離散小波變換特征提取算法相比,分段離散小波變換具有較高的預(yù)測(cè)分類準(zhǔn)確率。分段數(shù)取值為4時(shí),取得最佳的契合度、校正集、交叉驗(yàn)證集與預(yù)測(cè)集準(zhǔn)確率分別為75%、95%、92.86%和90.63%。分段離散小波變換結(jié)合契合度參數(shù)評(píng)估,能有效提高光譜特征提取波段可靠性,為快速、準(zhǔn)確地?zé)o損檢測(cè)生菜農(nóng)藥殘留提供了一種新方法。

    Abstract:

    In order to fast, accurately and nondestructively detect pesticide residues in lettuce, combining discrete wavelet transform (DWT) algorithm with the approximate position of frequency doubling center of organic compounds in near infrared spectra, a method of feature extraction algorithm of piece-wise discrete wavelet transform (PDWT) was proposed. PDWT was used to extract the feature of four different concentrations of pesticide residues on the lettuce leaves. Transmission electron microscope (TEM) was carried out to detect the microstructure of lettuce. Hyperspectral image acquisition system was used to get information of near infrared hyperspectral image of lettuce, and the region of interest (ROI) was selected to get the near infrared spectrum data of the lettuce samples, which was ranged from 870 nm to 1800 nm. According to the approximate position of organic compounds in near infrared spectral region, appropriate piecewise paragraphs were selected. Each section of the spectral data was divided into seven layers by PDWT in turn, using sym5 as the basis function. Then, based on the analysis of the singular value of the high frequency wavelet coefficient curve, the characteristic band of lettuce was extracted by the optimal decomposition layer, which was the largest corresponding to the characteristic difference of the singular value. In order to evaluate the value of the feature extracted by singular value, a parameter of fit degree (FD) was proposed. Combined with the SVM classification accuracy, the feature extracted by PDWT was further evaluated. The results showed that under different concentrations of pesticide residues, the arrangement and structure of internal cells of lettuce leaves were different. The spectra of different concentrations of pesticide residues were different. PDWT had a higher classification accuracy of predictive classification compared with that of SVM. The classification accuracy of FD, calibration, cross validation and predictive classification accuracy of SVM were 75%, 95%, 92.86% and 90.63%, respectively, under the N value of 4 with PDWT. PDWT combined with FD was suitable for the feature extraction of spectrum, it provided a novel method for fast and nondestructive identification of lettuce pesticide concentration.

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孫俊,周鑫,毛罕平,武小紅,楊寧,張曉東.基于PDWT與高光譜的生菜葉片農(nóng)藥殘留檢測(cè)[J].農(nóng)業(yè)機(jī)械學(xué)報(bào),2016,47(12):323-329. Sun Jun, Zhou Xin, Mao Hanping, Wu Xiaohong, Yang Ning, Zhang Xiaodong. Detection of Pesticide Residues on Lettuce Leaves Based on Piece-wise Discrete Wavelet Transform and Hyperspectral Data[J]. Transactions of the Chinese Society for Agricultural Machinery,2016,47(12):323-329.

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  • 收稿日期:2016-06-14
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  • 在線發(fā)布日期: 2016-12-10
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