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基于OC-SVM和近紅外光譜的秸稈固態(tài)發(fā)酵進程監(jiān)測
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國家高技術研究發(fā)展計劃(863計劃)資助項目(2007AA04Z179)、江蘇省研究生科研創(chuàng)新計劃資助項目(CXZZ11_0572),、江蘇高校優(yōu)勢學科建設工程資助項目(PAPD(2011)6)和鎮(zhèn)江市農(nóng)業(yè)科技支撐資助項目(NY2010017)


Monitoring of Straw Solid-state Fermentation Based on NIR and One-class Support Vector Machine
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    摘要:

    利用近紅外光譜技術結合一類支持向量機(OC-SVM)快速監(jiān)測秸稈蛋白飼料固態(tài)發(fā)酵進程,。首先獲取發(fā)酵物樣本在10000~4000 cm-1波數(shù)范圍內(nèi)的近紅外漫反射光譜并對其進行主成分分析,,提取前7個主成分因子作為模型的輸入變量,然后運用OC-SVM算法建立判別模型,。在模型建立過程中,,采用交互驗證的方法優(yōu)化OC-SVM模型的相關參數(shù),。實驗結果表明,在相同的條件下,,OC-SVM模型在處理失衡訓練樣本的問題上明顯優(yōu)于SVM模型,,當訓練集中目標類和非目標類樣本數(shù)比為1∶8時,OC-SVM模型在驗證集中的正確判別率達到85%,。

    Abstract:

    Near infrared (NIR) spectroscopy coupled with one-class support vector machine (OC-SVM) were used to rapidly and accurately monitor physical and chemical changes in solid-state fermentation (SSF) of crop straws without the need for chemical analysis. Raw spectra of fermented samples were acquired with wavelength range of 10000~4000 cm-1. Then the top seven PCs as input vectors were extracted by principal component analysis (PCA). OC-SVM algorithm was implemented to develop identification model, and some parameters of OC-SVM model were optimized by cross-validation in calibrating model. Experimental results showed that OC-SVM model revealed its incomparable superiority than SVM model in handling imbalance training sets under the same condition. The discrimination rate of OC-SVM model was 85% in the validation set when the ratio of samples from target class to those from non-target class was one to eight in the training set.

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江輝,劉國海,梅從立,肖夏宏,于霜,丁煜函.基于OC-SVM和近紅外光譜的秸稈固態(tài)發(fā)酵進程監(jiān)測[J].農(nóng)業(yè)機械學報,2012,43(10):114-117,166. Jiang Hui, Liu Guohai, Mei Congli, Xiao Xiahong, Yu Shuang, Ding Yuhan. Monitoring of Straw Solid-state Fermentation Based on NIR and One-class Support Vector Machine[J]. Transactions of the Chinese Society for Agricultural Machinery,2012,43(10):114-117,166.

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  • 在線發(fā)布日期: 2012-10-19
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