Application of Multiple Classifier Fusion in the Discriminant Analysis of near Infrared Spectroscopy for Agricultural Products

IF 16.4 1区 化学 Q1 CHEMISTRY, MULTIDISCIPLINARY
Li-li Luan, Yu-heng Wang, Xue-ying Li, Wenyan Hu, Kai Li, Jun-hui Li, Kai Yang, R. Shu, Longlian Zhao, C. Lao
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引用次数: 7

Abstract

Near infrared spectroscopy combined with chemometrics and pattern recognition has become a primary focus in the discriminant analysis of agricultural products. To date, most studies have focused on using a single classifier to discriminate the origins, varieties and grades of products. Others have focused on using multiple classifier fusion by weighted voting. Due to their attributes of continuity and internal similarity, discriminant models sometimes present poor performance. In this study, we achieved better performance by applying multiple classifier fusion models, including support vector machine (SVM), discriminant partial least squares (DPLS) and principal component and Fisher criterion (PPF). PPF showed continuity and similarity among different parts of tobacco leaves [i.e. upper (B), cutter (C) and lug (X)]. The similarities between each class and the others were quantified to values, and the sum of the similarity values of each class was defined as its similarity. SVM–DPLS–PPF fusion by voting and similarity constraint for decision resulted in better performance, with the correct discriminant rate improved on average by 14.1%, 8.2%, 17.3% and 4.6% compared with those achieved using SVM, DPLS, PPF and SVM–DPLS–PPF fusion by weighted voting for decision, respectively; in addition, the incorrect discriminant rate between B and X was reduced to zero. Therefore, we demonstrated the feasibility of using SVM–DPLS–PPF fusion by voting and similarity constraint for decision to discriminate between different parts of tobacco leaves. This technique could provide a new method for tobacco quality management, computer-aided grading and intelligent acquisition. It also provides a new discriminant method for analysing the attributes of continuity and similarity of agricultural products using near infrared spectroscopy.
多分类器融合在农产品近红外光谱判别分析中的应用
近红外光谱技术结合化学计量学和模式识别技术已成为农产品鉴别分析的主要研究方向。迄今为止,大多数研究都集中在使用单一分类器来区分产品的来源、品种和等级。其他人则专注于通过加权投票使用多分类器融合。判别模型由于具有连续性和内部相似性,有时会出现性能不佳的情况。在本研究中,我们通过应用包括支持向量机(SVM)、判别偏最小二乘(DPLS)和主成分与Fisher准则(PPF)在内的多个分类器融合模型获得了更好的性能。烟叶不同部位间PPF表现出连续性和相似性[即上部(B)、切叶(C)和烟叶(X)]。将每个类与其他类之间的相似度量化为值,将每个类的相似度值之和定义为其相似度。采用投票和相似约束的SVM - DPLS - PPF融合决策比采用加权投票的SVM - DPLS - PPF和PPF融合决策的正确判别率分别提高14.1%、8.2%、17.3%和4.6%;此外,B和X之间的错误判别率降至零。因此,我们证明了通过投票和相似性约束的SVM-DPLS-PPF融合决策来区分烟叶不同部位的可行性。该技术可为烟草质量管理、计算机辅助分级和智能采集提供新的方法。为利用近红外光谱分析农产品的连续性和相似性属性提供了一种新的判别方法。
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来源期刊
Accounts of Chemical Research
Accounts of Chemical Research 化学-化学综合
CiteScore
31.40
自引率
1.10%
发文量
312
审稿时长
2 months
期刊介绍: Accounts of Chemical Research presents short, concise and critical articles offering easy-to-read overviews of basic research and applications in all areas of chemistry and biochemistry. These short reviews focus on research from the author’s own laboratory and are designed to teach the reader about a research project. In addition, Accounts of Chemical Research publishes commentaries that give an informed opinion on a current research problem. Special Issues online are devoted to a single topic of unusual activity and significance. Accounts of Chemical Research replaces the traditional article abstract with an article "Conspectus." These entries synopsize the research affording the reader a closer look at the content and significance of an article. Through this provision of a more detailed description of the article contents, the Conspectus enhances the article's discoverability by search engines and the exposure for the research.
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