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Forensic classification of black inkjet prints using Fourier transform near-infrared spectroscopy and Linear Discriminant Analysis

机译:使用傅里叶变换近红外光谱和线性判别分析的黑色喷墨印刷的法医分类

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摘要

This work presents a study regarding the forensic discrimination of black inkjet-printed documents in question. Nondestructive Fourier transform near-infrared (FT-NIR) spectroscopy in combination with supervised classification method Discriminant Analysis (DA); Linear Discriminant Analysis (LDA) and Quadratic Discriminant Analysis (QDA) were utilized to investigate 22 different prints of the three most sold office printer brands. The spectra were acquired using the FT-NIR spectrometer NIRFlex N-500 (Buchi Labortechnik AG, Flawil, Switzerland) with the Fiber Optic Solids measuring cell in the spectral region of 10,000-4000 cm( 1). Each sample was printed on the same type of office paper. The spectra were 45 times acquired on 3 separate printed squares of each sample. It results in 990 acquired spectra for the presented experiment. The FT-NIR spectra of the printed squares were split into calibration and test sets with which the Classification accuracy (CA) value of unknown samples was evaluated. In order to increase the significance, three different compilations of calibration and test sets were realized. The performance of three different Discriminant model methods; LDA (Euclidean and Mahalanobis algorithm) and QDA were compared to each other. Furthermore, the CA of each DA method was examined using 1-5 principal components (PCs) in the construction of the respective DA model. Two groups of models, according to the ink subset (Carbon black and Black colorant), were performed in raw and Standard Normal Variate (SNV) correction spectra alternations. The results showed that the Euclidean method yielded the highest accuracy in predicting independent test samples and thus clearly outperformed the QDA and Mahalanobis algorithm DA method. It was also determined that the ink type Carbon black had higher CA values than the ink type Black colorant. This work demonstrated the special ability of FT-NIR spectroscopy in combination with DA to examine inkjet-printed documents in a fast and non-destructive fashion. (C) 2019 Elsevier B.V. All rights reserved.
机译:这项工作提出了关于题为黑色喷墨印刷文件的法医辨别的研究。非破坏性傅里叶变换近红外(FT-NIR)光谱与监督分类方法的判别分析(DA)结合使用;利用线性判别分析(LDA)和二次判别分析(QDA)来调查三种最卖出的办公室打印机品牌的22种不同的印刷品。使用FT-NIR光谱仪NIRFLEX N-500(BUCHI LABORTECHNIK AG,FLAWIL,SWITZERLAN)与光纤固体测量电池在10,000-4000cm(1)中的光谱区域中获得光谱。每个样品都在相同类型的办公纸上印刷。在每个样品的3个单独的印刷方块上获得光谱45次。它导致990个获得的实验中获得的光谱。印刷方块的FT-NIR光谱分为校准和测试组,评估了未知样品的分类精度(CA)值。为了提高意义,实现了三种不同的校准和测试集编制。三种不同判别模型方法的性能; LDA(欧几里德和Mahalanobis算法)和QDA相互比较。此外,使用1-5个主成分(PC)在相应的DA模型的结构中检查每个DA方法的CA。根据墨水子集(炭黑和黑色着色剂)的两组模型是以原始的和标准正常变化(SNV)校正光谱交替进行的。结果表明,Euclidean方法在预测独立的测试样品中产生了最高的精度,从而显然优于QDA和Mahalanobis算法DA方法。还确定油墨型炭黑的Ca值比油墨型黑色着色剂更高。这项工作表明了FT-NIR光谱与DA结合的特殊能力,以快速而无损的方式检查喷墨印刷文件。 (c)2019年Elsevier B.V.保留所有权利。

著录项

  • 来源
    《Forensic science international》 |2019年第2019期|共7页
  • 作者单位

    Slovak Univ Technol Bratislava Fac Chem &

    Food Technol Radlinskeho 9 Bratislava 81237 Slovakia;

    Leopold Franzens Univ Inst Analyt Chem &

    Radiochem CCB Innrain 80-82 A-6020 Innsbruck Austria;

    Slovak Univ Technol Bratislava Fac Chem &

    Food Technol Radlinskeho 9 Bratislava 81237 Slovakia;

    Slovak Univ Technol Bratislava Fac Chem &

    Food Technol Radlinskeho 9 Bratislava 81237 Slovakia;

    Leopold Franzens Univ Inst Analyt Chem &

    Radiochem CCB Innrain 80-82 A-6020 Innsbruck Austria;

  • 收录信息
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 R89;
  • 关键词

    Forensic science; Document; Chemometrics; LDA; Spectroscopy;

    机译:法医学;文件;化学计量学;LDA;光谱学;

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