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Nondestructive identification of blue pen inks for documentoscopy purpose using iPhone and digital image analysis including an approach for interval confidence estimation in PLS-DA models validation

机译:使用iPhone和数字图像分析对用于文档检查的蓝笔墨水进行非破坏性识别,包括在PLS-DA模型验证中进行区间置信度估计的方法

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Documentoscopy is a field of forensic science that studies documents related to crime investigations. In this sense, the evaluation of pen inks used to produce these documents can help in the counterfeits identification, and the analysis of inks in paper is an important area in documentoscopy. In order to develop a methodology that allows the nondestructive accurate discrimination of pen inks types (gel, rollerball, felt tip and ballpoint pens) partial least squares for discriminant analysis (PIS-DA) was applied for the digital images obtained from an iPhone. The proposed method was tested for discrimination between 42 blue pen inks of different types and brands and validated by independent validation (or test) samples. The interval confidences estimation were considered in the validation step. Evaluations about the effect of paper characteristics and influence of the utilization of a smartphone from another brand were described. The digital images coupled with PIS-DA model can be considered robust for felt-tip pen type, since the model for this pen type did not suffer influence of the paper grammage and smartphone brand. Therefore, the proposed methodology may be considered a relevant contribution to the forensic analysis of questioned documents, since it provides a simple, fast, nondestructive and efficient way to directly analyze blue pen inks. (C) 2016 Elsevier B.V. All rights reserved.
机译:Documentoscopy是法医学的一个领域,研究与犯罪调查有关的文件。从这个意义上讲,对用于生产这些文件的笔墨水的评估可以帮助识别假冒商品,而纸中墨水的分析是文件检查的重要领域。为了开发一种方法,该方法可以无损地准确区分笔墨水类型(中性笔,圆珠笔,毡尖笔和圆珠笔),将用于判别分析的局部最小二乘(PIS-DA)应用于从iPhone获得的数字图像。测试了该方法对42种不同类型和品牌的蓝色钢笔墨水的辨别力,并通过独立的验证(或测试)样本进行了验证。在验证步骤中考虑了区间置信度估计。描述了有关纸张特性的影响以及其他品牌智能手机的使用影响的评估。可以将带有PIS-DA模型的数字图像视为毡尖笔类型的鲁棒性,因为这种笔类型的模型不受纸张克重和智能手机品牌的影响。因此,由于所提出的方法提供了一种直接分析蓝笔墨水的简单,快速,无损且有效的方法,因此可以认为是对可疑文件进行取证分析的重要贡献。 (C)2016 Elsevier B.V.保留所有权利。

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