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Combination of spatially enhanced bag-of-visual-words model and genuine difference subspace for fake coin detection

机译:用于假硬币检测的空间增强袋模型和真正差分子空间的组合

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摘要

Fake coins are harmful for society, the detection of which is of paramount importance. Due to the large quantities of fake coins in the real world, it is impossible to examine them manually. To address this issue, we present an intelligent system to automatically detect fake coins based on their images. The intelligent system consists of two components: coin image representation and classifier learning. To represent the coin image, a new spatially enhanced bag-of-visual-words model, called SEBOVW model, is proposed. Afterwards, we improve the representation by building a genuine difference subspace. The coin is finally represented based on its projection onto this subspace. In order to discriminate between genuine and fake coins, we train a classifier using the subspace representations. A thorough evaluation of the proposed intelligent system has been conducted on four coin datasets, consisting of thousands of coins of different denominations and from two countries. Promising experimental results in excess of 98% accuracy demonstrate its effectiveness and validity. (C) 2020 Elsevier Ltd. All rights reserved.
机译:假币对社会有害,检测其重要性至关重要。由于现实世界中的大量假币,因此无法手动检查它们。要解决此问题,我们介绍了一个智能系统,可以根据其图像自动检测假硬币。智能系统由两个组件组成:硬币图像表示和分类器学习。为了代表硬币图像,提出了一种名为Sebovw模型的新的空间增强的视觉袋式模型。之后,我们通过构建真正的差异子空间来改善代表性。硬币最终基于其投影到该子空间。为了区分真实和假硬币,我们使用子空间表示训练分类器。对所提出的智能系统进行了彻底的评估,该智能系统已经在四枚硬币数据集中进行,其中包括数千个不同面额和两国的硬币。有希望的实验结果超过98%的准确性,表明其有效性和有效性。 (c)2020 elestvier有限公司保留所有权利。

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