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An Image-Based Approach to Detection of Fake Coins

机译:基于图像的伪造硬币检测方法

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摘要

We propose a new approach to detect fake coins using their images in this paper. A coin image is represented in the dissimilarity space, which is a vector space constructed by comparing the image with a set of prototypes. Each dimension measures the dissimilarity between the image under consideration and a prototype. In order to obtain the dissimilarity between two coin images, the local keypoints on each image are detected and described. Based on the characteristics of the coin, the matched keypoints between the two images can be identified in an efficient manner. A post-processing procedure is further proposed to remove mismatched keypoints. Due to the limited number of fake coins in real life, one-class learning is conducted for fake coin detection, so only genuine coins are needed to train the classifier. Extensive experiments have been carried out to evaluate the proposed approach on different data sets. The impressive results have demonstrated its validity and effectiveness.
机译:在本文中,我们提出了一种使用假币图像检测假币的新方法。硬币图像在差异空间中表示,差异空间是通过将图像与一组原型进行比较而构造的向量空间。每个维度都衡量所考虑的图像与原型之间的差异。为了获得两个硬币图像之间的相似性,检测并描述每个图像上的局部关键点。基于硬币的特性,可以有效地识别两个图像之间的匹配关键点。进一步提出了一种后处理程序,以去除不匹配的关键点。由于现实生活中假硬币的数量有限,因此要进行一类学习来检测假硬币,因此只需要真正的硬币即可训练分类器。已经进行了广泛的实验以评估在不同数据集上提出的方法。令人印象深刻的结果证明了其有效性和有效性。

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