Identification of Authenticity and Nominal Value of Indonesia Banknotes Using Fuzzy KNearest Neighbor Method

Ricky Ramadhan, J. Y. Sari, Ika Purwanti Ningrum
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引用次数: 2

Abstract

The existence of counterfeit money is often troubling the public. The solution given by the government to be careful of counterfeit money is by means of 3D (seen, touched and looked at). However, this step has not been perfectly able to distinguish real money and fake money. So there is a need for a system to help detect the authenticity of money. Therefore, in this study a system was designed that can detect the authenticity of rupiah and its nominal value. For data acquisition, this system uses detection boxes, ultraviolet lights and smartphone cameras. As for feature extraction, this system uses segmentation methods. The segmentation method based on the threshold value is used to obtain an invisible ink pattern which is a characteristic of real money along with the nominal value of the money. The feature is then used in the stage of detection of money authenticity using FKNN (Fuzzy K-Nearest Neighbor) method. From 24 test data, obtained an average accuracy of 96%. This shows that the system built can detect the authenticity and nominal value of the rupiah well.
用模糊最近邻法鉴别印尼纸币的真伪和面值
假币的存在经常困扰着公众。政府提出的防范假币的解决方案是采用3D技术(看、摸、看)。然而,这一步骤并不能完全区分真钱和假钱。因此,有必要建立一个系统来帮助检测货币的真实性。因此,本研究设计了一个可以检测印尼盾真伪及其面值的系统。对于数据采集,该系统使用检测箱、紫外线灯和智能手机摄像头。在特征提取方面,本系统采用了分割方法。采用基于阈值的分割方法,得到一种不可见的墨迹图案,这是真实货币的特征,同时也是货币的名义价值。然后利用模糊k近邻(FKNN)方法将该特征用于货币真实性检测阶段。从24个测试数据中,获得了96%的平均准确率。这表明所构建的系统可以很好地检测印尼盾的真伪和面值。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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