The ultimate signature identifier?

Amarjot Singh, Akash Choubey, Sreedhar Bandaru, Lalit Mohan, Mohit Dhiman
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引用次数: 3

Abstract

Biometric identification is the need of hour, as automatic recognition systems are such biometric techniques to look upon. Accurate automatic recognition systems are important for a wide range of applications such as banks, restricted areas, government classified areas etc. As traditional identity recognition methods such as pins, passwords etc suffer from some fattle flaws and are unable to satisfy the security requirements. The paper aims to consider a more reliable biometric feature, signature verification for the considering. The paper presents an experimental comparison of different signature verification methods. It can be effectively employed to reduce the risk of forgery by releasing the trouble of carrying ATM cards by the users, by employing a signature verification system. The paper compares four of the most extremely efficient methods used for signature verification like CDTW (Continuous Dynamic Time Warping), DTW (Dynamic Time Wrapping), Vector Quantization followed by HMM (Hidden Markov Model) employed for signature verification and the best method was stated. The paper also aims at improving the efficiency by integrating the methodologies introduced in the paper with each other. The methods were tested on synthetic and further applied on real time signature datasets. It is proved that superiority is achieved by combination of different methods.
最终的签名标识符?
由于自动识别系统就是这样一种生物特征识别技术,因此生物特征识别技术的发展迫在眉睫。准确的自动识别系统对于银行、限制区域、政府分类区域等广泛的应用非常重要。由于传统的身份识别方法如pin、密码等存在一些微小的缺陷,无法满足安全要求。本文旨在考虑一个更可靠的生物特征,签名验证为考虑。本文对不同的签名验证方法进行了实验比较。通过使用签名验证系统,可以有效地减少用户携带ATM卡的麻烦,从而降低伪造的风险。本文比较了连续动态时间翘曲(CDTW)、动态时间包裹(DTW)、矢量量化后隐马尔可夫模型(HMM)四种最有效的签名验证方法,并给出了最佳方法。本文还旨在通过整合文中介绍的方法来提高效率。对该方法进行了综合测试,并进一步应用于实时签名数据集。实践证明,将不同的方法相结合,可以取得更大的优势。
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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