Multiple Generation of Bengali Static Signatures

Moisés Díaz Cabrera, S. Chanda, M. A. Ferrer-Ballester, C. Banerjee, Anirban Majumdar, C. Carmona-Duarte, Parikshit Acharya, U. Pal
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引用次数: 4

Abstract

Handwritten signature datasets are really necessary for the purpose of developing and training automatic signature verification systems. It is desired that all samples in a signature dataset should exhibit both inter-personal and intra-personal variability. A possibility to model this reality seems to be obtained through the synthesis of signatures. In this paper we propose a method based on motor equivalence model theory to generate static Bengali signatures. This theory divides the human action to write mainly into cognitive and motor levels. Due to difference between scripts, we have redesigned our previous synthesizer [1,2], which generates static Western signatures. The experiments assess whether this method can approach the intra and inter-personal variability of the Bengali-100 Static Signature DB from a performance-based validation. The similarities reported in the experimental results proof the ability of the synthesizer to generate signature images in this script.
孟加拉语静态签名的多代
手写签名数据集对于开发和培训自动签名验证系统是非常必要的。期望签名数据集中的所有样本都应显示个人之间和个人内部的可变性。通过对特征的综合,似乎有可能对这一现实进行建模。本文提出了一种基于电机等效模型理论的静态孟加拉语签名生成方法。该理论将人的写作行为主要分为认知和运动两个层面。由于脚本之间的差异,我们重新设计了以前的合成器[1,2],它生成静态西方签名。实验评估了该方法是否可以从基于性能的验证中接近Bengali-100静态签名数据库的内部和人际变异性。实验结果中的相似性证明了合成器在该脚本中生成签名图像的能力。
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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