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A Multi-Classifier System for Off-Line Signature Verification Based on Dissimilarity

机译:基于相似度的离线签名验证多分类器系统

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摘要

Although widely used to reduce error rates of difficult pattern recognition problems, multiple classifier systems are not in widespread use in off-line signature verification. In this paper, a two-stage off-line signature verification system based on dissimilarity representation is proposed. In the first stage, a set of discrete HMMs trained with different number of states and/or different codebook sizes is used to calculate similarity measures that populate new feature vectors. In the second stage, these vectors are employed to train a SVM (or an ensemble of SVMs) that provides the final classification. Experiments performed by using a real-world signature verification database (with random, simple and skilled forgeries) indicate that the proposed system can significantly reduce the overall error rates, when compared to a traditional feature-based system using HMMs. Moreover, the use of ensemble of SVMs in the second stage can reduce individual error rates in up to 10%.
机译:尽管广泛用于减少困难的模式识别问题的错误率,但在离线签名验证中并未广泛使用多个分类器系统。提出了一种基于相异表示的两阶段离线签名验证系统。在第一阶段中,一组离散的HMM被训练以不同数量的状态和/或不同的代码本大小来计算填充新特征向量的相似性度量。在第二阶段,将这些向量用于训练提供最终分类的SVM(或SVM集合)。通过使用真实世界的签名验证数据库(具有随机,简单和熟练的伪造品)进行的实验表明,与使用HMM的传统基于特征的系统相比,该系统可以显着降低总体错误率。此外,在第二阶段使用SVM集成可以将单个错误率降低多达10%。

著录项

  • 来源
    《Multiple classifier systems》|2010年|p.264-273|共10页
  • 会议地点 Cairo(EG);Cairo(EG);Cairo(EG)
  • 作者

    Representation;

  • 作者单位

    Luana Batista, Eric Granger, and Robert Sabourin Laboratoire d'imagerie, de vision et d'intelligence artificielle Ecole de technologie superieure 1100, rue Notre-Dame Ouest, Montreal, QC, H3C 1K3, Canada;

  • 会议组织
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 TP274.3;
  • 关键词

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