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Handwriting Verification-comparison Of A Multi-algorithmic Anda Multi-semantic Approach

机译:多种算法和一种多语义方法的笔迹验证比较

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摘要

In this paper, a comparison of an existing multi-algorithmic and a new multi-semantic fusion approach for biometric online handwriting user verification is presented. First, in order to improve the authentication performance of a biometric online handwriting system four classification algorithms are combined using several weighting strategies for matching score level fusion. Second, based on the best two algorithms and the best weighting strategy found during the test of the multi-algorithmic approach, a new multi-semantic fusion approach using a pair wise combination of four semantics on matching score level is proposed. As semantics we understand alternative handwritten contents (e.g. symbols) in addition to signatures. We show that both fusion approaches, multi-algorithmic and multi-semantic, can lead to a fusion result which is better than the result of the best single algorithm or semantics involved. While the improvement for the multi-algorithmic system yields 19%, we observe more than 57% for the multi-semantic approach.
机译:本文对生物识别在线手写用户验证中现有的多算法和新的多语义融合方法进行了比较。首先,为了提高生物特征在线手写系统的认证性能,使用几种加权策略将四种分类算法进行组合,以匹配分数级别融合。其次,基于在多算法方法测试中发现的最佳两种算法和最佳加权策略,提出了一种在匹配得分水平上使用四种语义的成对组合的新多语义融合方法。作为语义,我们了解签名以外的其他手写内容(例如符号)。我们表明,两种算法,多算法和多语义的融合方法都可以导致融合结果,其结果要比涉及的最佳单一算法或语义的结果更好。尽管对多算法系统的改进产生了19%的收益,但对于多语义方法,我们观察到超过57%的收益。

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