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A New Decision Making Approach for Improving the Performance of Automatic Signature Verification Using Multi-sets of Features

机译:利用多组特征提高自动签名验证性能的新决策方法

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So far, Automatic Signature Verification (ASV) approaches using a threshold-based decision have depended on one feature set for distance measure and a threshold on this distance measure for verification. The best performance that can be reached in this case is the one obtained by using the best feature set (bfs). In this paper, we introduce a new decision making approach for ASV that uses Multi-Sets of Features (MSF). The MSF provides higher performance than that obtainable by using the bfs, with better forgery detection. The improvement is seen to be significant because it recovers some lost effectiveness and can add it to that of the bfs. This gain in effectiveness is highly desirable when we deal with signatures of high value documents.
机译:到目前为止,使用基于阈值的决策的自动签名验证(ASV)方法已经依赖于一个特征集进行距离测量,而该阈值依赖于该阈值用于验证。在这种情况下,可以达到的最佳性能是使用最佳功能集(bfs)获得的性能。在本文中,我们介绍了一种使用多功能集(MSF)的ASV决策方法。 MSF提供了比使用bfs获得的性能更高的性能,并具有更好的伪造检测。可以看到该改进非常重要,因为它可以恢复一些损失的有效性,并且可以将其添加到bfs中。当我们处理高价值文件的签名时,非常希望获得这种有效性。

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