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Robust off-line signature verification using compression networks and positional cuttings

机译:使用压缩网络和位置切割进行可靠的离线签名验证

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摘要

A novel robust technique for the off-line signature verification problem in practical real conditions is presented. The technique is based on the use of compression neural networks, and in the automatic generation of the training set from only one signature for each writer. Our proposal incorporates a new kind of acceptance/rejection rule, which is based on the similarity between subimages or positional cuttings of a test signature and the corresponding representation stored in the class compression network. Experimental results show that the proposed technique reduces significantly the false acceptation rate (FAR).
机译:提出了一种在实际条件下解决离线签名验证问题的鲁棒性新技术。该技术基于压缩神经网络的使用,并且基于每个作者的一个签名自动生成训练集。我们的建议结合了一种新的接受/拒绝规则,该规则基于测试签名与存储在类压缩网络中的相应表示的子图像或位置切割之间的相似性。实验结果表明,该技术显着降低了误接收率(FAR)。

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