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Two Bioinspired Methods for Dynamic Signatures Analysis

机译:动态签名分析的两种生物启发方法

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This work focuses on the problem of dynamic signature segmentation and representation. A brief review of segmentation techniques for online signatures and movement modelling is provided. Two dynamic signature segmentation/representation methods are proposed. These methods are based on psychophysical evidences that led to the well-known Minimum Jerk Model. These methods are alternatives to the existing techniques and are very simple to implement. Experimental evidence indicates that the Minimum Jerk is in fact a good choice for signature representation amongst the family of quadratic derivative cost functions defined in Section 2.
机译:这项工作的重点是动态签名分割和表示的问题。提供了用于在线签名和运动建模的分割技术的简要回顾。提出了两种动态签名分割/表示方法。这些方法基于导致著名的最小混蛋模型的心理物理学证据。这些方法是现有技术的替代方法,非常易于实现。实验证据表明,在第2节中定义的二次微分成本函数族中,最小加扰实际上是签名表示的不错选择。

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