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首页> 外文期刊>Pattern Recognition: The Journal of the Pattern Recognition Society >An improved online writer identification framework using codebook descriptors
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An improved online writer identification framework using codebook descriptors

机译:使用码本描述符改进的在线作家识别框架

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摘要

This work proposes a text independent writer identification framework for online handwritten data. We derive a strategy that encodes the sequence of feature vectors extracted at sample points of the temporal trace with descriptors obtained from a codebook. The derived descriptors take into account, the scores of each of the attributes in a feature vector, that are computed with regards of the proximity to their corresponding values in the assigned codevector of the codebook. A codebook comprises a set of codevectors that are pre-learnt by a k-means algorithm applied on feature vectors of handwritten documents pooled from several writers. In addition, for constructing the codebook, we consider features that are derived by incorporating a so called 'gap parameter' that captures characteristics of sample points in the neighborhood of the point under consideration. We formulate our strategy in a way that, for a given codebook size k, we employ the descriptors of only k - 1 codevectors to construct the final descriptor by concatenation. The usefulness of the descriptor is demonstrated by several experiments that are reported on publicly available databases. (C) 2018 Elsevier Ltd. All rights reserved.
机译:这项工作提出了用于在线手写数据的文本独立作者识别框架。我们得出了一种策略,该策略编码在时间迹象的采样点中提取的特征向量的序列,其具有从码本获得的描述符。派生的描述符考虑了特征向量中的每个属性的分数,这些属性在码本的分配的代码中心中的相应值附近计算。码本包括一组代码码,该编码器由应用于从多个作家汇总的手写文档的特征向量上的K-means算法预先学习。另外,对于构建码本,我们考虑通过结合所谓的“GAP参数”来导出的功能,该特征捕获所考虑点附近的样本点的特征。我们以一种方式制定我们的策略,即对于给定的码本尺寸k,我们使用仅K - 1代码等的描述符来通过连接构造最终描述符。通过在公开的数据库上报告的几个实验证明了描述符的有用性。 (c)2018年elestvier有限公司保留所有权利。

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