基于时间序列和形状码的在线文本独立作者识别

Bangyu Li, T. Tan
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引用次数: 26

摘要

本文提出了一种新的在线独立于文本的作者识别方法。大多数现有的作者识别技术要求数据来自特定文本,这不适用于无法获得此类文本的情况,例如在刑事司法系统中,需要比较具有不同内容的文本文件。与文本无关的方法通常需要大量的数据来保证良好的结果。我们提出了时间序列和形状编码来编码在线手写。时间序列码(TSC)用于表征书写过程中速度和压力变化的轨迹,形状码(SC)用于表征书写过程中轨迹的方向。对于TSC,我们使用两种不同的编码来编码速度和码本压力:笔划时间序列码(STSC)和相邻时间序列码(NTSC)。在识别阶段,我们采用决策和融合策略来识别作者。实验结果表明,该方法可以提高少量字符的识别精度。此外,我们发现该方法甚至对跨语言(英语和汉语)的作者识别也是有效的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Online Text-independent Writer Identification Based on Temporal Sequence and Shape Codes
In this paper we present a novel method for online text-independent writer identification. Most of the existing writer identification techniques require the data to be from a specific text which is not applicable to cases where such text is not available, such as in criminal justice systems when text documents with different content need to be compared. Text-independent approaches often require a large amount of data to be confident of good results. We propose temporal sequence and shape codes to encode online handwriting. Temporal sequence codes (TSC) are to characterize trajectory in speed and pressure change in writing, and shape codes (SC) are to characterize direction of trajectory in writing handwriting. For TSC, we use two different codes to encode speed and pressure to codebook: stroke temporal sequence codes (STSC) and neighbor temporal sequence codes (NTSC). At identification stage, we implement decision and fusion strategy to identify writer. Experimental results show that our proposed method can improve the identification accuracy with a small number of characters. Moreover, we find that the proposed method is even effective for cross-language (English & Chinese) writer identification.
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