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Chinese Writer Identification Using Contour-Directional Feature and Character Pair Similarity Measurement

机译:中国作家识别使用轮廓定向特征和字符对相似度测量

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摘要

The key issue of Chinese writer identification is the uncertainty of the text content in the query and reference handwriting images. We propose a method for Chinese writer identification using Contour-directional Feature (CDF) and Character Pair Similarity Measurement (CPSM). CDFs are extracted from the query and reference handwriting images and are used to calculate the text-independent similarity between the query and reference handwriting images. Meanwhile, characters appearing in both the query and reference handwriting images are also utilized to measure the similarity of character pairs. The text-independent similarity and the similarity of character pairs are fused to the final similarity between the query and reference handwriting images. The proposed method is evaluated on two public datasets. The best Top-1 identification accuracy on the HIT-MW and CASIA-2.1 dataset reaches 96.7% and 97.9% respectively, which outperforms other previous approaches.
机译:中文作者识别的关键问题是查询和参考手写图像中文本内容的不确定性。我们提出了一种使用轮廓定向特征(CDF)和字符对相似度测量(CPSM)的中文作者识别方法。从查询和参考手写图像中提取CDF,并且用于计算查询和参考手写图像之间的文本无关的相似性。同时,查询和参考手写图像中出现的字符也用于测量字符对的相似性。字符对的自定义相似性和相似性与查询和参考手写图像之间的最终相似性融合。所提出的方法在两个公共数据集上进行评估。 HIT-MW和CASIA-2.1数据集上的最佳前1个识别准确性分别达到96.7 %和97.9 %,这优于其他先前的方法。

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