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Efficient shape matching for Chinese calligraphic character retrieval

机译:高效的形状匹配用于汉字字符检索

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An efficient search method is desired for calligraphic characters due to the explosive growth of calligraphy works in digital libraries. However, traditional optical character recognition (OCR) and handwritten character recognition (HCR) technologies are not suitable for calligraphic character retrieval. In this paper, a novel shape descriptor called SC-HoG is proposed by integrating global and local features for more discriminability, where a gradient descent algorithm is used to learn the optimal combining parameter. Then two efficient methods, keypoint-based method and locality sensitive hashing (LSH) based method, are proposed to accelerate the retrieval by reducing the feature set and converting the feature set to a feature vector. Finally, a re-ranking method is described for practicability. The approach filters query-dissimilar characters using the LSH-based method to obtain candidates first, and then re-ranks the candidates using the keypoint- or sample-based method. Experimental results demonstrate that our approaches are effective and efficient for calligraphic character retrieval.
机译:由于数字图书馆中书法作品的爆炸性增长,因此需要一种有效的书法字符搜索方法。但是,传统的光学字符识别(OCR)和手写字符识别(HCR)技术不适合书法字符检索。在本文中,通过集成全局和局部特征以提供更高的可分辨性,提出了一种新颖的形状描述符SC-HoG,其中使用梯度下降算法来学习最佳组合参数。然后,提出了两种有效的方法,即基于关键点的方法和基于局部敏感哈希(LSH)的方法,通过减少特征集并将特征集转换为特征向量来加快检索速度。最后,为实用性描述了一种重新排序方法。该方法使用基于LSH的方法过滤查询不同的字符,以首先获取候选者,然后使用基于关键点或样本的方法对候选者重新排序。实验结果表明,我们的方法对于书法字符检索是有效和高效的。

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