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A keyword retrieval system for historical Mongolian document images

机译:蒙古文历史文献图像关键词检索系统

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摘要

In this paper, we propose a keyword retrieval system for locating words in historical Mongolian document images. Based on the word spotting technology, a collection of historical Mongolian document images is converted into a collection of word images by word segmentation, and a number of profile-based features are extracted to represent word images. For each word image, a fixed-length feature vector is formulated by obtaining the appropriate number of the complex coefficients of discrete Fourier transform on each profile feature. The system supports enline image-to-image matching by calculating similarities between a query word image and each word image in the collection, and consequently, a ranked result is returned in descending order of the similarities. Therein, the query word image can be generated by synthesizing a sequence of glyphs when being retrieved. By experimental evaluations, the performance of the system is confirmed.
机译:本文提出了一种关键词检索系统,用于定位蒙古历史文献图像中的单词。基于单词发现技术,通过分词将蒙古历史文献图像的集合转换为单词图像的集合,并提取许多基于轮廓的特征来表示单词图像。对于每个单词图像,通过获取每个轮廓特征上适当数量的离散傅里叶变换的复系数来制定固定长度的特征向量。该系统通过计算查询词图像与集合中每个词图像之间的相似度来支持Enline图像到图像匹配,因此,按相似度的降序返回排序结果。其中,查询词图像可以通过在检索时合成一系列字形来生成。通过实验评估,可以确定系统的性能。

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