Recognition of Japanese Historical Hand-Written Characters Based on Object Detection Methods

Yiping Tang, Kohei Hatano, Eiji Takimoto
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引用次数: 4

Abstract

We consider the recognition problem of Japanese historical handwritten characters called "Kuzushiji". Unlike modern characters, Kuzushiji characters are harder to recognize partly because many of them are connected and not separated by spaces without any segmentation information. We propose two methods for segmentation and recognition of Kuzushiji characters. The first method learns segmentation rules and character classifiers simultaneously from data sets with character labels and segmentation information. Second method is for segmentation and can be used with any single character recognizer. Our methods outperform other baselines and achieve the state-of-the-art accuracy on both segmentation and recognition tasks on data sets of three consecutive Kuzushiji characters.
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基于目标检测方法的日本历史手写体识别
本文研究了日本历史手写体“Kuzushiji”的识别问题。与现代汉字不同,Kuzushiji汉字更难识别,部分原因是它们中的许多是连在一起的,没有空格分隔,没有任何分割信息。本文提出了两种对狼语字进行分割和识别的方法。第一种方法从具有字符标签和切分信息的数据集中同时学习切分规则和字符分类器。第二种方法用于分割,可以与任何单个字符识别器一起使用。我们的方法优于其他基线,在三个连续的Kuzushiji字符数据集的分割和识别任务上都达到了最先进的精度。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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