Improvement of Oracle Bone Inscription Recognition Accuracy: A Deep Learning Perspective

Author:

Fu Xuanming,Yang Zhengfeng,Zeng Zhenbing,Zhang Yidan,Zhou Qianting

Abstract

Deep learning techniques have been successfully applied in handwriting recognition. Oracle bone inscriptions (OBI) are the earliest hieroglyphs in China and valuable resources for studying the etymology of Chinese characters. OBI are of important historical and cultural value in China; thus, textual research surrounding the characters of OBI is a huge challenge for archaeologists. In this work, we built a dataset named OBI-100, which contains 100 classes of oracle bone inscriptions collected from two OBI dictionaries. The dataset includes more than 128,000 character samples related to the natural environment, humans, animals, plants, etc. In addition, we propose improved models based on three typical deep convolutional network structures to recognize the OBI-100 dataset. By modifying the parameters, adjusting the network structures, and adopting optimization strategies, we demonstrate experimentally that these models perform fairly well in OBI recognition. For the 100-category OBI classification task, the optimal model achieves an accuracy of 99.5%, which shows competitive performance compared with other state-of-the-art approaches. We hope that this work can provide a valuable tool for character recognition of OBI.

Funder

National Key Research and Development Program of China

Publisher

MDPI AG

Subject

Earth and Planetary Sciences (miscellaneous),Computers in Earth Sciences,Geography, Planning and Development

Cited by 13 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. An open dataset for oracle bone character recognition and decipherment;Scientific Data;2024-09-06

2. Integration of an archaeological database in a virtual reality environment: Venta Micena, Orce (Granada, Spain) archaeological site;STAR: Science & Technology of Archaeological Research;2024-07-20

3. Component-Level Oracle Bone Inscription Retrieval;Proceedings of the 2024 International Conference on Multimedia Retrieval;2024-05-30

4. Research on Oracle Bone Inscription Segmentation and Recognition Model Based on Deep Learning;2024 IEEE 4th International Conference on Electronic Technology, Communication and Information (ICETCI);2024-05-24

5. Performance of Binarization Algorithms on Tamizhi Inscription Images: An Analysis;ACM Transactions on Asian and Low-Resource Language Information Processing;2024-05-10

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