Affiliation:
1. Zhejiang Gongshang University, P.R. China
2. City University of Hong Kong, HKSAR
3. University of Hong Kong, HKSAR
4. Nanjing University of Economic and Finance, P.R. China
5. Hangzhou Dianzi University, P.R. China
Abstract
Ancient language manuscripts constitute a key part of the cultural heritage of mankind. As one of the most important languages, Chinese historical calligraphy work has contributed to not only the Chinese cultural heritage but also the world civilization at large, especially for Asia. To support deeper and more convenient appreciation of Chinese calligraphy works, based on our previous work on the probabilistic retrieval of historical Chinese calligraphic character manuscripts repositories, we propose a system framework of the multi-feature-based Chinese calligraphic character images probabilistic retrieval in the mobile cloud network environment, which is called the
DPRC
. To ensure retrieval efficiency, we further propose four enabling techniques: (1) DRL-based probability propagation, (2) optimal data placement scheme, (3) adaptive data robust transmission algorithm, and (4) index support filtering scheme. Comprehensive experiments are conducted to testify the effectiveness and efficiency of our proposed
DPRC
method.
Funder
Natural Science Foundation of Zhejiang Province
Ministry of Science and Technology of the People's Republic of China
City University of Hong Kong
National Center for International Joint Research on E-Business Information Processing
National Natural Science Foundation of China
Science & Technology Innovative Team of Zhejiang Province
Beijing University of Posts and Telecommunications
Ministry of Education of Humanities and Social Sciences Project
Publisher
Association for Computing Machinery (ACM)
Cited by
4 articles.
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