Residential College | false |
Status | 已發表Published |
Digital watermarking based on patchwork and radial basis neural network | |
Jiang J.-J.; Pun C.-M. | |
2011-09-26 | |
Conference Name | 3rd International Conference on Computational Intelligence, Communication Systems and Networks, CICSyN 2011 |
Source Publication | Proceedings - 3rd International Conference on Computational Intelligence, Communication Systems and Networks, CICSyN 2011 |
Pages | 242-246 |
Conference Date | Held 26-28 July 2011 |
Conference Place | Bali, Indonesia |
Abstract | This paper presents a patchwork method for digital watermarking based on Radial Basis Neural Network (RBNN). Two special subsets of the host signal features were selected to embed the watermark signal, adding a small constant value to one subset and subtracting the same from another patch. Then, choose some sample from the embedded audio signal to train a RBNN. On the extract procedure, the RBNN obtained before will be used to verify the watermark information. The method is based on wavelet domain and the watermark signals were embedded in approximation coefficients. The quality of the watermarked signal is evaluated by PSNR (Peak Signal Noise Ratio) method and Extract Ratio(ER) after various attacks. Simulation results show that patchwork method based on Neural Network is robust against various common attacks such as filtering, resample and so on. © 2011 IEEE. |
Keyword | Digital Watermarking Discrete Wavelet Transform Patchwork Method Radial Basis Neural Network |
DOI | 10.1109/CICSyN.2011.59 |
URL | View the original |
Language | 英語English |
Scopus ID | 2-s2.0-80053006796 |
Fulltext Access | |
Citation statistics | |
Document Type | Conference paper |
Collection | University of Macau |
Affiliation | Universidade de Macau |
First Author Affilication | University of Macau |
Recommended Citation GB/T 7714 | Jiang J.-J.,Pun C.-M.. Digital watermarking based on patchwork and radial basis neural network[C], 2011, 242-246. |
APA | Jiang J.-J.., & Pun C.-M. (2011). Digital watermarking based on patchwork and radial basis neural network. Proceedings - 3rd International Conference on Computational Intelligence, Communication Systems and Networks, CICSyN 2011, 242-246. |
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