• Title/Summary/Keyword: StirMark

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A robust watermarking method using the correlation of the sinusoidal pattern (정현파 패턴의 상관관계를 이용한 강인한 워터마킹)

  • Kim, Sang-Bum;Won, Chee-Sun
    • Journal of the Institute of Electronics Engineers of Korea SP
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    • v.45 no.1
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    • pp.22-28
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    • 2008
  • In this paper, we propose a DCT coefficient domain watermarking scheme, which makes use of the sinusoidal patterns created by the watermark embedding. The embedded watermark can be detected in the spatial domain by computing the correlation. Also, the proposed algorithm can detect the spatial synchronization without additional sync bit embedding. Experimental results show that the proposed algorithm is robust to various StirMark attacks.

DIGITAL WATERMARKING OF SATELLITE IMAGERY USING THE ALGORITHM BASED ON A LOOK-UP TABLE METHOD

  • Bang, Yoon-Sik;Lee, Jae-Bin;Yu, Ki-Yun;Kim, Yong-Il
    • Proceedings of the KSRS Conference
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    • 2007.10a
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    • pp.18-21
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    • 2007
  • Digital image watermarking is a technology used in copyrighting of digital images by embedding unremovable informations. In this paper, a pixel-domain look-up-table-based watermarking algorithm is presented. With this methodology, the watermark was embedded in the host image, but we did not observe any distortion at certain specific region of interest. This means the proposed method is preferred in case of satellite images. Then, the image manipulation tool which is called 'StirMark' will be used to perform many kinds of attacks such as rotation, scaling, filtering and compression on the watermarked image. Finally, the effectiveness of a watermarking technique in terms of 'robustness' and 'data integrity' criteria will be measured by calculating PSNR of watermark and watermarked image.

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Development of Audio Watermark Decoding Model Using Support Vector Machine (Support Vector Machine을 이용한 오디오 워터마크 디코딩 모델 개발)

  • Seo, Yejin;Cho, Sangjin
    • The Journal of the Acoustical Society of Korea
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    • v.33 no.6
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    • pp.400-406
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    • 2014
  • This paper describes a robust watermark decoding model using a SVM(Support Vector Machine). First, the embedding process is performed inversely for a watermarked signal. And then the watermark is extracted using the proposed model. For SVM training of the proposed model, data are generated that are watermarks extracted from sounds containing watermarks by four different embedding schemes. BER(Bit Error Rate) values of the data are utilized to determine a threshold value employed to create training set. To evaluate the robustness, 14 attacks selected in StirMark, SMDI and STEP2000 benchmarking are applied. Consequently, the proposed model outperformed previous method in PSNR(Peak Signal to Noise Ratio) and BER. It is noticeable that the proposed method achieves BER 1% below in the case of PSNR greater than 10 dB.