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1

Robust HEVC Video Watermarking Scheme Based on Repetition-BCH Syndrome Code SCOPUS

Ali A.Elrowayati, M.F.L. Abdullah, Azizah Abd Manaf, Abd. S. Alfagi

보안공학연구지원센터(IJSEIA) International Journal of Software Engineering and Its Applications Vol.10 No.1 2016.01 pp.263-270

※ 원문제공기관과의 협약기간이 종료되어 열람이 제한될 수 있습니다.

High efficiency video coding (HEVC) was recently introduced two years ago as the new standard for video coding. This new codec will be the most widely prevalent standard. Because of the industry needs for authentication and copyright protection methodologies the robustness of this standard is required to be developed. This paper presents the first robust digital watermarking method for the HEVC based on Repetition- BCH syndrome code technique without intra-frame distortion drift. The objective of this article is to implement a new technique that can offer high robustness against noise channel errors and increase the error detection rate in the HEVC video sequences transmitted over noisy communication channels. The proposed technique does not significantly affect the video quality, nor does it escalate the bitrate. The results show that the proposed technique offers greater robustness against noise channel while preserving good quality for extracted watermark. The proposed technique significantly contributes to the performance of the error detection and correction. In addition, this technique can recover the watermark when the watermarked frames dropping rate is less than 20%.

2

펄스 반복 주파수 코드에 동기된 출력 가변형 레이저 다이오드 드라이버 구현

이영주, 김용평

[Kisti 연계] 대한전기학회 電氣學會論文誌 Vol.64 No.5 2015 pp.746-750

※ 협약을 통해 무료로 제공되는 자료로, 원문이용 방식은 연계기관의 정책을 따르고 있습니다.

원문보기

In this paper, we propose a simulator to evaluate the performance of the semi-active laser guidance or the quadrant photodetector and to simulate the laser power reflected from a target. The laser pulse repetition frequency was generated and synchronized with the laser pulse repetition(PRF) code. To evaluate the performances of the proposed methods, we implemented a prototype system and performed experiments. As a result, the generated high voltage was variable in the range of DC 3V to 340V and has the rate of change of 2000 V/s. PRF code can be generated within 50ms ∼ 100ms and the error is implemented within 0.3ns. The laser output is synchronized with the PRF code and has a dynamic range of 23.6dB.

 
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