Rotation and scale invariant upsampled log-polar fourier descriptor for copy-move forgery detection

被引:0
|
作者
Chun-Su Park
Changjae Kim
Jihoon Lee
Goo-Rak Kwon
机构
[1] Sejong University,Department of Software
[2] Myongji University,Department of Civil and Environmental Engineering
[3] Sangmyung University,Department of Information and Communication Engineering
[4] Chosun University,Department of Information and Communication Engineering
来源
关键词
Digital image forgery; Copy-move forgery; Upsampled log-polar Fourier features; Common processing pipeline;
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学科分类号
摘要
Digital image forgery is becoming increasingly popular with the rapid progress of digital media editing tools. Copy-move forgery (CMF) is one of the most common methods of digital image forgery. For CMF detection (CMFD), we propose an upsampled log-polar Fourier (ULPF) descriptor that is robust to several geometric transformations including rotation, scaling, sheering, and reflection. We first describe the theoretical background of the ULPF representation. Then, we propose a feature extraction algorithm that can extract rotation and scale invariant features from the ULPF representation. In addition, we analyze the common CMFD processing pipeline and improve a part of processing pipeline to efficiently handle various types of tampering attacks. In our simulation, we present comparative results between the proposed feature descriptor and state-of-the-art ones with proven performance guarantees.
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页码:16577 / 16595
页数:18
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