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Run-Length and Edge Statistics Based Approach for Image Splicing Detection

机译:基于游程长度和边缘统计的图像拼接检测方法

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摘要

In this paper, a simple but efficient approach for blind image splicing detection is proposed. Image splicing is a common and fundamental operation used for image forgery. The detection of image splicing is a preliminary but desirable study for image forensics. Passive detection approaches of image splicing are usually regarded as pattern recognition problems based on features which are sensitive to splicing. In the proposed approach, we analyze the discontinuity of image pixel correlation and coherency caused by splicing in terms of image run-length representation and sharp image characteristics. The statistical features extracted from image run-length representation and image edge statistics are used for splicing detection. The support vector machine (SVM) is used as the classifier. Our experimental results demonstrate that the two proposed features outperform existing ones both in detection accuracy and computational complexity.
机译:本文提出了一种简单而有效的盲图像拼接检测方法。图像拼接是用于图像伪造的常见且基本的操作。图像拼接的检测是图像取证的初步但可取的研究。图像拼接的被动检测方法通常被认为是基于对拼接敏感的特征的模式识别问题。在提出的方法中,我们从图像游程长度表示和清晰图像特征方面分析了拼接引起的图像像素相关性和相干性的不连续性。从图像游程表示和图像边缘统计中提取的统计特征用于拼接检测。支持向量机(SVM)用作分类器。我们的实验结果表明,在检测精度和计算复杂度上,这两个建议的特征均优于现有特征。

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