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首页> 外文期刊>Forensic science international >Image features dependant correlation-weighting function for efficient PRNU based source camera identification
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Image features dependant correlation-weighting function for efficient PRNU based source camera identification

机译:图像具有基于PRNU的有效PRNU源相机识别的依赖相关性加权功能

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摘要

For source camera identification (SCI), photo response non-uniformity (PRNU) has been widely used as the fingerprint of the camera. The PRNU is extracted from the image by applying a de-noising filter then taking the difference between the original image and the de-noised image. However, it is observed that intensity-based features and high-frequency details (edges and texture) of the image, effect quality of the extracted PRNU. This effects correlation calculation and creates problems in SCI. For solving this problem, we propose a weighting function based on image features. We have experimentally identified image features (intensity and high-frequency contents) effect on the estimated PRNU, and then develop a weighting function which gives higher weights to image regions which give reliable PRNU and at the same point it gives comparatively less weights to the image regions which do not give reliable PRNU. Experimental results show that the proposed weighting function is able to improve the accuracy of SCI up to a great extent. (c) 2018 Elsevier B.V. All rights reserved.
机译:对于源相机识别(SCI),照片响应非均匀性(PRNU)已被广泛用作相机的指纹。通过施加去噪滤波器然后取得原始图像和去噪图像之间的差异来从图像中提取PRNU。然而,观察到图像的强度的特征和高频细节(边缘和纹理),提取的PRNU的效果质量。这效果相关计算并在SCI中产生问题。为了解决这个问题,我们提出了一种基于图像特征的加权函数。我们对估计的PRNU进行了实验识别的图像特征(强度和高频内容)效应,然后开发一个加权函数,其给图像区域提供更高的图像区域,其给予可靠的PRNU,并且在相同的点处给出相同的重量没有给予可靠的prnu的地区。实验结果表明,所提出的加权功能能够在很大程度上提高SCI的准确性。 (c)2018 Elsevier B.v.保留所有权利。

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