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Determining Image Origin and Integrity Using Sensor Noise

机译:使用传感器噪声确定图像来源和完整性

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摘要

In this paper, we provide a unified framework for identifying the source digital camera from its images and for revealing digitally altered images using photo-response nonuniformity noise (PRNU), which is a unique stochastic fingerprint of imaging sensors. The PRNU is obtained using a maximum-likelihood estimator derived from a simplified model of the sensor output. Both digital forensics tasks are then achieved by detecting the presence of sensor PRNU in specific regions of the image under investigation. The detection is formulated as a hypothesis testing problem. The statistical distribution of the optimal test statistics is obtained using a predictor of the test statistics on small image blocks. The predictor enables more accurate and meaningful estimation of probabilities of false rejection of a correct camera and missed detection of a tampered region. We also include a benchmark implementation of this framework and detailed experimental validation. The robustness of the proposed forensic methods is tested on common image processing, such as JPEG compression, gamma correction, resizing, and denoising.
机译:在本文中,我们提供了一个统一的框架,用于从源数码相机的图像中识别源数码相机,以及使用光响应非均匀性噪声(PRNU)来显示数字化更改后的图像,该图像是成像传感器的独特随机指纹。使用从传感器输出的简化模型得出的最大似然估计器获得PRNU。然后,通过检测被调查图像的特定区域中传感器PRNU的存在,可以完成这两个数字取证任务。该检测公式化为假设检验问题。使用小图像块上的测试统计量的预测变量可以获得最佳测试统计量的统计分布。预测器可以对正确摄像机的错误拒绝和篡改区域的漏检概率进行更准确和有意义的估计。我们还包括此框架的基准实施和详细的实验验证。在常见的图像处理(例如JPEG压缩,伽玛校正,大小调整和去噪)上测试了所提出的取证方法的鲁棒性。

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