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PANDORA: Preserving Privacy in PRNU-Based Source Camera Attribution

机译:PANDORA:在基于PRNU的源摄像机归因中保留隐私

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摘要

Photo Response Non-Uniformity (PRNU) noise-based source camera attribution is a popular digital forensic method. In this method, a camera fingerprint computed from a set of known images of the camera is matched against the extracted noise of an anonymous questionable image to find if the camera had taken the anonymous image. The possibility of privacy leak, however, is one of the main concerns of the PRNU-based method. Using the camera fingerprint (or the extracted noise), an adversary can identify the owner of the camera by matching the fingerprint with the noise of an image (or with the fingerprint computed from a set of images) crawled from a social media account. In this paper, we address this privacy concern by encrypting both the fingerprint and the noise using the Boneh-Goh-Nissim (BGN) encryption scheme, and performing the matching in encrypted domain. To overcome leakage of privacy from the content of an image that is used in the fingerprint calculation, we compute the fingerprint within a trusted environment, such as ARM TrustZone. We present PANDORA that aims at minimizing privacy loss and allows authorized forensic experts to perform camera attribution.
机译:基于光响应非均匀性(PRNU)噪声的源摄像机归因是一种流行的数字取证方法。在该方法中,将从摄像机的一组已知图像中计算出的摄像机指纹与匿名可疑图像的提取噪声进行匹配,以查找摄像机是否拍摄了匿名图像。但是,隐私泄露的可能性是基于PRNU的方法的主要关注之一。使用摄像机指纹(或提取的噪声),对手可以通过将指纹与从社交媒体帐户爬网的图像噪声(或从一组图像中计算出的指纹)进行匹配来识别摄像机的所有者。在本文中,我们通过使用Boneh-Goh-Nissim(BGN)加密方案对指纹和噪声进行加密,并在加密域中执行匹配,来解决此隐私问题。为了克服指纹计算中使用的图像内容的隐私泄露,我们在可信环境(例如ARM TrustZone)中计算指纹。我们提供的PANDORA旨在最大程度地减少隐私损失,并允许授权的法医专家执行摄像机归属。

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