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Picture-to-Identity linking of social network accounts based on Sensor Pattern Noise

机译:基于传感器模式噪声的社交网络帐户的图片到身份链接

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摘要

The widespread diffusion of digital imaging devices fuelled a growing interest on photo sharing through social networks. Nowadays, Internet users continuously leave visual “traces” of their presence and life on the Internet, which can constitute precious data for forensic investigators. Digital Image Forensics tools are used to analyse such images and collect evidences. One of such tools is the Sensor Pattern Noise (SPN), that is, an unique “fingerprint” left on a picture by the source camera sensor. In this paper, we propose and experimentally test a novel usage of SPN, to find social network accounts belonging to a person of interest, who has shot a given photo. We name this task Picture-to-Identity linking, and believe it can be useful in a variety of forensic cases, e.g., finding stolen camera devices, cyber-bullying, or on-line child abuse. We evaluate two methods for Picture-to-Identity linking based on two existing SPN comparison techniques, on a benchmark data set of publicly accessible social network accounts collected from the Internet. The reported results are promising and show that such technique has a practical value for forensic practitioners.
机译:数字成像设备的广泛普及引发了人们对通过社交网络共享照片的兴趣日益浓厚。如今,互联网用户不断在互联网上留下他们的存在和生活的视觉“痕迹”,这可以构成法医调查人员的宝贵数据。数字图像取证工具用于分析此类图像并收集证据。其中一种工具是传感器图案噪声(SPN),即源相机传感器在图片上留下的唯一“指纹”。在本文中,我们提出并实验性地测试了SPN的新颖用法,以查找属于拍摄了给定照片的感兴趣的人的社交网络帐户。我们将这个任务命名为“图片到身份”链接,并且认为它在各种法医案例中都非常有用,例如,找到被盗的摄像头设备,网络欺凌或在线虐待儿童。我们基于从Internet收集的可公开访问的社交网络帐户的基准数据集,基于两种现有的SPN比较技术,评估了两种用于图片到身份链接的方法。报道的结果是有希望的,并且表明这种技术对于法医从业者具有实用价值。

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