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LEARNED FORENSIC SOURCE SYSTEM FOR IDENTIFICATION OF IMAGE CAPTURE DEVICE MODELS AND FORENSIC SIMILARITY OF DIGITAL IMAGES
LEARNED FORENSIC SOURCE SYSTEM FOR IDENTIFICATION OF IMAGE CAPTURE DEVICE MODELS AND FORENSIC SIMILARITY OF DIGITAL IMAGES
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机译:识别图像捕获设备模型和数字图像的法医相似性的学识鉴证系统
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摘要
Information about an image's source camera model is important knowledge in many forensic investigations. In this paper the system (s) pro- pose a system that compares two image patches to determine if they were captured by the same camera model. To do this, the system (s) first train a CNN based feature extractor to output generic, high level features which encode information about the source camera model of an image patch. Then, the system (s) learn a similarity measure that maps pairs of these features to a score indicating whether the two image patches were captured by the same or different camera models. The system (s) show that the proposed system accurately determines if two patches were captured by the same or different camera models, even when the camera models are unknown to the investigator. The system (s) also demonstrate the utility of this approach for image splicing detection and localization.
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