COSMOS on Steroids: a Cheap Detector for Cheapfakes

Tankut Akgul, T. Civelek, Deniz Ugur, A. Begen
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引用次数: 11

Abstract

The growing prevalence of visual disinformation has become an important problem to solve nowadays. Cheapfake is a new term used for the altered media generated by non-AI techniques. In their recent COSMOS work, the authors developed a self-supervised training strategy that detected whether different captions for a given image were out-of-context, meaning that even though pointing to the same object(s) in the image, the captions implied different meanings. In this paper, we propose four methods to improve the detection accuracy of COSMOS. These methods range from differential sensing and fake-or-fact checking that detect contradicting or fake captions to object-caption matching and threshold adjustment that modify the baseline algorithm for improved accuracy.
类固醇上的COSMOS:廉价假货的廉价探测器
越来越普遍的视觉虚假信息已成为当今亟待解决的一个重要问题。Cheapfake是一个新名词,用来指由非人工智能技术生成的被篡改的媒体。在他们最近的COSMOS工作中,作者开发了一种自我监督的训练策略,可以检测给定图像的不同标题是否脱离上下文,这意味着即使指向图像中相同的对象,标题也意味着不同的含义。本文提出了四种提高COSMOS检测精度的方法。这些方法的范围从检测矛盾或虚假标题的差分传感和虚假或事实检查到修改基线算法以提高准确性的目标标题匹配和阈值调整。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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