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News Image Steganography: A Novel Architecture Facilitates the Fake News Identification

机译:新闻图像隐写术:一种新颖的建筑促进了假新闻识别

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A larger portion of fake news quotes untampered images from other sources with ulterior motives rather than conducting image forgery. Such elaborate engraftments keep the inconsistency between images and text reports stealthy, thereby, palm off the spurious for the genuine. This paper proposes an architecture named News Image Steganography (NIS) to reveal the aforementioned inconsistency through image steganography based on GAN. Extractive summarization about a news image is generated based on its source texts, and a learned steganographic algorithm encodes and decodes the summarization of the image in a manner that approaches perceptual invisibility. Once an encoded image is quoted, its source summarization can be decoded and further presented as the ground truth to verify the quoting news. The pairwise encoder and decoder endow images of the capability to carry along their imperceptible summarization. Our NIS reveals the underlying inconsistency, thereby, according to our experiments and investigations, contributes to the identification accuracy of fake news that engrafts untampered images.
机译:一部分虚假的新闻引用来自其他来源的未经歧视的图像,而不是别有机动机,而不是进行图像伪造。这种精心植入的植入保持图像与文本之间的不一致性,从而掌握了真实的虚假。本文提出了一种名为新闻图像隐写术(NIS)的建筑,以揭示通过基于GaN的图像隐写术的上述不一致。基于其源文本生成关于新闻图像的提取摘要,并且以涉及感知隐形的方式编码和解码图像的概括并解码图像的概括。一旦引用了编码的图像,可以解码其源概要并进一步呈现为基础事实以验证引用新闻。成对编码器和解码器跨越易于概述概述的能力的图像。我们的NIS揭示了潜在的不一致,从而根据我们的实验和调查,有助于识别不歧视图像的假新闻的识别准确性。

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