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Training Computers to See Internet Pornography: Gender and Sexual Discrimination in Computer Vision Science

机译:培训计算机以查看互联网色情内容:计算机视觉科学中的性别和性别歧视

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This article critically examines computer vision-based pornography filtering (CVPF), a subfield in computer science seeking to train computers on how to recognize the difference between digital pornographic images and nonpornographic images. Based on a review of 102 peer-reviewed CVPF articles, we argue that CVPF has as a whole trained computers to see a very specific, idealized form of pornography: pictures of lone, thin, naked women. The article supports this argument by closely reading the algorithms proposed in the CVPF literature and quantitatively analyzing the images included as illustrations of these algorithms. Drawing on pornography studies, we also compare the CVPF pornographic imagination with noisy pornography that exceeds computer vision. Ultimately, the article argues that this very narrow imagination of porn in CVPF reflects and reinforces larger gender and sexual inequalities in the technology industry as a whole.
机译:本文严格审查了基于计算机视觉的色情过滤(CVPF),这是计算机科学的一个子领域,旨在就如何识别数字色情图像和非色情图像之间的差异对计算机进行培训。基于对102篇经过同行评审的CVPF文章的评论,我们认为CVPF具有受过整体培训的计算机,可以看到一种非常特殊的,理想化的色情制品形式:孤独,瘦弱,裸体的女性照片。本文通过仔细阅读CVPF文献中提出的算法并定量分析作为这些算法说明的图像来支持这一论点。利用色情研究,我们还将CVPF色情想象力与超出计算机视觉的嘈杂色情内容进行了比较。最终,文章认为CVPF中对色情片的这种狭this的想象反映并加剧了整个技术行业中更大的性别和性不平等现象。

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