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Human Bias in the Face of AI: Examining Human Judgment Against Text Labeled as AI Generated
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本文通过实验分析人类对AI生成内容的偏见,指出人类更倾向于选择标注为“人类生成”的内容,即使标签被故意调换,这种现象具有社会和认知层面的影响。

arXiv:2410.03723v2 Announce Type: replace-cross Abstract: As AI advances in text generation, human trust in AI generated content remains constrained by biases that go beyond concerns of accuracy. This study explores how bias shapes the perception of AI versus human generated content. Through three experiments involving text rephrasing, news article summarization, and persuasive writing, we investigated how human raters respond to labeled and unlabeled content. While the raters could not differentiate the two types of texts in the blind test, they overwhelmingly favored content labeled as "Human Generated," over those labeled "AI Generated," by a preference score of over 30%. We observed the same pattern even when the labels were deliberately swapped. This human bias against AI has broader societal and cognitive implications, as it undervalues AI performance. This study highlights the limitations of human judgment in interacting with AI and offers a foundation for improving human-AI collaboration, especially in creative fields.

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AI生成内容 人类偏见 社会认知
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