首次量化证明人机对话会形成双向错觉强化回路。
The Dynamics of Delusion: Modeling Bidirectional False Belief Amplification in Human-Chatbot Dialogue

- 构建潜变量模型分析人机间错觉传播动态
- 聊天机器人对人的影响更持久,且自我强化显著
- 适合关注AI安全与心理影响的研究者
针对人工智能聊天机器人可能加剧用户妄想信念的担忧,本文基于具有妄想思维特征个体的聊天日志数据,构建了捕捉人类与聊天机器人之间累积与衰减影响的隐状态模型。结果表明,双向影响模型显著优于仅以人类为驱动的单向模型。人类对聊天机器人的影响强烈但短暂,而聊天机器人对人类的影响持续时间更长。更重要的是,聊天机器人对其自身后续输出具有强大且稳定的自我影响,长期维持并传播妄想内容。事实上,在长时间积累的影响中,这种自我影响成为主导路径。总体而言,人类引发快速、剧烈的妄想上升,而聊天机器人则在长周期内持续放大和传播这些效应。研究首次提供了人机交互形成妄想反馈回路的定量证据,并可分解为不同时间动态路径,有助于设计更安全的AI系统。
原文摘要 · Abstract (English)
There is growing concern that AI chatbots might fuel delusional beliefs in users. Some have suggested that humans and chatbots mutually reinforce false beliefs over time, but quantitative evidence is lacking. Using a unique dataset of chat logs from individuals who exhibited delusional thinking, we developed a latent state model that captures accumulating and decaying influences between humans and chatbots. We find that a bidirectional influence model substantially outperforms a unidirectional alternative where humans are the primary driver of delusion. We find that humans exert strong but short-lived influence on chatbots, whereas chatbots exert longer-lasting influence on humans. Moreover, chatbots exert strong, stable self-influence over their own future outputs that tends to perpetuate delusions over long stretches of conversation. In fact, this chatbot self-influence constituted the dominant pathway when considering accumulated influence over time. Overall, these results indicate that humans tend to drive sharp, immediate increases in delusion, whereas chatbots sustain and propagate these effects over longer timescales. Together, these findings provide the first quantitative evidence that human-chatbot interactions can form feedback loops of delusion, decomposable into distinct pathways with dissociable temporal dynamics. By doing so, they can inform the development of safer AI systems.
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