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The effect of context-dependent information and sentence constructions on perceived humanness of an agent in a Turing test

机译:图灵测验中上下文相关信息和句子结构对代理人感知人性的影响

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In a Turing test, a judge decides whether their conversation partner is either a machine or human. What cues does the judge use to determine this? In particular, are presumably unique features of human language actually perceived as humanlike? Participants rated the humanness of a set of sentences that were manipulated for grammatical construction: linear right-branching or hierarchical center-embedded and their plausibility with regard to world knowledge.We found that center-embedded sentences are perceived as less humanlike than right-branching sentences and more plausible sentences are regarded as more humanlike. However, the effect of plausibility of the sentence on perceived humanness is smaller for center-embedded sentences than for right-branching sentences.Participants also rated a conversation with either correct or incorrect use of the context by the agent. No effect of context use was found. Also, participants rated a full transcript of either a real human or a real chatbot, and we found that chatbots were reliably perceived as less humanlike than real humans, in line with our expectation. We did, however, find individual differences between chatbots and humans.
机译:在图灵测试中,法官决定他们的对话伙伴是机器还是人。法官使用什么线索来确定这一点?特别是,人类语言的独特特征是否真的被视为具有人类特色?参加者对语法构建的一组句子的人性进行了评分:线性右分支或分层中心嵌入以及它们在世界知识方面的合理性。我们发现,中心嵌入的句子比右分支不像人类句子和更合理的句子被认为更人性化。但是,对于中心嵌入的句子来说,句子的合理性对感知人性的影响要比对右分支的句子的影响小。参与者还评估了对话对代理人正确或不正确使用上下文的评价。没有发现使用上下文的影响。此外,参与者对真实人或真实聊天机器人的完整笔录进行了评分,我们发现,与我们的预期相符,聊天机器人被可靠地认为比真实人更不像人类。但是,我们确实发现了聊天机器人和人类之间的个体差异。

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