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Unpacking the black box: Examining the (de)Gender categorization effect in human-machine communication

机译:打开黑盒子的包装:检查人机通信中的(de)Gender分类效果

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Although studies have explored the gender categorization effect in both face-to-face and mediated communication environments in relation to the use of gender-linked language, whether the effect still holds in the context of human-machine communication (HMC) remains unknown. To examine this question, in this study, we asked 245 participants to assign gender categories to targets after viewing transcripts of the targets conversations with a chatbot and a human interlocutor. The results showed that the participants had a better-than-chance probability (68.98%) of correctly guessing the gender of the target based on the target-human conversation transcripts. However, the predictive power of the language cues decreased sharply to a less-than-chance level (42.86%) based on target-chatbot conversation transcripts. We also examined the roles that social media use and demographics played in the gender categorization processes in both computer-mediated communication and HMC contexts. Although far from conclusive, our results suggested that there were significant differences between the styles of conversation in the target-chatbot and target-human interlocutor transcripts. These findings imply that people use different approaches when communicating with human and non-human interlocutors.
机译:尽管研究已经探讨了与使用与性别相关的语言有关的面对面交流和中介交流环境中的性别分类效应,但这种效应是否仍在人机交流(HMC)的背景下仍然存在仍然未知。为了研究这个问题,在这项研究中,我们要求245名参与者在与聊天机器人和人类对话者查看目标对话的笔录后,将性别类别分配给目标。结果显示,参与者根据目标人物与人类的谈话记录正确猜测目标性别的概率要高出几率(68.98%)。但是,根据目标聊天机器人的谈话记录,语言提示的预测能力急剧下降至低于机会水平(42.86%)。我们还检查了社交媒体使用和人口统计在计算机介导的沟通和HMC上下文中在性别分类过程中所扮演的角色。尽管远没有定论,但我们的结果表明,目标聊天机器人和目标人对话者笔录中的谈话方式之间存在显着差异。这些发现暗示人们在与人类和非人类对话者交流时会使用不同的方法。

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