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Detecting Deceptive Chat-Based Communication Using Typing Behavior and Message Cues

机译:使用键入行为和消息提示来检测基于欺骗性聊天的通信

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摘要

Computer-mediated deception is prevalent and may have serious consequences for individuals, organizations, and society. This article investigates several metrics as predictors of deception in synchronous chat-based environments, where participants must often spontaneously formulate deceptive responses. Based on cognitive load theory, we hypothesize that deception influences response time, word count, lexical diversity, and the number of times a chat message is edited. Using a custom chatbot to conduct interviews in an experiment, we collected 1,572 deceitful and 1,590 truthful chat-based responses. The results of the experiment confirm that deception is positively correlated with response time and the number of edits and negatively correlated to word count. Contrary to our prediction, we found that deception is not significantly correlated with lexical diversity. Furthermore, the age of the participant moderates the influence of deception on response time. Our results have implications for understanding deceit in chat-based communication and building deception-detection decision aids in chat-based systems.
机译:计算机介导的欺骗行为很普遍,可能对个人,组织和社会造成严重后果。本文研究了几种指标,这些指标在基于同步聊天的环境中是欺骗的预测因素,在这种环境中,参与者必须经常自发地制定欺骗性反应。基于认知负荷理论,我们假设欺骗会影响响应时间,字数,词法多样性以及聊天消息被编辑的次数。在实验中,使用定制的聊天机器人进行访谈,我们收集了1,572个欺骗性和1,590个基于聊天的真实响应。实验结果证实,欺骗与响应时间和编辑次数呈正相关,与字数呈负相关。与我们的预测相反,我们发现欺骗与词汇多样性没有显着相关。此外,参与者的年龄减轻了欺骗对响应时间的影响。我们的结果对理解基于聊天的通信中的欺骗行为以及在基于聊天的系统中构建欺骗检测决策辅助手段具有启示意义。

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