在聊天中使用击键动力学检测说谎者

Parisa Rezaee Borj, Patrick A. H. Bours
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引用次数: 2

摘要

在本文中,我们将研究在聊天室中发现具有不同身份的说谎者的可能性。当使用不同的身份时,人们可能需要更多的时间来回答聊天伙伴的问题,或者可能使用更正来更改他们的文本以避免他们的答案不一致。这些问题将导致打字行为的差异,这可以通过打字节奏来衡量。我们在本文中表明,我们可以以很高的准确性区分使用自己身份并在回答中诚实的人的聊天,以及说谎的人的聊天,因为他/她的回答需要与假设的身份一致。我们获得了对聊天中单个消息的正确分类,准确率超过70%,对整个聊天的正确分类准确率超过90%。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Detecting Liars in Chats using Keystroke Dynamics
In this paper we will investigate the possibilities for detecting liars in chat rooms who have taken on a different identity. While using a different identity people might require more time to reply to questions of the chat partner, or might use corrections to change their text to avoid inconsistencies in their answers. These issues will cause differences in the typing behavior, which can be measured in the typing rhythm. We have shown in this paper that, with a high accuracy, we can distinguish between a chat of a person who uses his/her own identity and is honest in his/her answers, and a chat of a person who is lying because his/her answers need to be consistent to an assumed identity. We obtained a correct classification of a single message in a chat with an accuracy of more than 70% and a correct classification of a full chat with well over 90% accuracy.
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