IS Atlas
jmis·2004년 3월 1일

A Comparison of Classification Methods for Predicting Deception in Computer-Mediated Communication

Lina Zhou, Judee K. Burgoon, Douglas P. Twitchell, Tiantian Qin, Jay F. Nunamaker

Journal of Management Information Systems

251
피인용
10.7
FWCI
16
IS/마케팅/OM 탑저널 피인용
38
IS/마케팅/OM 탑저널 참고문헌
01Abstract

Abstract The increased chance of deception in computer-mediated communication and the potential risk of taking action based on deceptive information calls for automatic detection of deception. To achieve the ultimate goal of automatic prediction of deception, we selected four common classification methods and empirically compared their performance in predicting deception. The deception and truth data were collected during two experimental studies. The results suggest that all of the four methods were promising for predicting deception with cues to deception. Among them, neural networks exhibited consistent performance and were robust across test settings. The comparisons also highlighted the importance of selecting important input variables and removing noise in an attempt to enhance the performance of classification methods. The selected cues offer both methodological and theoretical contributions to the body of deception and information systems research. Keywords: classification methodsdeceptiondeception detectionlinguistic cues

02연구 흐름

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03비슷한 논문

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04이후 연구

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05선행 연구

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06서지 정보