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Augmenting human intellect: Automatic recognition of nonverbal behavior with application in deception detection.

机译:增强人类智力:自动识别非语言行为并将其应用于欺骗检测。

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摘要

Humans have long sought to use technology to augment human abilities and intellect. However, technology is traditionally employed only to create speedier solutions or morerapid comprehension. A more challenging endeavor is to enable humans with technology to gain additional or enhanced comprehension that may not be possible to acquire otherwise. One such application is the use of technology to augment human abilities in detecting deception using nonverbal cues. Detecting deception is often critical, whether an individual is communicating with a close friend, negotiating a business deal, or screening individuals at a security checkpoint.; The detection of deception is a challenging endeavor. A variety of studies have shown that humans have a hard time accurately discriminating deception from truth, and only do so slightly better than chance. Several deception detection methods exist; however, most of these are invasive and require a controlled environment.; This dissertation presents a technological approach to detecting deception based on kinesic (i.e., movement-based) and vocalic (i.e., sounds associated with the voice) cues that is firmly grounded in deception theory and past empirical studies. This noninvasive approach overcomes some of the weaknesses of other deception detection methods as it can be used in a natural environment without cooperation from the individual of interest.; The automatable approach demonstrates potential for increasing humans' ability to correctly identify those who display behaviors indicative of deception. The approach 14 was evaluated using experimental and field data. The results of repeated measures analysis of variance, linear regression and discriminant function analysis suggest that the use of such a system could augment human abilities in detecting deception by as much as 15-25%. While there are a number of technical challenges that need to be addressed before such a system could be deployed in the field, there are numerous environments where it would be potentially useful.
机译:长期以来,人类一直试图使用技术来增强人类的能力和智力。但是,传统上仅采用技术来创造更快的解决方案或更快的理解力。更具挑战性的工作是使拥有技术的人们获得其他方式可能无法获得的额外或增强的理解力。一种这样的应用是使用技术来增强人类使用非语言线索检测欺骗的能力。无论个人是与密友交流,商谈交易还是在安全检查站筛选个人,检测欺骗都是至关重要的。欺骗的检测是一项具有挑战性的工作。各种各样的研究表明,人类很难准确地将欺骗与真相区分开,这样做的确比偶然要好。存在几种欺骗检测方法。但是,其中大多数是侵入性的,需要受控的环境。本论文提出了一种基于运动学(即基于运动)和人声(即与声音相关的声音)线索来检测欺骗的技术方法,该方法牢固地基于欺骗理论和过去的经验研究。这种非侵入性方法克服了其他欺骗检测方法的一些缺点,因为它可以在自然环境中使用,而无需相关个人的合作。自动化方法展示了增强人类正确识别显示欺骗行为的能力的潜力。使用实验和现场数据评估方法14。重复测量方差分析,线性回归和判别函数分析的结果表明,使用这种系统可以使人类检测欺骗的能力提高15-25%。尽管在将这样的系统部署到现场之前需要解决许多技术难题,但在许多环境中它可能会很有用。

著录项

  • 作者

    Meservy, Thomas Oliver.;

  • 作者单位

    The University of Arizona.$bManagement.;

  • 授予单位 The University of Arizona.$bManagement.;
  • 学科 Speech Communication.; Information Science.
  • 学位 Ph.D.
  • 年度 2007
  • 页码 233 p.
  • 总页数 233
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 语言学;信息与知识传播;
  • 关键词

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