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Default to truth in information behavior: a proposed framework for understanding vulnerability to deceptive information

机译:违约行为:真理信息提出了框架的理解易受欺骗的信息

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Purpose - This study aims to recognize the challenge of identifying deceptive information and provides a framework for thinking about how we as humans negotiate the current media environment filled with misinformation and disinformation.Design/methodology/approach - This study reviews the influence of Wilson's (2016) General Theory of Information Behavior (IB) in the field of information science (IS) before introducing Levine's Truth-Default Theory (TDT) as a method of deception detection. By aligning Levine's findings with published scholarship on IB, this study illustrates the fundamental similarities between TDT and existing research in IS.Findings - This study introduces a modification of Wilson's work which incorporates truth-default, translating terms to apply this theory to the broader area of IB rather than Levine's original face-to-face deception detection.Originality/value - False information, particularly online, continues to be an increasing problem for both individuals and society, yet existing IB models cannot not amount for the necessary step of determining the truth or falsehood of consumed information. It is critical to integrate this crucial decision point in this study's IB models (e.g. Wilson's model) to acknowledge the human tendency to default to truth and thus providing a basis for studying the twin phenomena of misinformation and disinformation from an IS perspective. Moreover, this updated model for IB contributes the Truth Default Framework for studying how people approach the daunting task of determining truth, reliability and validity in the immense number of news items, social media posts and other sources of information they encounter daily. By understanding and recognizing our human default to truth/trust, we can start to understand more about our vulnerability to misinformation and disinformation and be more prepared to guard against it.
机译:目的:本研究旨在识别识别欺骗性信息的挑战并为思考提供了一个框架我们作为人类当前媒体谈判充满了错误和环境造谣。研究评论的影响,威尔逊(2016)一般理论的信息行为(IB)信息科学领域(是)引入Levine Truth-Default理论(TDT)作为欺骗的方法检测。莱文的发现与学术出版IB,这项研究说明了基本相似性TDT)和现有的研究是多少。修改了威尔逊的工作truth-default、翻译方面应用IB的更广泛的区域,而不是理论莱文的原始面对面的欺骗检测。尤其是在网络上,仍然是一个对个人和增加问题社会,然而现有的IB模型不能没有为确定真理的必要步骤或虚假的消费信息。集成这一关键决策点的关键在这个研究的IB模型(如。威尔逊的模型)承认人类倾向于默认真理,因此研究提供依据错误信息和孪生现象虚假信息从一个角度。这对IB贡献真相更新模型默认框架研究人们如何方法确定真理的艰巨的任务,巨大数量的信度和效度新闻、社交媒体文章和其他来源每天遇到的信息。了解和认识我们人类违约真理/信任,我们可以开始了解更多对我们的错误和漏洞造谣,更准备反对它。

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