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How to Understand Behavioral Patterns in Big Data: The Case of Human Collective Memory

机译:如何理解大数据中的行为模式:以人类集体记忆为例

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Simple patterns often arise from complex systems. For example, human perception of similarity decays exponentially with perceptual distance. The ranking of word usage versus the frequency at which the words are used has a log-log slope of minus one. Recent advances in big data provide an opportunity to characterize the commonly observed patterns of behavior. Those observed regularities set the challenge of understanding the mechanistic processes that generate common behaviors. This article illustrates the problem with the recent big data analysis of collective memory. Collective memory follows a simple biexponential pattern of decay over time. An initial rapid decay is followed by a slower, longer lasting decay. Candia et al. successfully fit a two stage model of mechanistic process to that pattern. Although that fit is useful, this article emphasizes the need, in big data analyses, to consider a broad set of alternative causal explanations. In this case, the method of signal frequency analysis yields several simple alternative models that generate exactly the same observed pattern of collective memory decay. This article concludes that the full potential of big data analyses in the behavioral sciences will require better methods for developing alternative, empirically testable causal models.
机译:简单的模式通常来自复杂的系统。例如,人类对相似性的感知随着感知距离呈指数下降。单词使用率与单词使用频率的排名具有对数-log斜率为-1。大数据的最新进展为描述通常观察到的行为模式提供了机会。这些观察到的规律性对理解产生常见行为的机械过程提出了挑战。本文说明了最近对集合内存进行大数据分析的问题。集体记忆遵循随时间衰减的简单双指数模式。最初的快速衰减之后是较慢,较长的衰减。 Candia等。成功地将机械过程的两阶段模型拟合到该模式。尽管这种拟合是有用的,但本文强调在大数据分析中需要考虑广泛的替代因果关系解释。在这种情况下,信号频率分析方法会产生几个简单的替代模型,这些模型会生成与集体记忆衰减完全相同的观察模式。本文的结论是,行为科学中的大数据分析的全部潜力将需要更好的方法来开发可供选择的,可凭经验检验的因果模型。

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