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The Assumption of a Reliable Instrument and Other Pitfalls to Avoid When Considering the Reliability of Data

机译:在考虑数据可靠性时应避免使用可靠工具的假设和其他陷阱

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The purpose of this article is to help researchers avoid common pitfalls associated with reliability including incorrectly assuming that (a) measurement error always attenuates observed score correlations, (b) different sources of measurement error originate from the same source, and (c) reliability is a function of instrumentation. To accomplish our purpose, we first describe what reliability is and why researchers should care about it with focus on its impact on effect sizes. Second, we review how reliability is assessed with comment on the consequences of cumulative measurement error. Third, we consider how researchers can use reliability generalization as a prescriptive method when designing their research studies to form hypotheses about whether or not reliability estimates will be acceptable given their sample and testing conditions. Finally, we discuss options that researchers may consider when faced with analyzing unreliable data.
机译:本文的目的是帮助研究人员避免与可靠性相关的常见陷阱,包括错误地假设(a)测量误差始终会削弱观察到的分数相关性;(b)不同的测量误差来源均来自同一来源,并且(c)可靠性是仪器功能。为了达到我们的目的,我们首先描述可靠性是什么,以及为什么研究人员应该关注可靠性对效果大小的影响。其次,我们通过评论累积测量误差的后果来回顾如何评估可靠性。第三,我们考虑研究人员在设计研究时如何使用可靠性概括作为一种规定性方法,以形成关于在其样品和测试条件下可靠性估计是否可以接受的假设。最后,我们讨论了研究人员在分析不可靠数据时可能考虑的选项。

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