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Identifying single necessary conditions with NCA and fsQCA

机译:使用NCA和fsQCA识别单个必要条件

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摘要

Single necessary (but not sufficient) conditions are critically important for business theory and practice. Without them, the outcomes cannot occur, and other conditions cannot compensate for this absence. Currently two analytical approaches are available for identifying single necessary conditions: Necessary Condition Analysis (NCA), which was recently developed, and fuzzy-set qualitative comparative analysis (fsQCA), which is a more established approach. FsQCA normally focuses on sufficient but not necessary configurations, but can also identify necessary but not sufficient conditions. This study uses NCA to analyze two examples of empirical datasets published in the journal of Business Research that use fsQCA to identify single necessary conditions. A comparison of the results of NCA and fsQCA shows that NCA can identify more necessary conditions than fsQCA and can specify the level of the condition that is required for a given level of the outcome. (c) 2015 Elsevier Inc. All rights reserved.
机译:单一的必要条件(但不是充分条件)对于业务理论和实践至关重要。没有它们,结果就不会发生,其他条件也无法弥补这种缺席。当前,有两种分析方法可用于识别单个必要条件:最近开发的必要条件分析(NCA)和更为成熟的模糊集定性比较分析(fsQCA)。 FsQCA通常着重于充分但非必要的配置,但也可以确定必要但非充分的条件。这项研究使用NCA分析了《商业研究》杂志上发布的两个经验数据集示例,这些示例使用fsQCA来识别单个必要条件。 NCA和fsQCA结果的比较显示,NCA比fsQCA可以识别更多必要的条件,并且可以指定给定结果水平所需的条件水平。 (c)2015 Elsevier Inc.保留所有权利。

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