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Assessing new empirical industrial organization (NEIO) methods: The cases of five industries

机译:评估新的经验产业组织(NEIO)方法:五个行业的案例

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The methods proposed in the new empirical industrial organization (NEIO) literature have made significant contributions to our understanding of competitive behavior. However, these methods have yet to be compared with each other for their performance in explaining and diagnosing competitive market conduct. This inter-method comparison is important because conclusions about competitive behavior based on these methods have significant strategic as well as policy implications for firms. Our objective in this paper is to examine the performance of these different NEIO methods in terms of their discriminatory power, ability to identify strategic variables, and robustness in estimation. For empirical demonstration, we use data from diverse industries such as microprocessors, personal computers, facial tissue, disposable diapers and automobiles. Our results suggest that two commonly used NEIO methods-conjectural variation and non-nested model comparison-exhibit quite good convergence with each other and are consistent with a traditional time series method. This suggests that simpler methods such as conjectural variations deserve more credit. We also find that using these methods in tandem provides valuable additional information that may not be available when using any one method alone. While the emphasis in this study is on comparing different methods of analyzing competitive interaction, the findings also reveal some substantive insights about each market studied.
机译:新的经验工业组织(NEIO)文献中提出的方法为我们对竞争行为的理解做出了重要贡献。但是,这些方法在解释和诊断竞争性市场行为方面的性能尚未相互比较。这种方法间的比较很重要,因为基于这些方法得出的有关竞争行为的结论对公司具有重要的战略和政策意义。本文的目的是根据这些NEIO方法的区分能力,识别战略变量的能力以及估计的鲁棒性来检查其性能。为了进行经验证明,我们使用了来自不同行业的数据,例如微处理器,个人计算机,面巾纸,一次性尿布和汽车。我们的结果表明,两种常用的NEIO方法(猜想变异法和非嵌套模型比较法)相互之间具有很好的收敛性,并且与传统的时间序列方法一致。这表明,更简单的方法(例如推测变量)应得到更多的赞誉。我们还发现,串联使用这些方法可提供有价值的附加信息,而单独使用任何一种方法时可能无法获得这些信息。尽管本研究的重点是比较分析竞争相互作用的不同方法,但研究结果还揭示了有关每个研究市场的实质性见解。

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