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Quantile regression for Panel data: An empirical approach for knowledge spillovers endogeneity

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  • Aldieri, Luigi
  • Vinci, Concetto Paolo

Abstract

The aim of this paper is to investigate the extent to which knowledge spillovers effects are sensitive to different levels of innovation. We develop a theoretical model in which the core of spillover effect is showed and then we implement the empirical model to test for the results. In particular, we run the quantile regression for panel data estimator (Baker, Powell and Smith, 2016), to correct the bias stemming from the endogenous regressors in a panel data sample. The findings identify a significant heterogeneity of technology spillovers across quantiles: the highest value of spillovers is observed at the lowest quartile of innovation distribution. The results might be interpreted to provide some useful implications for industrial policy strategy

Suggested Citation

  • Aldieri, Luigi & Vinci, Concetto Paolo, 2017. "Quantile regression for Panel data: An empirical approach for knowledge spillovers endogeneity," MPRA Paper 76405, University Library of Munich, Germany.
  • Handle: RePEc:pra:mprapa:76405
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    References listed on IDEAS

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    More about this item

    Keywords

    Innovation; Spillovers; Quantile regression; Knowledge diffusion;
    All these keywords.

    JEL classification:

    • C21 - Mathematical and Quantitative Methods - - Single Equation Models; Single Variables - - - Cross-Sectional Models; Spatial Models; Treatment Effect Models
    • O32 - Economic Development, Innovation, Technological Change, and Growth - - Innovation; Research and Development; Technological Change; Intellectual Property Rights - - - Management of Technological Innovation and R&D
    • O33 - Economic Development, Innovation, Technological Change, and Growth - - Innovation; Research and Development; Technological Change; Intellectual Property Rights - - - Technological Change: Choices and Consequences; Diffusion Processes

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