A Schumpeterian growth model with random quality improvements

A Schumpeterian growth model with random quality improvements
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具有随机质量改进的熊彼特增长模型

DOI:
10.1007/s00199-011-0664-0
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发表时间:
2013
期刊:
影响因子:
1.3
通讯作者:
P. Segerstrom
P. Segerstrom
中科院分区:
经济学3区
文献类型:
--
作者:
Antonio Minniti;C. Parello;P. Segerstrom

文献摘要

被引文献

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熊彼特增长理论中的一个常见假设是,创新规模是恒定的,并且在各个行业都是相同的。这与以下经验证据相反:(1)不同产业的创新规模不同;(2)创新利润的规模分布向低价值侧倾斜,高价值侧的尾部较长。在本文中,我们开发了一个熊彼特增长模型,这是与这一证据相一致。特别是,我们假设,当一个公司创新,其质量改进的大小是从帕累托分布随机抽取的结果。这使我们能够扩展类的质量阶梯增长模型,包括企业的异质性。我们研究了这一新的设置数值的政策含义,并发现这是最佳的,以大量补贴的R&D合理的参数值。虽然对某些参数值的R&D征税是最优的,但这种情况只发生在稳态经济增长率非常低的情况下。
A common assumption in the Schumpeterian growth literature is that the innovation size is constant and identical across industries. This is in contrast with the empirical evidence which shows that: (1) innovation size is not identical across industries and (2) the size distribution of profit returns from innovation is highly skewed toward the low value side, with a long tail on the high value side. In the present paper, we develop a Schumpeterian growth model that is consistent with this evidence. In particular, we assume that when a firm innovates, the size of its quality improvement is the result of a random draw from a Pareto distribution. This enables us to extend the class of quality-ladder growth models to encompass firm heterogeneity. We study the policy implications of this new setup numerically and find that it is optimal to heavily subsidize R&D for plausible parameter values. Although it is optimal to tax R&D for some parameter values, this case only occurs when the steady-state rate of economic growth is very low.