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R&D in clean technology: A project choice model with learning

机译:清洁技术研发:具有学习能力的项目选择模型

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摘要

In this study, we investigate the qualitative and quantitative effects of an R&D subsidy for a clean technology and a Pigouvian tax on a dirty technology on environmental R&D when it is uncertain how long the research takes to complete. The model is formulated as an optimal stopping problem, in which the number of successes required to complete the R&D project is finite and learning about the probability of success is incorporated. We show that the optimal R&D subsidy with the consideration of learning is higher than that without it. We also find that an R&D subsidy performs better than a Pigouvian tax unless suppliers have sufficient incentives to continue cost-reduction efforts after the new technology success-fully replaces the old one. Moreover, by using a two-project model, we show that a uniform subsidy is better than a selective subsidy.
机译:在这项研究中,当不确定要完成多长时间的研究时,我们将研究清洁技术的研发补贴和对肮脏技术的庇古税对环境研发的定性和定量影响。该模型被公式化为最佳停止问题,其中完成R&D项目所需的成功次数是有限的,并且结合了成功概率的学习。我们表明,考虑学习的最优研发补贴要高于没有学习补贴的最优研发补贴。我们还发现,除非新技术成功替代旧技术后供应商有足够的动力继续降低成本,否则研发补贴的表现要好于庇古税。此外,通过使用两个项目的模型,我们证明了统一补贴要好于选择性补贴。

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