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THE STOCHASTIC LEARNING CURVE - OPTIMAL PRODUCTION IN THE PRESENCE OF LEARNING-CURVE UNCERTAINTY

机译:随机学习曲线-存在学习曲线不确定性时的最优生产

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Theoretical analyses incorporating production learning are typically deterministic costs are posited to decrease in a known, deterministic fashion as cumulative production increases. This paper introduces a stochastic learning-curve model that incorporates tandem variation in the decreasing cost function. We first consider a discrete-time, infinite-horizon, dynamic programming formulation of monopolistic production planning when costs follow a learning curve. This basic formulation is then extended to allow for random variation in the learning process. We also explore properties of the resulting optimal policies, For example, in some of the stochastic models we analyze optimal production is shown to exceed myopic production, echoing a key result from the deterministic learning-curve literature, in other of the stochastic models, however, this result does not hold. underscoring the need for extended analysis in the stochastic setting. We also provide new insights in the deterministic setting: for example, while an increase in the learning rate leads to an increase in the firm's expected profits in the deterministic case, there is not necessarily an increase in the optimal policy-faster learners do not necessarily produce more. [References: 40]
机译:结合了生产学习的理论分析通常认为,随着累积生产的增加,确定性成本将以已知的确定性方式降低。本文介绍了一种随机学习曲线模型,该模型在降低成本函数中纳入了串联变化。当成本遵循学习曲线时,我们首先考虑垄断生产计划的离散时间,无限水平,动态规划公式。然后扩展该基本公式以允许学习过程中的随机变化。我们还探索了最终最优政策的性质,例如,在某些随机模型中,我们分析了最优产量被证明超过了近视产量,这与其他随机模型中确定性学习曲线文献的主要结果相呼应。 ,此结果不成立。强调需要在随机环境中进行扩展分析。我们还在确定性环境中提供了新的见解:例如,虽然学习率的提高导致确定性情况下公司的预期利润增加,但最优政策不一定会增加,更快的学习者不一定会生产更多。 [参考:40]

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