Mechanics of Linear Quadratic Gaussian Rational Inattention Tracking Problems

Chad Fulton
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引用次数: 6

Abstract

This paper presents a general framework for constructing and solving the multivariate static linear quadratic Gaussian (LQG) rational inattention tracking problem. We interpret the nature of the solution and the implied action of the agent, and we construct representations that formalize how the agent processes data. We apply this infrastructure to the rational inattention price-setting problem, confirming the result that a conditional response to economics shocks is possible, but casting doubt on a common assumption made in the literature. We show that multiple equilibria and a social cost of increased attention can arise in these models. We consider the extension to the dynamic problem and provide an approximate solution method that achieves low approximation error for many applications found in the LQG rational inattention literature.
线性二次高斯有理不注意跟踪问题的力学
本文给出了构造和求解多元静态线性二次高斯(LQG)有理不注意跟踪问题的一般框架。我们解释了解决方案的本质和代理的隐含动作,并构建了形式化代理如何处理数据的表示。我们将这一基础设施应用于理性不注意定价问题,确认了对经济冲击的条件反应是可能的结果,但对文献中的一个共同假设提出了质疑。我们表明,在这些模型中,多重均衡和增加注意力的社会成本可能会出现。我们考虑了动态问题的扩展,并提供了一种近似解方法,该方法对LQG理性不注意文献中的许多应用实现了低近似误差。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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