Contributions

  • L'Huillier, Jean-Paul - Contributor
  • Lorenzoni, Guido - Contributor
  • Massachusetts Institute of Technology. Dept. of Economics - Contributor

Publication

2009 - Massachusetts Institute of Technology, Dept. of Economics, Cambridge, MA, Massachusetts

Language

English

Word Count

10,000 words, Guess

Page Count

40 pages

Identifiers

Description

We explore empirically models of aggregate fluctuations with two basic ingredients: agents form anticipations about the future based on noisy sources of information; these anticipations affect spending and output in the short run. our objective is to separate fluctuations due to actual changes in fundamentals (news) from those due to temporary errors in the private sector's estimates of these fundamentals (noise). Using a simple model where the consumption random walk hypothesis holds exactly, we address some basic methodological issues and take a first pass at the data. First, we show that if the econometrician has no informational advantage over the agents in the model, structural VARs cannot be used to identify news and noise shocks. Next, we develop a structural Maximum Likelihood approach which allows us to identify the model's parameters and to evaluate the role of news and noise shocks. Applied to postwar U.S. data, this approach suggests that noise shocks play an important role in short-run fluctuations. Keywords: Aggregate shocks, business cycles, vector autoregression, invertibility. JEL Classifications: E32, C32, D83.

Subjects

Series Statement

  • Working paper series / Massachusetts Institute of Technology, Dept. of Economics -- working paper 09-21
  • Working paper (Massachusetts Institute of Technology. Dept. of Economics) -- no. 09-21.

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