Contributions

  • National Bureau of Economic Research. - Contributor

Publication

2007 - National Bureau of Economic Research, Cambridge, Mass, Massachusetts

Language

English

Word Count

8,500 words, Guess

Page Count

34 pages

Identifiers

Classifications

  • LCCHB1

Description

Using climate change as a prototype motivating example, this paper analyzes the implications of structural uncertainty for the economics of low-probability high-impact catastrophes. The paper shows that having an uncertain multiplicative parameter, which scales or amplifies exogenous shocks and is updated by Bayesian learning, induces a critical "tail fattening" of posterior-predictive distributions. These fattened tails can have strong implications for situations (like climate change) where a catastrophe is theoretically possible because prior knowledge cannot place sufficiently narrow bounds on overall damages. The essence of the problem is the difficulty of learning extreme-impact tail behavior from finite data alone. At least potentially, the influence on cost-benefit analysis of fat-tailed uncertainty about the scale of damages -- coupled with a high value of statistical life -- can outweigh the influence of discounting or anything else.

Subjects

Topics

LifeValuationDisastersClimatic changesEconometric modelsEconomic aspects of DisastersEconomic aspects of Climatic changes

Series Statement

  • NBER working paper series -- no. 13490.
  • Working paper series (National Bureau of Economic Research) -- working paper no. 13490.

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