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Your textbook mentions heteroskedasticity- and autocorrelation- consistent standard errors. Explain why you should use this option in your regression package when estimating the distributed lag regression model. What are the properties of the OLS estimator in the presence of heteroskedasticity and autocorrelation in the error terms? Explain why it is likely to find autocorrelation in time series data. If the errors are autocorrelated, then why not simply adjust for autocorrelation by using some non-linear estimation method such as Cochrane-Orcutt?
Normally Distributed
A type of distribution where data is symmetrically distributed around the mean, forming a bell-shaped curve.
Life Expectancy
The average period that an individual is expected to live, based on current death rates.
Standard Deviation
A statistic that quantifies the amount of variation or dispersion of a set of data values.
Normally Distributed
Describes a distribution of data that follows the normal distribution curve, characterized by a bell shape and equal mean, median, and mode.
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