Social Science Economics Econometrics
ISYE 6501 - Midterm 2
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when might overfitting occur when the # of factors is close to or larger than the
# of data points causing the model to potentially fit
too closely to random effects
Why are simple models better than less data is required; less chance of insignificant
complex ones factors and easier to interpret
what is forward selection we select the best new factor and see if it's good
enough (R^2, AIC, or p-value) add it to our model
and fit the model with the current set of factors.
Then at the end we remove factors that are lower
than a certain threshold
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, 4/15/26, 3:52 PM ISYE 6501 - Midterm 2 Flashcards | Quizlet
what is backward elimination we start with all factors and find the worst on a
supplied threshold (p = 0.15). If it is worse we
remove it and start the process over. We do that
until we have the number of factors that we want
and then we move the factors lower than a second
threshold (p = .05) and fit the model with all set of
factors
what is stepwise regression it is a combination of forward selection and
backward elimination. We can either start with all
factors or no factors and at each step we remove
or add a factor. As we go through the procedure
after adding each new factor and at the end we
eliminate right away factors that no longer appear.
what type of algorithms are stepwise Greedy algorithms - at each step they take one
selection? thing that looks best
what is LASSO a variable selection method where the coefficients
are determined by both minimizing the squared
error and the sum of their absolute value not being
over a certain threshold t
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