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Estimation and Accuracy After Model Selection
by
Efron, Bradley
in
ABC intervals
/ Accuracy
/ Bagging
/ Bootstrap method
/ Bootstrap resampling
/ Bootstrap smoothing
/ Cholesterols
/ Confidence interval
/ Confidence intervals
/ data analysis
/ equations
/ Errors
/ Estimating techniques
/ Estimation
/ Estimation bias
/ Estimation methods
/ Estimators
/ Importance sampling
/ Lasso
/ Model averaging
/ Nonparametric models
/ Regression analysis
/ Standard deviation
/ Standard error
/ Statistics
/ Supernovae
/ Theory and Methods
2014
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Estimation and Accuracy After Model Selection
by
Efron, Bradley
in
ABC intervals
/ Accuracy
/ Bagging
/ Bootstrap method
/ Bootstrap resampling
/ Bootstrap smoothing
/ Cholesterols
/ Confidence interval
/ Confidence intervals
/ data analysis
/ equations
/ Errors
/ Estimating techniques
/ Estimation
/ Estimation bias
/ Estimation methods
/ Estimators
/ Importance sampling
/ Lasso
/ Model averaging
/ Nonparametric models
/ Regression analysis
/ Standard deviation
/ Standard error
/ Statistics
/ Supernovae
/ Theory and Methods
2014
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Do you wish to request the book?
Estimation and Accuracy After Model Selection
by
Efron, Bradley
in
ABC intervals
/ Accuracy
/ Bagging
/ Bootstrap method
/ Bootstrap resampling
/ Bootstrap smoothing
/ Cholesterols
/ Confidence interval
/ Confidence intervals
/ data analysis
/ equations
/ Errors
/ Estimating techniques
/ Estimation
/ Estimation bias
/ Estimation methods
/ Estimators
/ Importance sampling
/ Lasso
/ Model averaging
/ Nonparametric models
/ Regression analysis
/ Standard deviation
/ Standard error
/ Statistics
/ Supernovae
/ Theory and Methods
2014
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Journal Article
Estimation and Accuracy After Model Selection
2014
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Overview
Classical statistical theory ignores model selection in assessing estimation accuracy. Here we consider bootstrap methods for computing standard errors and confidence intervals that take model selection into account. The methodology involves bagging, also known as bootstrap smoothing, to tame the erratic discontinuities of selection-based estimators. A useful new formula for the accuracy of bagging then provides standard errors for the smoothed estimators. Two examples, nonparametric and parametric, are carried through in detail: a regression model where the choice of degree (linear, quadratic, cubic, …) is determined by the C ₚ criterion and a Lasso-based estimation problem.
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