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Ryan Tibshirani
Ryan Tibshirani
Professor of Statistics, UC Berkeley
Подтвержден адрес электронной почты в домене berkeley.edu - Главная страница
Название
Процитировано
Процитировано
Год
The solution path of the generalized lasso
RJ Tibshirani, J Taylor
Annals of Statistics 39 (3), 1335-1371, 2011
11242011
Surprises in high-dimensional ridgeless least squares interpolation
T Hastie, A Montanari, S Rosset, RJ Tibshirani
Annals of Statistics 50 (2), 949-986, 2022
9172022
Distribution-free predictive inference for regression
J Lei, M G’Sell, A Rinaldo, RJ Tibshirani, L Wasserman
Journal of the American Statistical Association 113 (523), 1094-1111, 2018
9142018
A significance test for the lasso
R Lockhart, J Taylor, RJ Tibshirani, R Tibshirani
Annals of Statistics 42 (2), 413-468, 2014
8792014
Strong rules for discarding predictors in lasso‐type problems
R Tibshirani, J Bien, J Friedman, T Hastie, N Simon, J Taylor, ...
Journal of the Royal Statistical Society: Series B 74 (2), 245-266, 2012
7822012
The lasso problem and uniqueness
RJ Tibshirani
Electronic Journal of Statistics 7, 1456-1490, 2013
7712013
Best subset, forward stepwise or lasso? Analysis and recommendations based on extensive comparisons
T Hastie, R Tibshirani, RJ Tibshirani
Statistical Science 35 (4), 579-592, 2020
675*2020
Exact post-selection inference for sequential regression procedures
RJ Tibshirani, J Taylor, R Lockhart, R Tibshirani
Journal of the American Statistical Association 111 (514), 600-620, 2016
572*2016
Adaptive piecewise polynomial estimation via trend filtering
RJ Tibshirani
Annals of Statistics 42 (1), 285-323, 2014
4722014
Degrees of freedom in lasso problems
RJ Tibshirani, J Taylor
Annals of Statistics 40 (2), 1198-1232, 2012
4562012
Conformal prediction under covariate shift
RJ Tibshirani, RF Barber, EJ Candes, A Ramdas
Advances in Neural Information Processing Systems, 2019
4382019
Predictive inference with the jackknife+
RF Barber, EJ Candes, A Ramdas, RJ Tibshirani
Annals of Statistics 49 (1), 486-507, 2021
3392021
Trend filtering on graphs
YX Wang, J Sharpnack, AJ Smola, RJ Tibshirani
Journal of Machine Learning Research 17 (105), 1-41, 2016
3202016
The limits of distribution-free conditional predictive inference
R Foygel Barber, EJ Candes, A Ramdas, RJ Tibshirani
Information and Inference: A Journal of the IMA 10 (2), 455-482, 2021
2462021
Evaluation of individual and ensemble probabilistic forecasts of COVID-19 mortality in the United States
EY Cramer, EL Ray, VK Lopez, J Bracher, A Brennen, AJC Rivadeneira, ...
Proceedings of the National Academy of Sciences 119 (15), e2113561119, 2022
2302022
Conformal prediction beyond exchangeability
RF Barber, EJ Candes, A Ramdas, RJ Tibshirani
Annals of Statistics 51 (2), 816-845, 2023
2252023
An open challenge to advance probabilistic forecasting for dengue epidemics
MA Johansson, KM Apfeldorf, S Dobson, J Devita, AL Buczak, B Baugher, ...
Proceedings of the National Academy of Sciences 116 (48), 24268-24274, 2019
2122019
Karush-Kuhn-Tucker conditions
G Gordon, R Tibshirani
Lecture notes, Carnegie Mellon University, 2012
1692012
Nearly-isotonic regression
RJ Tibshirani, H Hoefling, R Tibshirani
Technometrics 53 (1), 54-61, 2011
1572011
Fast and flexible ADMM algorithms for trend filtering
A Ramdas, RJ Tibshirani
Journal of Computational and Graphical Statistics 25 (3), 839-858, 2016
1512016
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Статьи 1–20