
معرفی
Charles Doss is an Associate Professor in the School of Statistics at the University of Minnesota. He earned his PhD from the University of Washington in 2013 under Jon Wellner and holds a B.S. in Mathematics from the University of Chicago. His research focuses on empirical process theory, nonparametric estimation/inference for functions with shape constraints (e.g., concavity, log-concavity), and applications to causal inference, birth-death processes, and unlinked regression.
His recent publications address problems such as doubly robust estimation for continuous treatments, heteroscedasticity detection, and convex stochastic optimization. He has received significant funding, including NSF grants DMS-2210312 and DMS-1712664, as well as institutional awards.
- Warwick Mid-Career Faculty Research Award (2022–2023)
- NSF DMS-2210312 Grant
- NSF DMS-1712664 Grant
He has served as an Associate Editor for The Electronic Journal of Statistics (2022–present) and The American Statistician (2020–2024). He mentors students such as Guangwei Weng, Daeyoung Ham, and Oliver VandenBerg and contributes to outreach programs like Run the World, a Machine Learning summer camp for high school students.
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Charles R DossUniversity of Minnesota Twin Cities · دانشیار
Aditya GuntuboyinaUniversity of California, Berkeley · دانشیار
Min XuRutgers, The State University of New Jersey · استادیار
Qiyang HanRutgers, The State University of New Jersey · دانشیار- MMary C MeyerColorado State University · استاد
- EElaine AuyoungUniversity of Minnesota Twin Cities · دانشیار