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DTSTART;TZID=America/Los_Angeles:20191030T120000
DTEND;TZID=America/Los_Angeles:20191030T133000
DTSTAMP:20260722T102023
CREATED:20190827T231407Z
LAST-MODIFIED:20190918T192448Z
UID:10000544-1572436800-1572442200@ccpr.ucla.edu
SUMMARY:Stefan Wager\, Stanford University
DESCRIPTION:Title: Machine Learning for Causal Inference \nAbstract: Given advances in machine learning over the past decades\, it is now possible to accurately solve difficult non-parametric prediction problems in a way that is routine and reproducible. In this talk\, I’ll discuss how these machine learning tools can be rigorously integrated into observational study analyses\, and how they interact with classical ideas around randomization\, semiparametric modeling\, double robustness\, etc. When deployed carefully\, machine learning enables us to develop statistical estimators that reflect the study design more closely than basic linear regression based methods. \n  \nMore on Prof. Wager
URL:https://ccpr.ucla.edu/event/stefan-wager-stanford-university/
LOCATION:4240 Public Affairs Bldg
CATEGORIES:CCPR Seminar,Divisional Publish
ATTACH;FMTTYPE=image/jpeg:https://ccpr.ucla.edu/wp-content/uploads/2019/08/SGSB-0003-Stefan-Wager-RT2-LinkedIn.jpg
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