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Poster
Tue 17:30 Stochastic Proximal Langevin Algorithm: Potential Splitting and Nonasymptotic Rates
Adil Salim · Dmitry Kovalev · Peter Richtarik
Poster
Tue 17:30 Qsparse-local-SGD: Distributed SGD with Quantization, Sparsification and Local Computations
Debraj Basu · Deepesh Data · Can Karakus · Suhas Diggavi
Poster
Tue 10:45 Two Time-scale Off-Policy TD Learning: Non-asymptotic Analysis over Markovian Samples
Tengyu Xu · Shaofeng Zou · Yingbin Liang
Poster
Wed 17:00 Dynamics of stochastic gradient descent for two-layer neural networks in the teacher-student setup
Sebastian Goldt · Madhu Advani · Andrew Saxe · Florent Krzakala · Lenka Zdeborová
Poster
Thu 17:00 Private Stochastic Convex Optimization with Optimal Rates
Raef Bassily · Vitaly Feldman · Kunal Talwar · Abhradeep Guha Thakurta
Poster
Wed 17:00 First Exit Time Analysis of Stochastic Gradient Descent Under Heavy-Tailed Gradient Noise
Thanh Huy Nguyen · Umut Simsekli · Mert Gurbuzbalaban · Gaël RICHARD
Poster
Wed 10:45 Variance Reduced Policy Evaluation with Smooth Function Approximation
Hoi-To Wai · Mingyi Hong · Zhuoran Yang · Zhaoran Wang · Kexin Tang
Poster
Tue 17:30 Painless Stochastic Gradient: Interpolation, Line-Search, and Convergence Rates
Sharan Vaswani · Aaron Mishkin · Issam Laradji · Mark Schmidt · Gauthier Gidel · Simon Lacoste-Julien
Poster
Tue 17:30 Towards closing the gap between the theory and practice of SVRG
Othmane Sebbouh · Nidham Gazagnadou · Samy Jelassi · Francis Bach · Robert Gower
Poster
Thu 10:45 The Step Decay Schedule: A Near Optimal, Geometrically Decaying Learning Rate Procedure For Least Squares
Rong Ge · Sham Kakade · Rahul Kidambi · Praneeth Netrapalli