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Poster
Wed 17:00 Gradient-based Adaptive Markov Chain Monte Carlo
Michalis Titsias · Petros Dellaportas
Poster
Thu 10:45 Efficient Near-Optimal Testing of Community Changes in Balanced Stochastic Block Models
Aditya Gangrade · Praveen Venkatesh · Bobak Nazer · Venkatesh Saligrama
Poster
Thu 17:00 Thinning for Accelerating the Learning of Point Processes
Tianbo Li · Yiping Ke
Poster
Wed 17:00 Stochastic Variance Reduced Primal Dual Algorithms for Empirical Composition Optimization
Adithya M Devraj · Jianshu Chen
Poster
Wed 17:00 Optimal Stochastic and Online Learning with Individual Iterates
Yunwen Lei · Peng Yang · Ke Tang · Ding-Xuan Zhou
Poster
Wed 10:45 A Latent Variational Framework for Stochastic Optimization
Philippe Casgrain
Spotlight
Wed 16:50 Optimal Stochastic and Online Learning with Individual Iterates
Yunwen Lei · Peng Yang · Ke Tang · Ding-Xuan Zhou
Poster
Wed 10:45 A Stochastic Composite Gradient Method with Incremental Variance Reduction
Junyu Zhang · Lin Xiao
Poster
Thu 10:45 Exponentially convergent stochastic k-PCA without variance reduction
Cheng Tang
Poster
Thu 17:00 Efficient Convex Relaxations for Streaming PCA
Raman Arora · Teodor Vanislavov Marinov
Poster
Tue 17:30 On the Global Convergence of (Fast) Incremental Expectation Maximization Methods
Belhal Karimi · Hoi-To Wai · Eric Moulines · Marc Lavielle
Poster
Tue 17:30 An Accelerated Decentralized Stochastic Proximal Algorithm for Finite Sums
Hadrien Hendrikx · Francis Bach · Laurent Massoulié