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Dive into the research topics where Brian Bullins is active.

Publication


Featured researches published by Brian Bullins.


symposium on the theory of computing | 2017

Finding approximate local minima faster than gradient descent

Naman Agarwal; Zeyuan Allen-Zhu; Brian Bullins; Elad Hazan; Tengyu Ma

We design a non-convex second-order optimization algorithm that is guaranteed to return an approximate local minimum in time which scales linearly in the underlying dimension and the number of training examples. The time complexity of our algorithm to find an approximate local minimum is even faster than that of gradient descent to find a critical point. Our algorithm applies to a general class of optimization problems including training a neural network and other non-convex objectives arising in machine learning.


arXiv: Machine Learning | 2016

Second Order Stochastic Optimization in Linear Time.

Naman Agarwal; Brian Bullins; Elad Hazan


Archive | 2016

Finding Approximate Local Minima for Nonconvex Optimization in Linear Time.

Naman Agarwal; Zeyuan Allen Zhu; Brian Bullins; Elad Hazan; Tengyu Ma


Journal of Machine Learning Research | 2017

Second-Order Stochastic Optimization for Machine Learning in Linear Time

Naman Agarwal; Brian Bullins; Elad Hazan


Linear Algebra and its Applications | 2015

Spectral properties of modularity matrices

Marianna Bolla; Brian Bullins; Sorathan Chaturapruek; Shiwen Chen; Katalin Friedl


arXiv: Optimization and Control | 2016

Finding Local Minima for Nonconvex Optimization in Linear Time

Naman Agarwal; Zeyuan Allen-Zhu; Brian Bullins; Elad Hazan; Tengyu Ma


arXiv: Spectral Theory | 2013

When the largest eigenvalue of the modularity and normalized modularity matrix is zero

Marianna Bolla; Brian Bullins; Sorathan Chaturapruek; Shiwen Chen; Katalin Friedl


international conference on learning representations | 2018

Not-So-Random Features

Brian Bullins; Cyril Zhang; Yi Zhang


arXiv: Optimization and Control | 2018

Adaptive regularization with cubics on manifolds with a first-order analysis

Naman Agarwal; Nicolas Boumal; Brian Bullins; Coralia Cartis


arXiv: Learning | 2018

The Case for Full-Matrix Adaptive Regularization.

Naman Agarwal; Brian Bullins; Xinyi Chen; Elad Hazan; Karan Singh; Cyril Zhang; Yi Zhang

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Yi Zhang

Princeton University

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Katalin Friedl

Budapest University of Technology and Economics

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Marianna Bolla

Budapest University of Technology and Economics

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