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Kilian Q. Weinberger

Researcher at Cornell University

Publications -  241
Citations -  71535

Kilian Q. Weinberger is an academic researcher from Cornell University. The author has contributed to research in topics: Computer science & Deep learning. The author has an hindex of 76, co-authored 222 publications receiving 49707 citations. Previous affiliations of Kilian Q. Weinberger include University of Washington & Washington University in St. Louis.

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Method and apparatus for improved regression modeling

TL;DR: In this article, the authors present a method and an apparatus for improved regression modeling to address the curse of dimensionality, for example for use in data analysis tasks, where a method for analyzing data includes receiving a set of exemplars, where at least two of the exemplars include an input pattern (i.e., a point in an input space) and at least one of the examples includes a target value associated with the input pattern.
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A Reduction of the Elastic Net to Support Vector Machines with an Application to GPU Computing

TL;DR: This paper introduces a formal and practical reduction between two of the most widely used machine learning algorithms: from the Elastic Net to the Support Vector Machine and shows that it yields identical results as the popular glmnet implementation but is up-to two orders of magnitude faster.
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Marginalizing Corrupted Features

TL;DR: This paper proposes a third, alternative approach to combat overfitting: extending the training set with infinitely many artificial training examples that are obtained by corrupting the original training data, called marginalized corrupted features (MCF), which trains robust predictors by minimizing the expected value of the loss function under the corruption model.