Feature Space Sketching for Logistic Regression

Dexter, Gregory, Khanna, Rajiv, Raheel, Jawad, Drineas, Petros

arXiv.org Artificial Intelligence 

All three approaches can be thought of as sketching the logistic regression inputs. On the coreset construction front, we resolve open problems from prior work and present novel bounds for the complexity of coreset construction methods. On the feature selection and dimensionality reduction front, we initiate the study of forward error bounds for logistic regression. Our bounds are tight up to constant factors and our forward error bounds can be extended to Generalized Linear Models.

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