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Learning interpretable classification rules using sequential rowsampling

Published • Apr 1, 2015
NobleIDNI6P37W20R13S87
Authors:
Sanjeeb Dash
,
Dmitry Malioutov
,
Kush R. Varshney

Abstract

In our previous work we have presented an approach to learn interpretable classification rules using a Boolean compressed sensing formulation. Our approach uses a linear programming (LP) relaxation and allows us to find interpretable (sparse) classification rules that achieve good generalization acc...

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