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A review and comparison of strategies for handling missing values in separate-and-conquer rule learning
Authors:Lars?Wohlrab,Johannes?Fürnkranz  author-information"  >  author-information__contact u-icon-before"  >  mailto:juffi@ke.informatik.tu-darmstadt.de"   title="  juffi@ke.informatik.tu-darmstadt.de"   itemprop="  email"   data-track="  click"   data-track-action="  Email author"   data-track-label="  "  >Email author
Affiliation:1.Knowledge Engineering Group,Technische Universit?t Darmstadt,Darmstadt,Germany
Abstract:In this paper, we review possible strategies for handling missing values in separate-and-conquer rule learning algorithms, and compare them experimentally on a large number of datasets. In particular through a careful study with data with controlled levels of missing values we get additional insights on the strategies’ different biases w.r.t. attributes with missing values. Somewhat surprisingly, a strategy that implements a strong bias against the use of attributes with missing values, exhibits the best average performance on 24 datasets from the UCI repository.
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