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RuleKit: A Comprehensive Suite for Rule-Based Learning

About

Rule-based models are often used for data analysis as they combine interpretability with predictive power. We present RuleKit, a versatile tool for rule learning. Based on a sequential covering induction algorithm, it is suitable for classification, regression, and survival problems. The presence of a user-guided induction facilitates verifying hypotheses concerning data dependencies which are expected or of interest. The powerful and flexible experimental environment allows straightforward investigation of different induction schemes. The analysis can be performed in batch mode, through RapidMiner plug-in, or R package. A documented Java API is also provided for convenience. The software is publicly available at GitHub under GNU AGPL-3.0 license.

Adam Gudy\'s, Marek Sikora, {\L}ukasz Wr\'obel• 2019

Related benchmarks

TaskDatasetResultRank
Subgroup DiscoveryNwtco SurvSet
Objective Value213.8
8
Subgroup DiscoveryDialysis SurvSet
Our Objective Score4.7
4
Survival Subgroup DiscoveryNWTCO
Runtime (s)2.59
4
Survival Subgroup DiscoveryRott2
Runtime (s)3.2
4
Survival Subgroup Discoveryrdata
Runtime (seconds)0.46
4
Survival Subgroup DiscoveryAids2
Runtime (seconds)2.55
4
Survival Subgroup DiscoveryDialysis
Runtime (seconds)65.11
4
Survival Subgroup DiscoveryTRACE
Runtime (s)1.08
4
Survival Subgroup DiscoverySUPPORT2
Runtime (seconds)3.86
4
Survival Subgroup DiscoveryDataDIVAT2
Runtime (seconds)0.61
4
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