Implementing algorithms of rough set theory and fuzzy rough set theory in the R package "RoughSets"
نویسندگان
چکیده
The package RoughSets, written mainly in the R language, provides implementations of methods from the rough set theory (RST) and fuzzy rough set theory (FRST) for data modeling and analysis. It considers not only fundamental concepts (e.g., indiscernibility relations, lower/upper approximations, etc.), but also their applications in many tasks: discretization, feature selection, instance selection, rule induction, and nearest neighborbased classifiers. The package architecture and examples are presented in order to introduce it to researchers and practitioners. Researchers can build newmodels by defining custom functions as parameters, and practitioners are able to perform analysis and prediction of their data using available algorithms. Additionally, we provide a review and comparison of well-known software packages. Overall, our package should be considered as an alternative software library for analyzing data based on RST and FRST. 2014 Elsevier Inc. All rights reserved.
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متن کاملImplementing algorithms of rough set theory and fuzzy rough set theory in the R package “RoughSets―
Article history: Received 24 February 2014 Received in revised form 12 June 2014 Accepted 24 July 2014 Available online 1 August 2014
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عنوان ژورنال:
- Inf. Sci.
دوره 287 شماره
صفحات -
تاریخ انتشار 2014