On Approaches to Discretisation of Stylometric Data and Conflict Resolution in Decision Making

Urszula Stańczyk, Beata Marta Zielosko · Procedia Computer Science · 2019

The paper presents research on unsupervised and supervised discretisation of input data used in execution of stylometric tasks of authorship attribution. Basing on numeric characterisation of writing styles, recognition of authorship is performed by decision rules, as their transparent structure enhances understanding of discovered knowledge. The performance of rule classifiers, constructed in rough set approach, is studied in the context of a strategy employed for resolving conflicts. It is also contrasted with that of other selected inducers.

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