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Contextualizing support vector machine predictions

Tijdschriftbijdrage - Tijdschriftartikel

Classification in artificial intelligence is usually understood as a process whereby several objects are evaluated to predict the class(es) those objects belong to. Aiming to improve the interpretability of predictions resulting from a support vector machine classification process, we explore the use of augmented appraisal degrees to put those predictions in context. A use case, in which the classes of handwritten digits are predicted, illustrates how the interpretability of such predictions is benefitted from their contextualization.
Tijdschrift: INTERNATIONAL JOURNAL OF COMPUTATIONAL INTELLIGENCE SYSTEMS
ISSN: 1875-6883
Issue: 1
Volume: 13
Pagina's: 1483 - 1497
Jaar van publicatie:2020
Toegankelijkheid:Open