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Interactive feature space extension for multidimensional data projection

dc.contributor.authorPérez López, Daniel 
dc.contributor.authorZhang, Leishi
dc.contributor.authorSchaefer, Matthias
dc.contributor.authorSchreck, Tobias
dc.contributor.authorKeim, Daniel
dc.contributor.authorDíaz Blanco, Ignacio 
dc.date.accessioned2015-12-10T08:58:28Z
dc.date.available2015-12-10T08:58:28Z
dc.date.issued2015
dc.identifier.citationNeurocomputing, 150(B), p. 611–626 (2015);doi:10,1016/j.neucom.2014.09.061spa
dc.identifier.issn0925-2312
dc.identifier.urihttp://hdl.handle.net/10651/33987
dc.description.abstractProjecting multi-dimensional data to a lower-dimensional visual display is a commonly used approach for identifying and analyzing patterns in data. Many dimensionality reduction techniques exist for generating visual embeddings, but it is often hard to avoid cluttered projections when the data is large in size and noisy. For many application users who are not machine learning experts, it is difficult to control the process in order to improve the “readability” of the projection and at the same time to understand their quality. In this paper, we propose a simple interactive feature transformation approach that allows the analyst to de-clutter the visualization by gradually transforming the original feature space based on existing class knowledge. By changing a single parameter, the user can easily decide the desired trade-off between structural preservation and the visual quality during the transforming process. The proposed approach integrates semi-interactive feature transformation techniques as well as a variety of quality measures to help analysts generate uncluttered projections and understand their quality.spa
dc.format.extentp. 611-626spa
dc.language.isoengspa
dc.relation.ispartofNeurocomputing, 150(B)spa
dc.subjectData visualizationspa
dc.subjectDimensionality reductionspa
dc.titleInteractive feature space extension for multidimensional data projectionspa
dc.typejournal articlespa
dc.identifier.doi10.1016/j.neucom.2014.09.061
dc.relation.publisherversionhttp://dx.doi.org/10.1016/j.neucom.2014.09.061


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