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Visualizing data in high-dimensional spaces

dc.contributor.authorBarnard, Etienne
dc.date.accessioned2018-03-07T10:05:24Z
dc.date.available2018-03-07T10:05:24Z
dc.date.issued2010
dc.description.abstractA novel approach to the analysis of feature spaces in statistical pattern recognition is described. This approach starts with linear dimensionality reduction, followed by the computation of selected sections through and projections of feature space. A number of representative feature spaces are analysed in this way; we find linear reduction to be surprisingly successful, and in the real-world data sets we have examined, typical classes of objects are only moderately complicated.en_US
dc.description.sponsorshipMultilingual Speech Technologies Group, North-West University, Vanderbijlpark, South Africaen_US
dc.identifier.citationEtienne Barnard, “Visualizing data in high-dimensional spaces”, in Proc. Annual Symp. Pattern Recognition Association of South Africa (PRASA), pp 25-32, Stellenbosch, South Africa, 2010. [http://engineering.nwu.ac.za/multilingual-speech-technologies-must/publications]en_US
dc.identifier.urihttp://www.prasa.org/proceedings/2010/prasa2010-05.pdf
dc.identifier.urihttp://hdl.handle.net/10394/26553
dc.language.isoenen_US
dc.publisherPattern Recognition Association of South Africa and Mechatronics International Conferenceen_US
dc.subjectVisualizing data in high-dimensional spacesen_US
dc.subjectHigh-dimensional spacesen_US
dc.subjectDimensionality reductionen_US
dc.subjectComputation of selected sectionsen_US
dc.titleVisualizing data in high-dimensional spacesen_US
dc.typePresentationen_US

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