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A study of the optimality of PCA under spectral sparsification

PINV15-208art8.pdf (163.1Kb)
PINV15-208art8-anexo.pdf (501.0Kb)
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URI
http://hdl.handle.net/20.500.14066/3730
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Author(s)
Mercado, Sergio; Villagra Riquelme, Marcos DanielCONACYT Authority
Date of publishing
2018
Type of publication
conference paper
Subject(s)
MATEMATICAS
COMPUTACION
 
Abstract
Principal component analisys (PCA) is a data analysis technique for mapping points in Rn to a two or three dimensional space. This dimensionality reduction preserves the natural grouping of points and information of data.
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