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Título

Statistical Series: Opportunities and challenges of sperm motility subpopulation analysis

AutorMartínez-Pastor, Felipe CSIC ORCID CVN; Garde, José Julián CSIC ORCID; Anel-López, Luis ; Paz, Paulino de
Palabras claveSperm subpopulations
Cluster analysis
Multivariate analysis
Automated semen analysis
CASA
Fecha de publicación2011
EditorElsevier
CitaciónTheriogenology 75(5): 783-795 (2011)
ResumenComputer-assisted sperm analysis (CASA) allows assessing the motility of individual spermatozoa, generating huge datasets. These datasets can be analyzed using data mining techniques such as cluster analysis, to group the spermatozoa in subpopulations with biological meaning. This review considers the use of statistical techniques for clustering CASA data, their challenges and possibilities. There are many clustering approaches potentially useful for grouping sperm motility data, but some options may be more appropriate than others. Future development should focus not only in improvements of subpopulation analysis, but also in finding consistent biological meanings for these subpopulations.
Versión del editorhttp://dx.doi.org/10.1016/j.theriogenology.2010.11.034
URIhttp://hdl.handle.net/10261/143987
DOI10.1016/j.theriogenology.2010.11.034
Identificadoresdoi: 10.1016/j.theriogenology.2010.11.034
issn: 0093-691X
e-issn: 1879-3231
Aparece en las colecciones: (IREC) Artículos




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