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Visualization of Multivariate Health Data using Self-Organizing Maps

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dc.contributor.advisor Solano, Geoffrey A.
dc.contributor.author Ghany, Mark Lester Y.
dc.date.accessioned 2015-07-27T07:00:40Z
dc.date.available 2015-07-27T07:00:40Z
dc.date.issued 2012-04
dc.identifier.uri http://cas.upm.edu.ph:8080/xmlui/handle/123456789/79
dc.description.abstract Data that are multivariate in nature is a type of data that may contain subtle patterns. However, it is considered to be an obstacle in research most of the time since classical statistics may nd it encumbering to analyze. However, computational statistics, a collab- oration between computer science and statistics, o ers a suite of algorithms that may be used to surpass obstacles such as this. The Self-Organizing Map and Data Visualization are examples of these. The Self-Organizing Map is an arti cial neural network that employs a process to reduce multidimensional data into a low-dimensional representation while Data Visualization is a process that aims to give the human brain a visual representation of knowledge about certain data. SOM Visualize is a software that makes use of both pro- cesses. The tool enables users to input data and visualize several patterns such as clusters, associations, as well as a geographical representation that exist in the data. It may give several hypotheses that may be con rmed through other statistical tests and SOM Visualize has therefore enabled the possibility of analysis of multivariate data. en_US
dc.language.iso en en_US
dc.subject Self-Organizing Map en_US
dc.subject Data Visualization en_US
dc.subject Arti cial Neural Networks en_US
dc.subject Multi- variate Data en_US
dc.subject Computational Statistics en_US
dc.title Visualization of Multivariate Health Data using Self-Organizing Maps en_US
dc.type Thesis en_US


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