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ORCID: https://orcid.org/0000-0003-0652-9872 and Lozano Alonso, José Antonio
(2010).
Machine learning: an indispensable tool in bioinformatics.
En:
"Bioinformatics Methods in Clinical Research".
Methods in Molecular Biology
(593).
Human Press, Nueva York, Estados Unidos, pp. 25-48.
ISBN 978-1-60327-193-6.
https://doi.org/10.1007/978-1-60327-194-3_2.
| Título: | Machine learning: an indispensable tool in bioinformatics |
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| Editor/es: |
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| Tipo de Documento: | Sección de Libro |
| Título del Libro: | Bioinformatics Methods in Clinical Research |
| Fecha: | 2010 |
| ISBN: | 978-1-60327-193-6 |
| Nombre de la Serie: | Methods in Molecular Biology |
| Número: | 593 |
| Materias: | |
| ODS: | |
| Palabras Clave Informales: | Machine learning, Data mining, Bioinformatics, Data preprocessing, Sifier evaluation, Feature selection, Gene expression data analysis, Mass spectrometry data analysis. |
| Escuela: | Facultad de Informática (UPM) [antigua denominación] |
| Departamento: | Inteligencia Artificial |
| Licencias Creative Commons: | Reconocimiento - Sin obra derivada - No comercial |
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- Acceso permitido solamente al administrador del Archivo Digital UPM
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The increase in the number and complexity of biological databases has raised the need for modern and powerful data analysis tools and techniques. In order to fulfill these requirements, the machine learning discipline has become an everyday tool in bio-laboratories. The use of machine learning techniques has been extended to a wide spectrum of bioinformatics applications. It is broadly used to investigate the underlying mechanisms and interactions between biological molecules in many diseases, and it is an essential tool in any biomarker discovery process.
In this chapter, we provide a basic taxonomy of machine learning algorithms, and the characteristics of main data preprocessing, supervised classification, and clustering techniques are shown. Feature selection, classifier evaluation, and two supervised classification topics that have a deep impact on current bioinformatics are presented. We make the interested reader aware of a set of popular web resources, open source software tools, and benchmarking data repositories that are frequently used by the machine learning community.
| ID de Registro: | 81616 |
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| Identificador DC: | https://oa.upm.es/81616/ |
| Identificador OAI: | oai:oa.upm.es:81616 |
| URL Portal Científico: | https://portalcientifico.upm.es/es/ipublic/item/5616441 |
| Identificador DOI: | 10.1007/978-1-60327-194-3_2 |
| URL Oficial: | https://doi.org/10.1007/978-1-60327-194-3_2 |
| Depositado por: | Biblioteca Facultad de Informatica |
| Depositado el: | 07 May 2024 10:51 |
| Ultima Modificación: | 12 Nov 2025 00:00 |
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