Machine Learning Approach

Lieferzeit: Lieferbar innerhalb 14 Tagen

49,90 

For dimensionality reduction of microarray data

ISBN: 620056843X
ISBN 13: 9786200568434
Autor: Srivastava, Namita/Verma, C K/Musheer, Rabia
Verlag: LAP LAMBERT Academic Publishing
Umfang: 152 S.
Erscheinungsdatum: 06.03.2020
Auflage: 1/2020
Format: 1 x 22 x 15
Gewicht: 244 g
Produktform: Kartoniert
Einband: Kartoniert
Artikelnummer: 8713095 Kategorie:

Beschreibung

For past several years, microarray technology has attracted tremendous interest for both scientific community and industry. Recently, the applications of microarrays include gene discovery, disease diagnosis and prognosis, drug discovery, etc. High dimensional data with small sample size is the main problem that generate the application of dimension reduction in microarray data analysis. It is seen that SVM, ANN and NB have recently gained wide popularity for cancer classification problems. An efficient and reliable method of dimension reduction plays an important role to improve the performance of SVM, ANN and NB, when applied for classification of high dimensional microarray data. In this book, we applied different combinations of feature selection / extraction methods, as a novel hybrid dimension reduction method for SVM, ANN and NB classifiers. The obtained results are compared with other popular published dimension reduction methods for SVM, NB and ANN classifiers.

Autorenporträt

Namita Srivastava, PhD in Mathematics, 30 years of experience. Areas of research: Fracture mechanics and Machine learning.C. K. Verma, PhD in Mathematics, 20 years of experience. His research areas include Computational Biology.Rabia Musheer, PhD in Manthematics,10 years of teaching experience.Her research areas include Micro-array data analysis.

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