Gender recognition using facial images

Gender recognition using facial images

EnglishPaperback / softbackPrint on demand
Fatima, Rubia
LAP Lambert Academic Publishing
EAN: 9786200230768
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Detailed information

The main objective of this study is to find out which of the most-widely used machine learning algorithms perform well for gender recognition. The aim of the study is to develop a system that can recognize the gender of a human on the basis of frontal facial features only. This system will classify the unknown facial images into male or female by comparing it with the images in the training set. The comparison will be done between most commonly used techniques for gender recognition that are the Genetic Algorithm (GA) and Support Vector Machine (SVM ) based on the facial features of a static image. Our results showed that our proposed SVM is better in detecting gender as compared to Genetic Algorithm.
EAN 9786200230768
ISBN 6200230765
Binding Paperback / softback
Publisher LAP Lambert Academic Publishing
Pages 96
Language English
Dimensions 220 x 150
Authors Basit Dogar, Abdul; Fatima, Rubia; Yasin, Affan