Emotion Recognition in Speech using Back Propagation Algorithm
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Abstract
Speech emotion detection refers to discovering the speech category based on the
training and testing to the database provided. This research work has been classified
in four sections namely SAD, HAPPY, FEAR and AGGRESSIVE. There are two
major sections in this research work namely Training and Testing. The training has
been done on the basis of wave files provided for every group. Features have been
extracted for all groups and have been saved into the database. The testing section
classifies the training set of data with the help of BACK PROPAGATION NEURAL
NETWORK (BPN) classifier and SEQUENTIAL MINIMAL OPTIMIZATION
(SMO) classifier. The results of the BACK PROPAGATION NEURAL NETWORK
CLASSIFIER have been found superior in terms of classification accuracy.
Description
ME, CSED
