Please use this identifier to cite or link to this item: http://dspace.unimap.edu.my:80/xmlui/handle/123456789/6975
Title: Prediction of psychoacoustic parameters using radial basic functions neural network
Authors: Paulraj, M.P.
Sazali, Yaacob
Ahmad Nazri
M., Thagirarani
Keywords: Neural network
Psychoustic parameters
Sharpness
Loudness
Roughness
Neural networks (Computer science)
Issue Date: 1-Feb-2008
Publisher: Karpagam College of Engineering
Series/Report no.: Proceedings of the International Conference on Intelligent Systems and Control (ISCO 2008)
Abstract: The ability of human listeners to estimate psychoacoustic parameters from the speakers speech levels at different listener's positions in a classroom is an interesting and not yet thoroughly examined phenomenon. The goal of this paper is to propose a technique that uses radial basis functions neural network to estimate the non linear mapping function that best represents the relationship among input (Frequency Spectrum of Speech level at all listeners positions in the classroom, the sound pressure level and the signal to noise ratio of the speech signal) and output (Psychoacoustic parameters such as loudness, sharpness and roughness) variables in a database.
Description: Organized by Karpagam College of Engineering, 1st-2nd February 2008 at Coimbarote, India.
URI: http://dspace.unimap.edu.my/123456789/6975
Appears in Collections:Conference Papers
Sazali Yaacob, Prof. Dr.
Paulraj Murugesa Pandiyan, Assoc. Prof. Dr.

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