Speaker Recognition using Random Forest

Author:

Khadar Nawas K,Kumar Barik Manish,Nayeemulla Khan A

Abstract

Speaker identification has become a mainstream technology in the field of machine learning that involves determining the identity of a speaker from his/her speech sample. A person’s speech note contains many features that can be used to discriminate his/her identity. A model that can identify a speaker has wide applications such as biometric authentication, security, forensics and human-machine interaction. This paper implements a speaker identification system based on Random Forest as a classifier to identify the various speakers using MFCC and RPS as feature extraction techniques. The output obtained from the Random Forest classifier shows promising result. It is observed that the accuracy level is significantly higher in MFCC as compared to the RPS technique on the data taken from the well-known TIMIT corpus dataset.

Publisher

EDP Sciences

Subject

General Medicine

Reference18 articles.

1. Jayanna H. S. and Mahadeva Prasanna S. R., May 2009, “Analysis, Feature Extraction, Modeling and Testing Techniques for Speaker Recognition”.

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3. Vyas Garima, Kumari Barkha, June 2013, “Speaker Recognition System Based on MFCC and DCT”, Vol. 2, Issue 5, pp167-169.

4. Ramgire Jyoti B., Jagdale Sumati M., April 2016, “A Survey on Speaker Recognition With Various Feature Extraction And Classification Techniques”, Vol. 03, Issue 04, pp709-712.

5. Todkar Satyam P., Babar Snehal S., Ambike Rudrendra U., Suryakar Prasad B., April 2018, “Speaker Recognition Techniques: A review”, pp1-5.

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