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Accent and Gender Recognition from English Language Speech and Audio Using Signal Processing and Deep Learning

Lookup NU author(s): Dr Varun OjhaORCiD

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Abstract

© 2021, The Author(s), under exclusive license to Springer Nature Switzerland AG. This research is concerned with taking user input in the form of speech data to classify and then predict which region of the United Kingdom the user is from and their gender. This research was conducted on regional accents, data preprocessing, Fourier transforms, and deep learning modeling. Due to lack of publicly available datasets for this type of research, a dataset was created from scratch (12 regions with a 1:1 gender ratio). In this paper, we propose modeling the human’s voice accent and voice gender recognition as a classification task. We used a deep convolution neural network, and experimentally developed an architecture that maximized the classification accuracy of the mentioned tasks simultaneously. We also tested the model on publicly available spoken digit detests. We find that the gender classification is relatively easier to predict with high accuracy than the accent in our proposed multi-class classification model. Accent classification was found difficult because of the regional accent’s overlapping that prevents it from being classified with high accuracy.


Publication metadata

Author(s): Shergill JS, Pravin C, Ojha V

Publication type: Conference Proceedings (inc. Abstract)

Publication status: Published

Conference Name: 20th International Conference on Hybrid Intelligent Systems (HIS 2020)

Year of Conference: 2021

Pages: 62-72

Print publication date: 17/04/2021

Online publication date: 16/04/2021

Acceptance date: 02/04/2018

ISSN: 2194-5357

Publisher: Springer

URL: https://doi.org/10.1007/978-3-030-73050-5_7

DOI: 10.1007/978-3-030-73050-5_7

Library holdings: Search Newcastle University Library for this item

Series Title: Advances in Intelligent Systems and Computing

ISBN: 9783030730499


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