Building LSTM neural network based speaker identification system

<p>In this paper, we are analyzing the results of native Lithuanian speaker recognition and identification using long short-term memory deep neural network. We look at recognition accuracy and identify further potential improvements. Dataset used for training and speaker recognition consists o...

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Bibliographic Details
Main Authors: Laurynas Dovydaitis, Vytautas Rudžionis
Format: Article
Language:English
Published: Klaipėda University 2018-06-01
Series:Computational Science and Techniques
Online Access:http://journals.ku.lt/index.php/CST/article/view/1579
Description
Summary:<p>In this paper, we are analyzing the results of native Lithuanian speaker recognition and identification using long short-term memory deep neural network. We look at recognition accuracy and identify further potential improvements. Dataset used for training and speaker recognition consists of over 370 unique speakers, who provide their voice utterances in Lithuanian language. In this paper we present results that are derived from part of this dataset.</p><p>DOI: 10.15181/csat.v6i1.1579</p>
ISSN:2029-9966