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Towards forensic speaker identification in Spanish using triplet loss

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Abstract

This work explores the use of a triplet loss deep network setting for the forensic identification of speakers in Spanish. Within the framework, we train a convolutional network to produce vector representations of speech spectrogram slices. Then we test how similar these vectors are for a given speaker and how dissimilar are compared with other speakers. Based on these metrics we propose the calculation of the Likelihood Radio which is a cornerstone for forensic identification.

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Publication details

DOI
10.52591/lxai2020121210
OpenAlex
W4210448946
Document type
conference-paper
Language
EN
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