Please use this identifier to cite or link to this item: https://www.um.edu.mt/library/oar/handle/123456789/148481
Title: UOM-constrained IWSLT 2024 shared task submission - Maltese speech translation
Authors: Abela, Kurt
Riyadh, Md Abdur Razzaq
Galea, Melanie
Busuttil, Alana
Kovalev, Roman
Williams, Aiden
Borg, Claudia
Keywords: Automatic speech recognition
Speech processing systems
Computational linguistics
Machine translating
Translating and interpreting
Issue Date: 2024
Publisher: Association for Computational Linguistics
Citation: Abela, K., Riyadh, Md A. R., Galea, M., Busuttil, A., Kovalev, R., Williams, A. & Borg, C. (2024). UOM-Constrained IWSLT 2024 Shared Task Submission - Maltese Speech Translation. 21st International Conference on Spoken Language Translation (IWSLT 2024), Bangkok. 108-113.
Abstract: This paper presents our IWSLT-2024 shared task submission on the low-resource track. This submission forms part of the constrained setup; implying limited data for training. Following the introduction, this paper consists of a literature review defining previous approaches to speech translation, as well as their application to Maltese, followed by the defined methodology, evaluation and results, and the conclusion. A cascaded submission on the Maltese to English language pair is presented; consisting of a pipeline containing: a DeepSpeech 1 Automatic Speech Recognition (ASR) system, a KenLM model to optimise the transcriptions, and finally an LSTM machine translation model. The submission achieves a 0.5 BLEU score on the overall test set, and the ASR system achieves a word error rate of 97.15%. Our code is made publicly available.
URI: https://www.um.edu.mt/library/oar/handle/123456789/148481
Appears in Collections:Scholarly Works - FacICTAI

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