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1
A Very Low Resource Language Speech Corpus for Computational Language Documentation Experiments
In: Language Resources and Evaluation Conference (LREC) ; https://hal.archives-ouvertes.fr/hal-01807093 ; Language Resources and Evaluation Conference (LREC), Nicoletta Calzolari (Conference chair) and Khalid Choukri and Christopher Cieri and Thierry Declerck and Sara Goggi and Koiti Hasida and Hitoshi Isahara and Bente Maegaard and Joseph Mariani and Hélène Mazo and Asuncion Moreno and Jan Odijk and Stelios Pi, May 2018, Miyazaki, Japan (2018)
Abstract: International audience ; Most speech and language technologies are trained with massive amounts of speech and text information. However, most of the world languages do not have such resources and some even lack a stable orthography. Building systems under these almost zero resource conditions is not only promising for speech technology but also for computational language documentation. The goal of computational language documentation is to help field linguists to (semi-)automatically analyze and annotate audio recordings of endangered, unwritten languages. Example tasks are automatic phoneme discovery or lexicon discovery from the speech signal. This paper presents a speech corpus collected during a realistic language documentation process. It is made up of 5k speech utterances in Mboshi (Bantu C25) aligned to French text translations. Speech transcriptions are also made available: they correspond to a non-standard graphemic form close to the language phonology. We detail how the data was collected, cleaned and processed and we illustrate its use through a zero-resource task: spoken term discovery. The dataset is made available to the community for reproducible computational language documentation experiments and their evaluation.
Keyword: [INFO.INFO-CL]Computer Science [cs]/Computation and Language [cs.CL]; field linguistics; language documentation; spoken term discovery; unwritten languages; word segmentation; zero resource technologies
URL: https://hal.archives-ouvertes.fr/hal-01807093/document
https://hal.archives-ouvertes.fr/hal-01807093/file/lrec2018_mboshi_final-3.pdf
https://hal.archives-ouvertes.fr/hal-01807093
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2
Unsupervised word segmentation from speech with attention
Godard, P.; Boito, M.Z.; Ondel, L.. - : ISCA, 2018
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3
A Very Low Resource Language Speech Corpus for Computational Language Documentation Experiments ...
Godard, P.; Adda, G.; Adda-Decker, M.. - : arXiv, 2017
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