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Towards Improving Low-Resource Speech Recognition Using Articulatory and Language Features

Müller, Markus; Stüker, Sebastian; Waibel, Alexander

Abstract:

In an increasingly globalized world, there is a rising demand for speech recognition systems. Systems for languages like English, German or French do achieve a decent performance, but there exists a long tail of languages for which such systems do not yet exist. State-of-the-art speech recognition systems feature Deep Neural Networks (DNNs). Being a data driven method and therefore highly dependent on sufficient training data, the lack of resources directly affects the recognition performance. There exist multiple techniques to deal with such resource constraint conditions, one approach is the use of additional data from other languages. In the past, is was demonstrated that multilingually trained systems benefit from adding language feature vectors (LFVs) to the input features, similar to i-Vectors. In this work, we extend this approach by the addition of articulatory features (AFs). We show that AFs also benefit from LFVs and that multilingual system setups benefit from adding both AFs and LFVs. Pretending English to be a low-resource language, we restricted ourselves to use only 10h of English acoustic training data. For system training, we use additional data from French, German and Turkish. ... mehr


Verlagsausgabe §
DOI: 10.5445/IR/1000166277
Veröffentlicht am 22.01.2024
Cover der Publikation
Zugehörige Institution(en) am KIT Institut für Anthropomatik und Robotik (IAR)
Publikationstyp Proceedingsbeitrag
Publikationsjahr 2016
Sprache Englisch
Identifikator KITopen-ID: 1000166277
Erschienen in Proceedings of the 13th International Conference on Spoken Language Translation. Ed.: M. Cettolo, J. Niehues, S. Stüker, L. Bentivogli, R. Cattoni, M. Federico
Veranstaltung 13th International Conference on Spoken Language Translation (IWSLT 2016), Seattle, WA, USA, 08.12.2016 – 09.12.2016
Verlag Association for Computational Linguistics (ACL)
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