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Dive into the research topics where Mathew Magimai.-Doss is active.

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Featured researches published by Mathew Magimai.-Doss.


international conference on machine learning | 2006

Juicer: a weighted finite-state transducer speech decoder

Darren J. Moore; John Dines; Mathew Magimai.-Doss; Jithendra Vepa; Octavian Cheng; Thomas Hain

A major component in the development of any speech recognition system is the decoder. As task complexities and, consequently, system complexities have continued to increase the decoding problem has become an increasingly significant component in the overall speech recognition system development effort, with efficient decoder design contributing to significantly improve the trade-off between decoding time and search errors. In this paper we present the “Juicer” (from transducer) large vocabulary continuous speech recognition (LVCSR) decoder based on weighted finite-State transducer (WFST). We begin with a discussion of the need for open source, state-of-the-art decoding software in LVCSR research and how this lead to the development of Juicer, followed by a brief overview of decoding techniques and major issues in decoder design. We present Juicer and its major features, emphasising its potential not only as a critical component in the development of LVCSR systems, but also as an important research tool in itself, being based around the flexible WFST paradigm. We also provide results of benchmarking tests that have been carried out to date, demonstrating that in many respects Juicer, while still in its early development, is already achieving state-of-the-art. These benchmarking tests serve to not only demonstrate the utility of Juicer in its present state, but are also being used to guide future development, hence, we conclude with a brief discussion of some of the extensions that are currently under way or being considered for Juicer.


conference of the international speech communication association | 2013

Estimating Phoneme Class Conditional Probabilities from Raw Speech Signal using Convolutional Neural Networks

Dimitri Palaz; Ronan Collobert; Mathew Magimai.-Doss


Archive | 2013

Probabilistic Lexical Modeling and Grapheme-based Automatic Speech Recognition

Ramya Rasipuram; Mathew Magimai.-Doss


conference of the international speech communication association | 2008

Neural Network based Regression for Robust Overlapping Speech Recognition using Microphone Arrays

Weifeng Li; John Dines; Mathew Magimai.-Doss


Archive | 2016

End-to-End Acoustic Modeling using Convolutional Neural Networks for Automatic Speech Recognition

Dimitri Palaz; Mathew Magimai.-Doss; Ronan Collobert


Archive | 2001

Pronunciation models and their evaluation using confidence measures

Mathew Magimai.-Doss


conference of the international speech communication association | 2015

Automatic Accentedness Evaluation of Non-Native Speech Using Phonetic and Sub-Phonetic Posterior Probabilities

Ramya Rasipuram; Milos Cernak; Alexandre Nanchen; Mathew Magimai.-Doss


4th Biennial Workshop on Less-Resourced Languages | 2015

Pronunciation Lexicon Development for Under-Resourced Languages Using Automatically Derived Subword Units: A Case Study on Scottish Gaelic

Marzieh Razavi; Ramya Rasipuram; Mathew Magimai.-Doss


Archive | 2011

MULTITASK LEARNING TO IMPROVE ARTICULATORY FEATURE ESTIMATION AND PHONEME RECOGNITION

Ramya Rasipuram; Mathew Magimai.-Doss


Archive | 2009

On MLP-based Posterior Features for Template-based ASR

Serena Soldo; Mathew Magimai.-Doss; Joel Praveen Pinto; Hervé Bourlard

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Hervé Bourlard

École Polytechnique Fédérale de Lausanne

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John Dines

Idiap Research Institute

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Dimitri Palaz

Idiap Research Institute

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Marzieh Razavi

Idiap Research Institute

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Serena Soldo

Idiap Research Institute

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Jithendra Vepa

Idiap Research Institute

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