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1
Towards the acquisition of a sensorimotor vocal tract action repository within a neural model of speech processing
In: http://www.phonetik.phoniatrie.rwth-aachen.de/bkroeger/documents/Kroeger_etal_2011_LNCS_b.pdf (2011)
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2
A gesturebased concept for speech movement control in articulatory speech synthesis
In: http://www.vocaltractlab.de/publications/kroeger-2007-cost.pdf (2007)
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3
A visual articulatory model and its application to therapy of speech disorders : a pilot study [Online resource]
In: Speech production and perception : experimental analyses and models / editors Susanne Fuchs, Pascal Perrier and Bernd Pompino-Marschall, Zentrum für Allgemeine Sprachwissenschaft, Sprachtypologie und Universalienforschung (Berlin): ZAS papers in linguistics ; Vol. 40 (2005) 40 (2005), 79-94
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4
A Neurofunctional Model of Speech Production Including Aspects of Auditory and Audio-Visual Speech Perception
In: http://isca-speech.org/archive_open/archive_papers/avsp08/av08_083.pdf
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5
Performing Identification and Discrimination Experiments for Vowels and Voiced Plosives by Using a Neurocomputational Model of Speech Production and Perception
In: http://issp2008.loria.fr/Proceedings/PDF/issp2008-82.pdf
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6
Neural models of speech production and speech acquisition
In: http://www.zas.gwz-berlin.de/sommer_org/abstract/kro.pdf
Abstract: Neural models of sensorimotor control of speech production are rare. One current approach is the model given by Guenther (2006 and Guenther et al. 2006). Following the ideas of Guenther a comprehensive neural model of speech production using self-organizing neural networks can be given (Kröger et al. 2006a and 2006b). Both approaches simulate early processes of speech acquisition (babbling and imitation) as occur by toddlers during their first (and second) year of lifetime. The Kröger model is capable of generating acoustic speech signals and sensory feedback signals by using a high quality 3-dimensional articulatory-acoustic speech synthesizer as a front-end device. A mental syllabary forms the central layer within this model. The mental syllabary comprises a heap of neural SOM layers (phonetic map) which can be interpreted as a system of mirror neurons co-activating phonemic, sensory, and motor states of a syllable under production (feed-forward control). Feedback control is modeled by comparing the current sensory feedback state produced by the articulatory-acoustic model with the prestored sensory state, activated during feed-forward control via the mental syllabary. Both models can be integrated easily as a phonetic module within a more general linguistic model of speech production.
URL: http://citeseerx.ist.psu.edu/viewdoc/summary?doi=10.1.1.93.7948
http://www.zas.gwz-berlin.de/sommer_org/abstract/kro.pdf
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7
Categorical perception of consonants and vowels: evidence from a neurophonetic model of speech production and perception
In: http://www.vocaltractlab.de/publications/kroeger-2011-lncs.pdf
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8
Audiovisual Tools for Phonetic and Articulatory Visualization in Computer-Aided Pronunciation Training
In: http://www.se.cuhk.edu.hk/hccl/publications/pub/LNCS5967.pdf
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9
during
In: http://www.phonetik.phoniatrie.rwth-aachen.de/bkroeger/documents/Kroeger_etal_2006_ISSP.pdf
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10
Coupling Phonology and Phonetics in a Constraint-Based Gestural Model
In: http://pc0864.Germanistik-Kunst.uni-marburg.de/~walther/konveng.ps.gz
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11
RESEARCH Associative le
In: http://www.phonetik.phoniatrie.rwth-aachen.de/bkroeger/documents/Kroeger_2014_EPJNBP.pdf
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12
Early Vocal Development in a Normally Hearing Infant and a Young Cochlear Implant Recipient
In: http://issp2008.loria.fr/Proceedings/PDF/issp2008-36.pdf
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13
SIMULATION OF VOCAL TRACT GROWTH FOR ARTICULATORY SPEECH SYNTHESIS
In: http://www.icphs2007.de/conference/Papers/1153/1153.pdf
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