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Can homeostatic plasticity in deafferented primary auditory cortex lead to travelling waves of excitation?

, , , , and . J. Comput. Neurosci., 30 (2): 279-299 (2011)

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Can homeostatic plasticity in deafferented primary auditory cortex lead to travelling waves of excitation?, , , , and . J. Comput. Neurosci., 30 (2): 279-299 (2011)Computationally Efficient DNN-Based Approximation of an Auditory Model for Applications in Speech Processing., , , and . ICASSP, page 301-305. IEEE, (2021)The Effects of HCN and KLT Ion Channels on Adaptation and Refractoriness in a Stochastic Auditory Nerve Model., and . IEEE Trans. Biomed. Eng., 61 (11): 2749-2759 (2014)Renewal-Process Approximation of a Stochastic Threshold Model for Electrical Neural Stimulation., , , , and . J. Comput. Neurosci., 9 (2): 119-132 (2000)A stochastic model of the electrically stimulated auditory nerve: pulse-train response., , , , , , and . IEEE Trans. Biomed. Eng., 46 (6): 630-637 (1999)Robust formant tracking for continuous speech with speaker variability., and . ISSPA (2), page 623-624. IEEE, (2003)0-7803-7946-2.Robust formant tracking in noise., , , and . ICASSP, page 281-284. IEEE, (2002)A Spiking Neuron Model of Cortical Correlates of Sensorineural Hearing Loss: Spontaneous Firing, Synchrony, and Tinnitus., , , and . Neural Comput., 18 (12): 2942-2958 (2006)A Novel Model-Based Hearing Compensation Design Using a Gradient-Free Optimization Method., , , , and . Neural Comput., 17 (12): 2648-2671 (2005)Exploiting Voicing Cues for Contrast Enhanced Frequency Shaping of Speech for Impaired Listeners., , and . ICASSP (5), page 137-140. IEEE, (2006)