Cognitive auditory processing8/16/2023 ![]() Journal of Neurophysiology, 92(1), 73–82. Environmental enrichment improves response strength, threshold, selectivity, and latency of auditory cortex neurons. New Mathematics and Natural Computation, 5(1), 61–81.Įngineer, N. Neurodynamics of category learning: Towards understanding the creation of meaning in the brain. Neural population coding of sound level adapts to stimulus statistics. Proceedings of the National Academy of Sciences of the USA, 109(6), 2144–2149.ĭean, I., Harper, N. Task reward structure shapes rapid receptive field plasticity in auditory cortex. Context-dependent encoding in the human auditory brainstem. ![]() Baltimore: Brookes.Ĭhandrasekaran, B., Hornickel, J., Skoe, E., Nicol, T., & Kraus, N. Fitch (Eds.), Developmental dyslexia: Early precursors, neurobehavioral markers and biological substrates. Biological factors contributing to reading ability: Subcortical auditory function. Psychophysiology, 47, 236–246.Ĭhandrasekaran, B., & Kraus, N. The scalp-recorded brainstem response to speech: Neural origins and plasticity. (2013), Knockdown of the dyslexia-associated gene Kiaa0319 impairs temporal responses to speech stimuli in rat primary auditory cortex, Cerebral Cortex, 10.1093/cercor/bht028.Ĭhandrasekaran, B., & Kraus, N. Khodaparast, N., Rennaker, R., LoTurco, J.J. Inhibitory neurotransmission, plasticity and aging in the mammalian central auditory system. ![]() Bilingual experience and executive functioning in young children. Journal of the Association for Research in Otolaryngology, 12(1), 89–100.Ĭarlson, S. Subcortical plasticity following perceptual learning in a pitch discrimination task. Multisensory processing via early cortical stages: Connections of the primary auditory cortical field with other sensory systems. Intonation and the perceptual separation of simultaneous voices. Neurobiology of Learning and Memory, 89(2), 153–166.īrokx, J. Learning strategy determines auditory cortical plasticity. Reading and subcortical auditory function. M., Skoe, E., Nicol, T., Zecker, S., & Kraus, N. The descending corticocollicular pathway mediates learning-induced auditory plasticity. A dynamic auditory-cognitive system supports speech-in-noise perception in older adults. Aging affects neural precision of speech encoding. Journal of Speech, Language, and Hearing Research, 56(1), 31–43.Īnderson, S., Parbery-Clark, A., White-Schwoch, T., & Kraus, N. Auditory brainstem response to complex sounds predicts self-reported speech-in-noise performance. A neural basis of speech-in-noise perception in older adults. Brainstem correlates of speech-in-noise perception in children. Journal of Neuroscience, 30(14), 4922–4926.Īnderson, S., Skoe, E., Chandrasekaran, B., Zecker, S., & Kraus, N. Neural timing is linked to speech perception in noise. Trends in Amplification, 14(2), 73–83.Īnderson, S., Skoe, E., Chandrasekaran, B., & Kraus, N. ![]() Objective neural indices of speech-in-noise perception. This process is experimental and the keywords may be updated as the learning algorithm improves.Īnderson, S., & Kraus, N. These keywords were added by machine and not by the authors. Finally, it presents data demonstrating a means of physiologically accessing the cognitive auditory system in humans via the auditory brain stem response to complex stimuli (cABR) and proffers its application in the assessment of and research into human auditory-based communications. This chapter reviews some of the anatomical and physiological underpinnings of these cognitive processes. Limbic and association areas have direct input to both auditory cortex and lower areas, and there is clear evidence that cognitive processes such as attention, memory, emotion, and motivation impact the auditory processing of sound. These circuits are bidirectional and extend beyond classically defined auditory pathway. The auditory system comprises a vast network of interconnected peripheral, subcortical, and cortical centers. ![]()
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