Please note that the actual end date of the project was November 10, 2016
The auditory system has evolved to process natural sounds efficiently and robustly, even under adverse acoustic conditions. Humans can detect, localize, and identify speech embedded in background noise in reverberant environments. The general aim of this research was to uncover the neural mechanisms underlying such processing and study their functions in realistic environments. In particular, we were concerned with hearing in adverse conditions i.e. when a sound scene is corrupted with many other distracting sounds. To that end we studied how auditory sensory processing adapts to the acoustical context in which it happens. Understanding the neural origin of such effects is of fundamental importance in neuroscience and will guide the design of human auditory brainstem prostheses. Hearing impairment is a public health priority and each research that moves forward the understanding of the healthy auditory is critical.
The overall scientific objective was to determine the site of neural emergence and understand the neural mechanism of a perceptual effect where a sound pops out out of a mixture because of the context in which it happens. The goals of this project were reached. On the scientific side, the results convincingly support the hypothesis. Dissemination have taken place during invited talk and conferences and a paper his on its way. On the learning side, the fellow is now trained as a neurophysiologist and can design and undertake independently electrophysiology experiments in the mammalian auditory system.