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    EARSHOT: A Minimal Neural Network Model of Incremental Human Speech Recognition
    with James S. Magnuson, Heejo You, Sahil Luthra, Monica Li, Hosung Nam, Monty Escabí, Kevin Brown, Rachel M. Theodore, Nicholas Monto, and Jay G. Rueckl
    Cognitive Science 44 (4). 2020.
    Despite the lack of invariance problem (the many‐to‐many mapping between acoustics and percepts), human listeners experience phonetic constancy and typically perceive what a speaker intends. Most models of human speech recognition (HSR) have side‐stepped this problem, working with abstract, idealized inputs and deferring the challenge of working with real speech. In contrast, carefully engineered deep learning networks allow robust, real‐world automatic speech recognition (ASR). However, the com…Read more