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Functional Distinctions between the Auditory Cortex and Frontoparietal Network in the Encoding of Speech Features
Yongtian Ou1, Kendrick N Kay2,3, Andrew J Oxenham2
1Department of Psychology, University of Minnesota, Minneapolis, Minnesota 55455 ou000036@umn.edu.
Abstract:
Neural representations of acoustic features that are key to speech perception have been studied extensively within the auditory cortex (AC), but their representations in higher-order cortical regions remain poorly understood. This study investigates the cortical encoding of three acoustic features in spoken vowels to delineate the functional distinctions across different cortical regions. We used ultra-high-field functional magnetic resonance imaging while human participants of both sexes listened to vowels and were asked to identify three aspects: vowel identity (probing spectral content), speaker identity (probing primarily fundamental frequency), and pitch glide direction (probing spectrotemporal modulation). Three brain regions exhibited selectivity to these features: the AC, premotor cortex (PMC), and the intraparietal sulcus (IPS). The AC demonstrated an encoding hierarchy across features, with significantly stronger encoding robustness for vowel identity than for speaker identity or pitch glide direction. In contrast, both the PMC and IPS showed uniform encoding robustness across all three features, likely reflecting their equal relevance for the identification task. Furthermore, during silent trials when participants were queried about the identity of the prior sound, AC showed no activity, whereas the PMC and IPS exhibited robust activation that was modulated by behavioral performance. These findings indicate functionally distinct roles between sensory and higher-order cortical regions: the stimulus-driven AC encodes feature-specific acoustic information, whereas the domain-general frontoparietal network performs task-relevant cognitive processing that supports goal-directed behavior.
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