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A Task-Optimized Neural Network Replicates Human Auditory Behavior, Predicts Brain Responses, and Reveals a Cortical Processing Hierarchy

机译:任务优化的神经网络复制人类听觉行为,预测大脑响应,并揭示皮质处理等级

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摘要

A core goal of auditory neuroscience is to build quantitative models that predict cortical responses to natural sounds. Reasoning that a complete model of auditory cortex must solve ecologically relevant tasks, we optimized hierarchical neural networks for speech and music recognition. The best-performing network contained separate music and speech pathways following early shared processing, potentially replicating human cortical organization. The network performed both tasks as well as humans and exhibited human-like errors despite not being optimized to do so, suggesting common constraints on network and human performance. The network predicted fMRI voxel responses substantially better than traditional spectrotemporal filter models throughout auditory cortex. It also provided a quantitative signature of cortical representational hierarchy—primary and non-primary responses were best predicted by intermediate and late network layers, respectively. The results suggest that task optimization provides a powerful set of tools for modeling sensory systems.
机译:听觉神经科学的核心目标是建立定量模型,预测对自然声音的皮质反应。推理,一个完整的听觉皮质模型必须解决生态相关的任务,我们优化了语音和音乐识别的等级神经网络。在早期共享处理之后,最佳性能的网络包含单独的音乐和语音途径,可能会复制人类皮质组织。网络执行了两个任务以及人类,尽管未被优化,但表现出对网络和人类性能的共同限制,但表现出人类的错误。该网络预测FMRI体素响应,在整个听觉皮层中的传统光谱仪模型都比传统的光谱仪滤波器模型更好。它还提供了皮质代表层次结构的定量签名 - 初级和非初级响应分别由中间和后期网络层预测。结果表明,任务优化为建模感觉系统提供了一组强大的工具。

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