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Hierarchical Processing of Auditory Objects in Humans

机译:人类听觉对象的分层处理

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摘要

This work examines the computational architecture used by the brain during the analysis of the spectral envelope of sounds, an important acoustic feature for defining auditory objects. Dynamic causal modelling and Bayesian model selection were used to evaluate a family of 16 network models explaining functional magnetic resonance imaging responses in the right temporal lobe during spectral envelope analysis. The models encode different hypotheses about the effective connectivity between Heschl's Gyrus (HG), containing the primary auditory cortex, planum temporale (PT), and superior temporal sulcus (STS), and the modulation of that coupling during spectral envelope analysis. In particular, we aimed to determine whether information processing during spectral envelope analysis takes place in a serial or parallel fashion. The analysis provides strong support for a serial architecture with connections from HG to PT and from PT to STS and an increase of the HG to PT connection during spectral envelope analysis. The work supports a computational model of auditory object processing, based on the abstraction of spectro-temporal “templates” in the PT before further analysis of the abstracted form in anterior temporal lobe areas.
机译:这项工作检查了在分析声音频谱包络时大脑使用的计算架构,这是定义听觉对象的重要声学特征。动态因果模型和贝叶斯模型选择用于评估16个网络模型系列,这些模型解释了频谱包络分析期间右侧颞叶的功能性磁共振成像响应。这些模型对有关包含主要听觉皮层,颞颞叶(PT)和颞颞沟(STS)的赫斯基Gyrus(HG)之间的有效连通性以及在频谱包络分析期间对该耦合进行调制的不同假设进行了编码。特别是,我们旨在确定频谱包络分析过程中的信息处理是以串行还是并行方式进行的。该分析为从HG到PT以及从PT到STS的连接以及在频谱包络分析期间增加HG到PT的连接的串行体系结构提供了强大的支持。这项工作在进一步分析前颞叶区域的抽象形式之前,基于PT中的光谱时“模板”的抽象,支持了听觉对象处理的计算模型。

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