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Network model of predictive coding based on reservoir computing for multi-modal processing of visual and auditory signals

机译:基于储层计算的预测编码网络模型,基于储层计算视觉和听觉信号的多模态处理

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We propose a hierarchical network model based on predictive coding and reservoir computing as a model of multi-modal sensory integration in the brain. The network is composed of visual, auditory, and integration areas. In each area, the dynamical reservoir acts as a generative model that reproduces the time-varying sensory signal. The states of the visual and auditory reservoir are spatially compressed and are sent to the integration area. We evaluate the model with a dataset of time courses, including a pair of visual (hand-written characters) and auditory (read utterances) signal. We show that the model learns the association of multiple modalities of the sensory signals and that the model reconstructs the visual signal from a given corresponding auditory signal. Our approach presents a novel dynamical mechanism of the multi-modal information processing in the brain and the fundamental technology for a brain like an artificial intelligence system.
机译:我们提出了一种基于预测编码和储层计算的分层网络模型,作为大脑中多模态感官集成的模型。网络由视觉,听觉和集成区域组成。在每个区域中,动态储存器用作再现时变感觉信号的生成模型。视觉和听觉水库的状态在空间压缩,并被送到集成区域。我们使用时间课程的数据集进行评估模型,包括一对视觉(手写字符)和听觉(读取话语)信号。我们表明该模型学习了感觉信号的多种模式的关联,并且模型从给定的对应听觉信号重建视觉信号。我们的方法提出了大脑中多模态信息处理的新动态机制,以及人工智能系统的大脑的基本技术。

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