首页> 外文期刊>Proceedings of the National Academy of Sciences of the United States of America >Encoding for computation: Recognizing brief dynamical patterns by exploiting effects of weak rhythms on action-potential timing
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Encoding for computation: Recognizing brief dynamical patterns by exploiting effects of weak rhythms on action-potential timing

机译:用于计算的编码:通过利用微弱的节奏对动作电位计时的影响来识别简短的动态模式

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摘要

Many stimuli have meaning only as patterns over time. Most auditory and many visual stimuli are of this nature and can be described as multidimensional, time-dependent vectors. A simple neuron can encode a single component of the vector in a firing rate. The addition of a small subthreshold oscillatory current perturbs the action-potential timing, encoding the signal also in a timing relationship, with little effect on the coexisting firing rate representation. When the subthreshold signal is common to a group of neurons, the timing-based information is significant to neurons receiving inputs from the group. This information encoding allows simple implementation of computations not readily done with rate coding. These ideas are examined by using speech to provide a realistic input signal to a biologically inspired model network of spiking neurons. The output neurons of the two-layer system are shown to specifically encode short linguistic elements of speech.
机译:许多刺激仅随着时间的流逝而具有意义。大多数听觉和许多视觉刺激都是这种性质的,可以描述为多维的,时间相关的向量。简单的神经元可以发射速率编码载体的单个成分。较小的亚阈值振荡电流的添加会干扰动作电位的时序,并以时序关系对信号进行编码,而对并存的点火速率表示几乎没有影响。当亚阈值信号对于一组神经元是公共的时,基于时序的信息对于从该组接收输入的神经元很重要。该信息编码允许简单地实现速率编码不容易完成的计算。通过使用语音为尖峰神经元的生物学启发模型网络提供现实的输入信号,来检验这些想法。显示了两层系统的输出神经元专门编码语音的短语言元素。

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