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Dynamic Divisive Normalization Predicts Time-Varying Value Coding in Decision-Related Circuits

机译:动态除法归一化预测决策相关电路中的时变值编码

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摘要

Normalization is a widespread neural computation, mediating divisive gain control in sensory processing and implementing a context-dependent value code in decision-related frontal and parietal cortices. Although decision-making is a dynamic process with complex temporal characteristics, most models of normalization are time-independent and little is known about the dynamic interaction of normalization and choice. Here, we show that a simple differential equation model of normalization explains the characteristic phasic-sustained pattern of cortical decision activity and predicts specific normalization dynamics: value coding during initial transients, time-varying value modulation, and delayed onset of contextual information. Empirically, we observe these predicted dynamics in saccade-related neurons in monkey lateral intraparietal cortex. Furthermore, such models naturally incorporate a time-weighted average of past activity, implementing an intrinsic reference-dependence in value coding. These results suggest that a single network mechanism can explain both transient and sustained decision activity, emphasizing the importance of a dynamic view of normalization in neural coding.
机译:规范化是一种广泛的神经计算,在感觉处理中介导除数增益控制,并在与决策相关的额叶和顶叶皮层中实现上下文相关的值代码。尽管决策是具有复杂时间特征的动态过程,但是大多数归一化模型与时间无关,并且对归一化和选择的动态交互知之甚少。在这里,我们显示了一个简单的归一化微分方程模型,可以解释皮质决策活动的特征性相位持续模式,并预测特定的归一化动态:初始瞬态过程中的值编码,时变值调制和上下文信息的延迟发作。从经验上,我们观察到这些猴子猴顶壁皮质内扫视相关神经元的预测动力学。此外,此类模型自然包含过去活动的时间加权平均值,从而在值编码中实现了内在的引用依赖性。这些结果表明,单一的网络机制可以解释瞬态和持续的决策活动,从而强调了动态编码归一化在神经编码中的重要性。

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