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Representation of Multidimensional Stimuli: Quantifying the Most Informative Stimulus Dimension from Neural Responses

机译:多维刺激的表示:从神经反应中量化最翔实的刺激维度

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摘要

A common way to assess the function of sensory neurons is to measure the number of spikes produced by individual neurons while systematically varying a given dimension of the stimulus. Such measured tuning curves can then be used to quantify the accuracy of the neural representation of the stimulus dimension under study, which can in turn be related to behavioral performance. However, tuning curves often change shape when other dimensions of the stimulus are varied, reflecting the simultaneous sensitivity of neurons to multiple stimulus features. Here we illustrate how one-dimensional information analyses are misleading in this context, and propose a framework derived from Fisher information that allows the quantification of information carried by neurons in multidimensional stimulus spaces. We use this method to probe the representation of sound localization in auditory neurons of chinchillas and guinea pigs of both sexes, and show how heterogeneous tuning properties contribute to a representation of sound source position that is robust to changes in sound level.>SIGNIFICANCE STATEMENT Sensory neurons' responses are typically modulated simultaneously by numerous stimulus properties, which can result in an overestimation of neural acuity with existing one-dimensional neural information transmission measures. To overcome this limitation, we develop new, compact expressions of Fisher information-derived measures that bound the robust encoding of separate stimulus dimensions in the context of multidimensional stimuli. We apply this method to the problem of the representation of sound source location in the face of changes in sound source level by neurons of the auditory midbrain.
机译:评估感觉神经元功能的一种常用方法是,在系统改变给定刺激尺寸的同时,测量单个神经元产生的尖峰数。然后,可以使用此类测得的调节曲线来量化所研究刺激维度的神经表示的准确性,而该准确性又可以与行为表现相关。但是,当刺激的其他维度发生变化时,调整曲线通常会改变形状,这反映了神经元对多种刺激特征的同时敏感性。在这里,我们说明了在这种情况下一维信息分析是如何产生误导的,并提出了一个从Fisher信息派生的框架,该框架允许对多维刺激空间中神经元携带的信息进行量化。我们使用这种方法来探究两种性别的龙猫和豚鼠的听觉神经元中声音定位的表示,并显示异质调音特性如何有助于表示对声级变化具有鲁棒性的声源位置。>意义陈述感觉神经元的反应通常是由多种刺激特性同时调节的,这可能导致现有一维神经信息传递措施对神经敏锐度的高估。为了克服这一限制,我们开发了Fisher信息测度的新紧致表达式,这些度量在多维刺激的范围内限制了单独刺激维度的鲁棒编码。我们将这种方法应用于在听觉中脑神经元面对声源水平变化时声源位置的表示问题。

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