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Isometric Coding of Spiking Haptic Signals by Peripheral Somatosensory Neurons

机译:周围体感神经元的突触触觉信号的等距编码

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We study how primary tactile afferents encode relevant contact features to mediate early processing of haptic information. In this paper, we apply metrical information theory to perform temporal decoding of human microneurography data. First, we enrich the theory by deriving a novel spike train metrics inspired by neuronal computation. This spike train metrics can be interpreted biologically and its behaviour is not influenced by spontaneous activity, which decreases the ability of other spike metrics to separate input patterns. Second, we employ our metrical information tools to demonstrate that primary spiking signals allow a putative neural decoder to go beyond stimulus discrimination. They transmit information about geometrical properties of the input space. We show that first-spike latencies are enough to guarantee maximum information transmission of tactile stimuli. However, entire primary spike trains are necessary to encode isometric representations of the stimulus space, a likely basis for generalisation in haptic perception.
机译:我们研究初级触觉传入如何编码相关的接触功能,以调解触觉信息的早期处理。在本文中,我们应用度量信息理论对人类微神经图学数据进行时间解码。首先,我们通过推导受神经元计算启发的新型峰值训练量度来丰富理论。此峰值序列度量可以从生物学角度进行解释,其行为不受自发活动的影响,这会降低其他峰值度量分离输入模式的能力。其次,我们使用度量信息工具来证明主要的加标信号使推定的神经解码器超越了刺激的识别范围。它们传输有关输入空间的几何属性的信息。我们表明,第一钉延迟足以保证最大程度的信息传递的触觉刺激。但是,整个初级峰值序列对于编码刺激空间的等距表示是必不可少的,这是触觉感知普遍化的可能基础。

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