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Sparse firing frequency-based neuron spike train classification.

机译:基于稀疏发射频率的神经元峰值训练分类。

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摘要

Peri-stimulus time histograms (PSTHs) reveal the temporal distribution of action potentials, averaged over many stimulus presentations. PSTHs have been used as model responses to solve the classification problem, in which a single response (i.e., spike train) is assigned to one of a set of response models evoked by a set of stimuli. In this study, we developed and applied a sparse firing frequency-based method to classify individual spike trains of slowly adapting pulmonary stretch receptors (SARs). Extracellularly recorded individual SAR spike trains were evoked by one of three different lung inflation volumes in anesthetized, paralyzed adult male New Zealand White rabbits. Three different PSTH-based firing frequency response models (i.e., one for each stimulus) were constructed from two-thirds of the responses to the 600 inflations presented at each volume, while the remaining one-third were used as responses to be classified. An instantaneous firing frequency representation of each remaining test response forms: sparse and filled. The sparse format assigned instantaneous firing rate values only in bins that contained spikes, while the filled format assigned values to intervening bins too. Classification was performed by computing the Euclidean distance between the response spike trains and the three PSTH-based models using both sparse and filled representations. When comparing the two representations with regard to classification accuracy, we found that the sparse representation does not diminish performance appreciably, while reducing computational burden significantly.
机译:周围刺激时间直方图(PSTH)揭示了动作电位的时间分布,在许多刺激表现中均得到平均。 PSTH已被用作解决分类问题的模型响应,其中将单个响应(即尖峰序列)分配给一组刺激所诱发的一组响应模型中的一个。在这项研究中,我们开发并应用了基于稀疏触发频率的方法,对缓慢适应性肺拉伸受体(SAR)的单个峰值序列进行分类。在麻醉的,瘫痪的成年雄性新西兰白兔中,三种不同的肺膨胀量之一诱发了细胞外记录的单个SAR尖峰序列。三种不同的基于PSTH的点火频率响应模型(即每个刺激一个)由三分之二的响应(针对每个音量下出现的600次充气)构建而成,而其余的三分之一用作要分类的响应。每个剩余测试响应形式的瞬时触发频率表示:稀疏和填充。稀疏格式仅在包含尖峰的仓中分配瞬时点火速率值,而填充格式也为中间仓分配值。通过使用稀疏表示和填充表示来计算响应峰值序列和三个基于PSTH的模型之间的欧几里得距离来进行分类。在分类精度方面比较两种表示形式时,我们发现稀疏表示不会明显降低性能,同时显着减少了计算负担。

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