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The Role of Coincidence-Detector Neurons in the Reliability and Precision of Subthreshold Signal Detection in Noise

机译:符合检测器神经元在噪声中阈值下信号检测的可靠性和精度中的作用

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摘要

Subthreshold signal detection is an important task for animal survival in complex environments, where noise increases both the external signal response and the spontaneous spiking of neurons. The mechanism by which neurons process the coding of signals is not well understood. Here, we propose that coincidence detection, one of the ways to describe the functionality of a single neural cell, can improve the reliability and the precision of signal detection through detection of presynaptic input synchrony. Using a simplified neuronal network model composed of dozens of integrate-and-fire neurons and a single coincidence-detector neuron, we show how the network reads out the subthreshold noisy signals reliably and precisely. We find suitable pairing parameters, the threshold and the detection time window of the coincidence-detector neuron, that optimize the precision and reliability of the neuron. Furthermore, it is observed that the refractory period induces an oscillation in the spontaneous firing, but the neuron can inhibit this activity and improve the reliability and precision further. In the case of intermediate intrinsic states of the input neuron, the network responds to the input more efficiently. These results present the critical link between spiking synchrony and noisy signal transfer, which is utilized in coincidence detection, resulting in enhancement of temporally sensitive coding scheme.
机译:亚阈值信号检测是复杂环境中动物生存的重要任务,在这种环境中,噪声会增加外部信号响应和神经元的自发尖峰。神经元处理信号编码的机制尚不清楚。在此,我们提出,巧合检测是描述单个神经细胞功能的一种方法,它可以通过检测突触前输入同步来提高信号检测的可靠性和精度。使用简化的神经元网络模型,该模型由数十个“整合并发射”神经元和一个巧合检测器神经元组成,我们展示了网络如何可靠,准确地读取亚阈值噪声信号。我们找到合适的配对参数,重合检测器神经元的阈值和检测时间窗口,以优化神经元的精度和可靠性。此外,观察到不应期诱发了自发放电的振荡,但是神经元可以抑制这种活动并进一步提高可靠性和精度。在输入神经元处于中间固有状态的情况下,网络会更有效地响应输入。这些结果提出了尖峰同步和噪声信号传输之间的关键链接,该链接被用于巧合检测中,从而增强了对时间敏感的编码方案。

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