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Electronic nose inhibition in a spiking neural network for noise cancellation

机译:尖峰神经网络中的电子鼻抑制功能可消除噪声

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An olfaction detection spiking neural network that detects binary odor patterns is analyzed and implemented. This paper presents a new method for inhibiting spiking neural networks by modulating a detection threshold. Interference noise from active odors is measured by a single inhibitory neuron. The inhibition neuron changes the detection threshold to create tolerance for a system with multiple odors present. A digital implementation of the inhibition is simulated. Comparative results prove that threshold modulation reduces false-positive detection error in high noise scenarios where fifteen odors are active simultaneously.
机译:分析和实现嗅觉检测尖峰神经网络,它检测二进制气味模式。本文提出了一种通过调节检测阈值来抑制尖峰神经网络的新方法。来自活动气味的干扰噪声由单个抑制神经元测量。抑制神经元更改检测阈值,以创建对存在多种气味的系统的耐受性。模拟了抑制的数字实现。比较结果证明,阈值调制可在同时散发15种气味的高噪声场景中减少假阳性检测错误。

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