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Quality Coding by Neural Populations in the Early Olfactory Pathway: Analysis Using Information Theory and Lessons for Artificial Olfactory Systems

机译:早期嗅觉通路中神经种群的质量编码:基于信息论的分析和人工嗅觉系统的教训

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摘要

In this article, we analyze the ability of the early olfactory system to detect and discriminate different odors by means of information theory measurements applied to olfactory bulb activity images. We have studied the role that the diversity and number of receptor neuron types play in encoding chemical information. Our results show that the olfactory receptors of the biological system are low correlated and present good coverage of the input space. The coding capacity of ensembles of olfactory receptors with the same receptive range is maximized when the receptors cover half of the odor input space - a configuration that corresponds to receptors that are not particularly selective. However, the ensemble’s performance slightly increases when mixing uncorrelated receptors of different receptive ranges. Our results confirm that the low correlation between sensors could be more significant than the sensor selectivity for general purpose chemo-sensory systems, whether these are biological or biomimetic.
机译:在本文中,我们通过应用于嗅球活动图像的信息论测量来分析早期嗅觉系统检测和区分不同气味的能力。我们研究了受体神经元类型的多样性和数量在编码化学信息中发挥的作用。我们的结果表明,生物系统的嗅觉受体之间的相关性较低,并且可以很好地覆盖输入空间。当接收器覆盖气味输入空间的一半时,具有相同接收范围的嗅觉接收器集合的编码能力将最大化-这种配置对应于不是特别选择性的接收器。但是,当混合不同接受范围的不相关受体时,合奏的性能会稍微提高。我们的结果证实,传感器之间的低相关性可能比通用化学传感器系统(无论是生物传感器还是仿生系统)的传感器选择性更重要。

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