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Error-Based Analysis of Optimal Tuning Functions Explains Phenomena Observed in Sensory Neurons

机译:最佳调节功能的基于错误的分析解释了感觉神经元中观察到的现象。

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摘要

Biological systems display impressive capabilities in effectively responding to environmental signals in real time. There is increasing evidence that organisms may indeed be employing near optimal Bayesian calculations in their decision-making. An intriguing question relates to the properties of optimal encoding methods, namely determining the properties of neural populations in sensory layers that optimize performance, subject to physiological constraints. Within an ecological theory of neural encoding/decoding, we show that optimal Bayesian performance requires neural adaptation which reflects environmental changes. Specifically, we predict that neuronal tuning functions possess an optimal width, which increases with prior uncertainty and environmental noise, and decreases with the decoding time window. Furthermore, even for static stimuli, we demonstrate that dynamic sensory tuning functions, acting at relatively short time scales, lead to improved performance. Interestingly, the narrowing of tuning functions as a function of time was recently observed in several biological systems. Such results set the stage for a functional theory which may explain the high reliability of sensory systems, and the utility of neuronal adaptation occurring at multiple time scales.
机译:生物系统显示出令人印象深刻的能力,可以实时有效地响应环境信号。越来越多的证据表明,生物可能确实在决策中采用了接近最佳的贝叶斯计算。一个有趣的问题涉及最佳编码方法的属性,即确定受生理约束而优化性能的感觉层中的神经种群的属性。在神经编码/解码的生态理论中,我们表明最佳贝叶斯性能需要神经适应性,以反映环境变化。具体来说,我们预测神经元调节功能具有最佳宽度,该宽度随先验不确定性和环境噪声而增加,并随解码时间窗口而减小。此外,即使对于静态刺激,我们也证明了在相对较短的时间尺度上起作用的动态感官调节功能可改善性能。有趣的是,最近在几种生物系统中观察到了调节功能随时间的变窄。这样的结果为功能理论奠定了基础,该功能理论可以解释感觉系统的高可靠性以及在多个时间尺度上发生的神经元适应的效用。

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