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Binary Tuning is Optimal for Neural Rate Coding with High Temporal Resolution

机译:具有高时间分辨率的神经速率编码的二进制调谐

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Here we derive optimal gain functions for minimum mean square reconstruction from neural rate responses subjected to Poisson noise. The shape of these functions strongly depends on the length T of the time window within which spikes are counted in order to estimate the underlying firing rate. A phase transition towards pure binary encoding occurs if the maximum mean spike count becomes smaller than approximately three provided the minimum firing rate is zero. For a particular function class, we were able to prove the existence of a second-order phase transition analytically. The critical decoding time window length obtained from the analytical derivation is in precise agreement with the numerical results. We conclude that under most circumstances relevant to information processing in the brain, rate coding can be better ascribed to a binary (low-entropy) code than to the other extreme of rich analog coding.
机译:在这里,我们获得最佳的增益功能,用于从泊松噪声受到神经速率响应的最小均线重建。这些功能的形状强烈取决于时间窗口的长度T,以估计底层射击率。如果最大烧制率为零,则发生朝纯二进制编码的相位过渡。对于特定的函数类,我们能够分析证明二阶相转变的存在。从分析衍生获得的临界解码时间窗口长度与数值结果精确的协议。我们得出结论,在大多数与大脑中的信息处理相关的情况下,速率编码可以更好地归因于二进制(低熵)代码而不是丰富的模拟编码的另一个极端。

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