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Neural Computation and the Computational Theory of Cognition

机译:神经计算与认知计算理论

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We begin by distinguishing computationalism from a number of other theses that are sometimes conflated with it. We also distinguish between several important kinds of computation: computation in a generic sense, digital computation, and analog computation. Then, we defend a weak version of computationalism-neural processes are computations in the generic sense. After that, we reject on empirical grounds the common assimilation of neural computation to either analog or digital computation, concluding that neural computation is sui generis. Analog computation requires continuous signals; digital computation requires strings of digits. But current neuroscientific evidence indicates that typical neural signals, such as spike trains, are graded like continuous signals but are constituted by discrete functional elements (spikes); thus, typical neural signals are neither continuous signals nor strings of digits. It follows that neural computation is sui generis. Finally, we highlight three important consequences of a proper understanding of neural computation for the theory of cognition. First, understanding neural computation requires a specially designed mathematical theory (or theories) rather than the mathematical theories of analog or digital computation. Second, several popular views about neural computation turn out to be incorrect. Third, computational theories of cognition that rely on non-neural notions of computation ought to be replaced or reinterpreted in terms of neural computation.
机译:我们首先将计算主义与有时与之混为一谈的众多其他论文区分开。我们还区分了几种重要的计算类型:一般意义上的计算,数字计算和模拟计算。然后,我们捍卫了计算主义的弱版本-神经过程是一般意义上的计算。此后,我们从经验上拒绝了神经计算对模拟或数字计算的常见同化,认为神经计算是特殊的。模拟计算需要连续信号;数字计算需要数字字符串。但是,目前的神经科学证据表明,典型的神经信号(例如尖峰序列)的等级像连续信号一样,但是由离散的功能元件(尖峰)组成;因此,典型的神经信号既不是连续信号也不是数字字符串。因此,神经计算是专门的。最后,我们强调了正确理解神经计算对认知理论的三个重要结果。首先,了解神经计算需要专门设计的一种或多种数学理论,而不是模拟或数字计算的数学理论。其次,关于神经计算的几种流行观点被证明是不正确的。第三,依赖于非神经计算概念的认知计算理论应该在神经计算方面进行替换或重新解释。

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