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Probabilistic computation by neuromine networks

机译:神经网络的概率计算

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摘要

In this paper, we address the question, can biologically feasible neural nets compute more than can be computed by deterministic polynomial time algorithms? Since we want to maintain a claim of plausibility and reasonableness we restrict ourselves to algorithmically easy to construct nets and we rule out infinite precision in parameters and in any analog parts of the computation. Our approach is to consider the recent advances in randomized algorithms and see if such randomized computations can be described by neural nets. We start with a pair of neurons and show that by connecting them with reciprocal inhibition and some tonic input, then the steady-state will be one neuron ON and one neuron OFF, but which neuron will be ON and which neuron will be OFF will be chosen at random (perhaps, it would be better to say that microscopic noise in the analog computation will be turned into a megascale random bit). We then show that we can build a small network that uses this random bit process to generate repeatedly random bits. This random bit generator can then be connected with a neural net representing the deterministic part of randomized algorithm. We, therefore, demonstrate that these neural nets can carry out probabilistic computation and thus be less limited than classical neural nets. (C) 2000 Elsevier Science Ireland Ltd. All rights reserved. [References: 24]
机译:在本文中,我们解决了这个问题,生物学上可行的神经网络能否比确定性多项式时间算法所能计算的更多?由于我们要保持合理性和合理性的主张,我们将自己限制在算法上易于构造网络,并且排除了参数和计算的任何模拟部分中的无限精度。我们的方法是考虑随机算法的最新进展,看看这种随机计算是否可以用神经网络描述。我们从一对神经元开始,并表明通过将它们与相互抑制和一些补品输入联系起来,则稳态将是一个神经元打开而一个神经元关闭,但是哪个神经元将打开,哪个神经元将关闭。随机选择(也许最好将模拟计算中的微观噪声转换为兆位随机位)。然后,我们证明可以构建一个使用此随机位过程生成重复随机位的小型网络。然后,该随机位发生器可以与代表随机算法确定部分的神经网络连接。因此,我们证明了这些神经网络可以进行概率计算,因此比经典神经网络的局限性要小。 (C)2000 Elsevier Science Ireland Ltd.保留所有权利。 [参考:24]

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