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Design of a Universal, Two-Layered Neural Network Derived From the PLI Theory

机译:源自PLI理论的通用两层神经网络的设计

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The if-and-only-if (IFF) condition that a set of M analog-to-digital vector-mapping relations can be learned by a one-layered-feed-forward neural network (OLNN) is that all the input analog vectors dichotomized by the i-th output bit must be positively, linearly independent, or PLI. If they are not PLI, then the OLNN just cannot learn no matter what learning rules is employed because the solution of the connection matrix does not exist mathematically. However, in this case, one can still design a parallel-cascaded, two-layered, perception (PCTLP) to achieve this general mapping goal. The design principle of this "universal" neural network is derived from the major mathematical properties of the PLI theory - changing the output bits of the dependent relations existing among the dichotomized input vectors to make the PLD relations PLI. Then with a vector concatenation technique, the required mapping can still be learned by this PCTLP system with very high efficiency. This paper will report in detail the mathematical derivation of the general design principle and the design procedures of the PCTLP neural network system. It then will be verified in general by a practical numerical example.
机译:如果 - 且仅如果(IFF)条件,即一组M的模拟 - 数字向量映射关系可以通过一层状前馈神经网络(OLNN)了解到的是,所有的输入的模拟矢量通过第i个输出比特二分必须是正,线性独立的,或PLI。如果他们不PLI,那么OLNN就不能学不管学习什么规则采用,因为连接矩阵的解决方案不存在数学。然而,在这种情况下,人们可以设计出仍然平行级联,双层,感知(PCTLP)来实现此通用映射目标。改变二分输入向量之间存在的依赖关系的输出位,使PLD关系PLI - 这种“万能”神经网络的设计原理,从理论PLI的主要数学性质的。然后用矢量级联技术,所需的映射仍然可以由本PCTLP系统以非常高的效率获知。本文将详细报告的一般设计原理的数学推导和PCTLP神经网络系统的设计过程。然后,它一般将通过一个实际的数值例子进行验证。

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