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A Unified Approach to Sequential Constructive Methods

机译:顺序建设方法的统一方法

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A general treatment of a particular class of learning techniques for neural networks, called sequential constructive methods, is proposed. They subsequently add units to the hidden layer until all the input-output relations contained in a given training set are satisfied. Every addition involves the update of a small portion of the whole weight matrix and depends on a subset of samples whose size decreases with time. In most cases this leads to a large reduction of the computational cost. General convergence theorems are presented that ensure the achievement of a good multilayer perceptron within a finite execution time. The output weights need not to be trained but are obtained by the application of simple algebraic equations.
机译:提出了对神经网络的特定学习技术的一般处理,称为顺序建设性方法。它们随后将单位添加到隐藏层,直到满足给定培训集中包含的所有输入输出关系。每次添加涉及更新整个权重矩阵的一小部分,并取决于其大小随时间减少的样本子集。在大多数情况下,这导致计算成本的大幅降低。提出了一般收敛定理,以确保在有限的执行时间内实现良好的多层的感知。输出权重不需要培训,但是通过应用简单的代数方程来获得。

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