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An efficient implementation of multi-layer perceptron on mesh architecture

机译:在网格架构上有效地实现多层Perceptron

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This paper presents a new efficient parallel implementation of multi-layer perceptron on mesh-connected SIMD machines. A new algorithm to implement the recall and training phases of the multi-layer perceptron network with back- error propagation is devised. The developed algorithm is much faster than other known algorithms of its class and comparable in speed to more complex architecture such as hypercube without the added cost; it requires O(1) multiplications and O(logN) additions, whereas most others require O(N) multiplications and O(N) additions. The proposed algorithm maximizes parallelism by unfolding the ANN computation to its smallest computational primitives and processes these primitives in parallel.
机译:本文介绍了在网格连接的SIMD机器上的多层Perceptron的新高效并行实现。设计了一种实现具有背部错误传播的多层Perceptron网络的调用和训练阶段的新算法。发达的算法比其类的其他已知算法快得多,并且速度与更复杂的架构(如HyperCube)的速度相当;没有增加的成本;它需要o(1)乘法和o(logn)添加,而大多数其他需要o(n)乘法和o(n)添加。所提出的算法通过将ANN计算展开到其最小的计算基元并并行处理这些基元来最大化并行度。

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