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A new k-winners-take-all neural network and its array architecture

机译:新的k-赢家通吃神经网络及其阵列架构

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摘要

In this paper, a new neural-network model called WINSTRON and its novel array architecture are proposed. Based on a competitive learning algorithm that is originated from the coarse-fine competition, WINSTRON can identify the k larger elements or the k smaller ones in a data set. We will then prove that WINSTRON converges to the correct state in any situation. In addition, the convergence rates of WINSTRON for three special data distributions will be derived. In order to realize WINSTRON, its array architecture with low hardware complexity and high computing speed is also detailed. Finally, simulation results are included to demonstrate its effectiveness and its advantages over three existing networks.
机译:本文提出了一种新的神经网络模型WINSTRON及其新颖的阵列架构。基于源自粗精细竞争的竞争学习算法,WINSTRON可以识别数据集中的k个较大元素或k个较小元素。然后,我们将证明WINSTRON在任何情况下都收敛到正确的状态。此外,还将得出WINSTRON在三种特殊数据分布下的收敛速度。为了实现WINSTRON,还详细介绍了其具有低硬件复杂度和高计算速度的阵列架构。最后,包括仿真结果以证明其有效性和相对于三个现有网络的优势。

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