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Multilayered Echo State Machine: A Novel Architecture and Algorithm

机译:多层回波状态机:一种新型的体系结构和算法

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摘要

In this paper, we present a novel architecture and learning algorithm for a multilayered echo state machine (ML-ESM). Traditional echo state networks (ESNs) refer to a particular type of reservoir computing (RC) architecture. They constitute an effective approach to recurrent neural network (RNN) training, with the (RNN-based) reservoir generated randomly, and only the readout trained using a simple computationally efficient algorithm. ESNs have greatly facilitated the real-time application of RNN, and have been shown to outperform classical approaches in a number of benchmark tasks. In this paper, we introduce a novel criteria for integrating multiple layers of reservoirs within the ML-ESM. The addition of multiple layers of reservoirs are shown to provide a more robust alternative to conventional RC networks. We demonstrate the comparative merits of this approach in a number of applications, considering both benchmark datasets and real world applications.
机译:在本文中,我们为多层回波状态机(ML-ESM)提供了一种新颖的体系结构和学习算法。传统的回声状态网络(ESN)指的是特定类型的储层计算(RC)体系结构。它们构成了递归神经网络(RNN)训练的有效方法,其中随机生成(基于RNN的)储层,并且仅使用简单的计算有效算法对读数进行训练。 ESN极大地促进了RNN的实时应用,并在许多基准测试任务中表现出优于传统方法的优势。在本文中,我们介绍了在ML-ESM中整合多层储层的新标准。示出了多层储层的添加为常规RC网络提供了更鲁棒的替代方案。考虑到基准数据集和实际应用,我们在许多应用中证明了这种方法的比较优点。

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