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Echo State Networks with Sparse Output Connections

机译:具有稀疏输出连接的回波状态网络

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An Echo State Network transforms an incoming time series signal into a high-dimensional state space, and, of course, not every dimension may contribute to the solution. We argue that giving low weights via linear regression is not sufficient. Instead irrelevant features should be entirely excluded from directly contributing to the output nodes. We conducted several experiments using two state-of-the-art feature selection algorithms. Results show significant reduction of the generalization error.
机译:回声状态网络将输入的时间序列信号转换为高维状态空间,当然,并不是每个维都可能对解决方案有所帮助。我们认为,通过线性回归给出低权重是不够的。相反,不相关的功能应完全排除在直接对输出节点的贡献之外。我们使用两种最先进的特征选择算法进行了几次实验。结果表明,泛化误差显着降低。

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