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High-Dimensional Function Approximation With Neural Networks for Large Volumes of Data.

IEEE Transactions on Neural Networks and Learning Systems(2018)

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摘要
Approximation of high-dimensional functions is a challenge for neural networks due to the curse of dimensionality. Often the data for which the approximated function is defined resides on a low-dimensional manifold and in principle the approximation of the function over this manifold should improve the approximation performance. It has been show that projecting the data manifold into a lower dimen...
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关键词
Manifolds,Biological neural networks,Neurons,Linear approximation,Approximation error,Distributed databases
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