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首页> 外文期刊>IEEE Transactions on Signal Processing >Superresolution algorithms for a modified Hopfield neural network
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Superresolution algorithms for a modified Hopfield neural network

机译:改进的Hopfield神经网络的超分辨率算法

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The authors describe the implementation of a superresolution (or spectral extrapolation) procedure on a neural network, based on the Hopfield (1982) model. They show the computational advantages and disadvantages of such an approach for different coding schemes and for networks consisting of very simple two-state elements as well as those made up of more complex nodes capable of representing a continuum. It is demonstrated that, with the appropriate hardware, there is a computational advantage in using the Hopfield architecture over some alternative methods for computing the same solution. The relationship between a particular mode of operation of the neural network and the regularized Gerchberg (1974) and Papoulis (1975) algorithm is also discussed.
机译:作者描述了基于Hopfield(1982)模型的神经网络上超分辨率(或频谱外推)过程的实现。它们显示了这种方法在不同编码方案以及由非常简单的两个状态元素以及由能够表示连续体的更复杂节点组成的网络组成的网络中的计算优缺点。可以证明,使用适当的硬件,使用Hopfield体系结构比使用某些替代方法来计算同一解决方案具有计算优势。还讨论了神经网络的特定操作模式与正则化Gerchberg(1974)和Papoulis(1975)算法之间的关系。

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