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Nonlinear vector prediction using feed-forward neural networks

delete1997-10-01
delete11
PRE
AI
S
Syed A. Rizvi
王
王林成 (Lincheng Wang)
N
Nasser M. Nasrabadi
DOI:10.1109/83.624963delete
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摘要

摘要

En 中文
The performance of a classical linear vector predictor is limited by its ability to exploit only the linear correlation between the blocks. However, a nonlinear predictor exploits the higher order correlations among the neighboring blocks, and can predict edge blocks,vith increased accuracy. In this paper, we have investigated several neural network architectures that can be used to implement a nonlinear vector predictor, including the multilayer perceptron (MLP), the functional link (FL) network, and the radial basis function (RBF) network. Our experimental results show that a neural network predictor can predict the blocks containing edges with a higher accuracy than a Linear predictor.
Keyword:
functional link network
image compression
multilayer perceptron
neural network
predictive vector quantization
radial basis function network
vector prediction
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期刊

IEEE Transactions on Image Processing 封面图
IEEE Transactions on Image Processing
IF:
13.7
论文数:
1.0W
被引数:
8.4W

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