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Titlebook: Artificial Neural Networks in Pattern Recognition; Second IAPR Workshop Friedhelm Schwenker,Simone Marinai Conference proceedings 2006 Spri

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Lecture Notes in Computer Sciencehttp://image.papertrans.cn/b/image/162681.jpg
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Fuzzy Labeled Self-Organizing Map with Label-Adjusted Prototypesa robust classifier where efficient learning with fuzzy labeled or partially contradictory data is possible. On the other hand, the integration of labeling into the location of prototypes in a SOM leads to a visualization of those parts of the data relevant for the classification.
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,rkl — Hörkladde für Siegfried J. Schmidt,hen the kernel parameter is optimized. According to the computer experiments for four benchmark problems, estimation performance of a Mahalanobis kernel with a diagonal covariance matrix optimized by line search is comparable to or better than that of an RBF kernel optimized by grid search.
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https://doi.org/10.1007/978-3-663-02438-5e full supervised training by gradient descent proposed recently in same papers. We conclude that a fully supervised training performs generally better. We also compare . with . and we conclude that . suppose a reduction in the number of iterations.
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The Globalizing of the University,, feed-forward neural networks were used to estimate the ammonium concentration in the effluent stream of the biological plant. The architecture of the neural network is based on previous works in this topic. The methodology consists in performing a group of different sizes of the hidden layer and different subsets of input variables.
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