Advances in Computer Vision and Pattern Recognition - : Unsupervised Process Monitoring and Fault Diagnosis with Machine Learning Methods
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171,19 €
Résumé
This unique text/reference describes in detail the latest advances in unsupervised process monitoring and fault diagnosis with machine learning methods. Abundant case studies throughout the text demonstrate the efficacy of each method in real-world settings. The broad coverage examines such cutting-edge topics as the use of information theory to enhance unsupervised learning in tree-based methods, the extension of kernel methods to multiple kernel learning for feature extraction from data, and the incremental training of multilayer perceptrons to construct deep architectures for enhanced data projections. Topics and features: discusses machine learning frameworks based on artificial neural networks, statistical learning theory and kernel-based methods, and tree-based methods; examines the application of machine learning to steady state and dynamic operations, with a focus on unsupervised learning; describes the use of spectral methods in process fault diagnosis.
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Série
Découvrez toute la série Advances in Computer Vision and Pattern Recognition
Caractéristiques
- Auteur
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Lidia Auret
- Editeur
- Date de parution
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juin 2013
- Collection
- EAN
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9781447151852
- ISBN
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9781447151852
- Type de DRM
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Adobe DRM
- Droit d'impression
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Non autorisé
- Droit de Copier/Coller
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Non autorisé
- Compris dans l'abonnement ebooks
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Non
- SKU
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11638232