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Abonyi, Janos; Kenesei, Tamas - Interpretability of Computational Intelligence-Based Regression Models - 9783319219417 - V9783319219417
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Interpretability of Computational Intelligence-Based Regression Models

€ 74.08
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Description for Interpretability of Computational Intelligence-Based Regression Models Paperback. Series: SpringerBriefs in Computer Science. Num Pages: 92 pages, 20 black & white illustrations, 14 colour illustrations, 12 black & white tables, 14 colou. BIC Classification: UNF; UYQ. Category: (P) Professional & Vocational. Dimension: 235 x 155 x 5. Weight in Grams: 156.

The key idea of this book is that hinging hyperplanes, neural networks and support vector machines can be transformed into fuzzy models, and interpretability of the resulting rule-based systems can be ensured by special model reduction and visualization techniques. The first part of the book deals with the identification of hinging hyperplane-based regression trees. The next part deals with the validation, visualization and structural reduction of neural networks based on the transformation of the hidden layer of the network into an additive fuzzy rule base system. Finally, based on the analogy of support vector regression and fuzzy models, a three-step ... Read more

The authors demonstrate real-world use of the algorithms with examples taken from process engineering, and they support the text with downloadable Matlab code. The book is suitable for researchers, graduate students and practitioners in the areas of computational intelligence and machine learning.

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Product Details

Format
Paperback
Publication date
2015
Publisher
Springer International Publishing AG Switzerland
Number of pages
92
Condition
New
Series
SpringerBriefs in Computer Science
Number of Pages
82
Place of Publication
Cham, Switzerland
ISBN
9783319219417
SKU
V9783319219417
Shipping Time
Usually ships in 15 to 20 working days
Ref
99-15

Reviews for Interpretability of Computational Intelligence-Based Regression Models
“This book is very inspiring and provides many detailed motivating examples after each algorithm discussed. This helps theoretically oriented readers to understand the application scenarios, and helps applied readers to better understand the details and power of the algorithms. The book also provides four sections of useful appendixes on cross validation, orthogonal least squares, a model of the pH process, ... Read more

Goodreads reviews for Interpretability of Computational Intelligence-Based Regression Models


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