Decision Tree and Ensemble Learning Based on Ant Colony Optimization / Studies in Computational Intelligence Bd.781 (PDF)
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Decision trees are a popular method of classification as well as of knowledge representation. At the same time, they are easy to implement as the building blocks of an ensemble of classifiers. Admittedly, however, the task of constructing a near-optimal decision tree is a very complex process.
The good results typically achieved by the ant colony optimization algorithms when dealing with combinatorial optimization problems suggest the possibility of also using that approach for effectively constructing decision trees. The underlying rationale is that both problem classes can be presented as graphs. This fact leads to option of considering a larger spectrum of solutions than those based on the heuristic. Moreover, ant colony optimization algorithms can be used to advantage when building ensembles of classifiers.
This book is a combination of a research monograph and a textbook. It can be used in graduate courses, but is also of interest to researchers, both specialists in machine learning and those applying machine learning methods to cope with problems from any field of R&D.
- Autor: Jan Kozak
- 2018, 1st ed. 2019, 159 Seiten, Englisch
- Verlag: Springer-Verlag GmbH
- ISBN-10: 3319937529
- ISBN-13: 9783319937526
- Erscheinungsdatum: 20.06.2018
Abhängig von Bildschirmgröße und eingestellter Schriftgröße kann die Seitenzahl auf Ihrem Lesegerät variieren.
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- Größe: 4.70 MB
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