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Assessment of Classification Algorithms in Artificial Intelligence
Details
In the area of artificial learners, not much research on the question of an appropriate description of artificial learner's (empirical) performance has been conducted. The optimal solution of describing a learning problem would be a functional dependency between the data, the learning algorithm's internal specifics and its performance. Unfortunately, a general, restrictions-free theory on performance of arbitrary artificial learners has not been developed yet. This work addresses the problem of measuring and observing the artificial learners, specifically the decision trees produced by the C4.5 algorithm. A procedure for measuring the learning progress, called adaptive incremental k-fold cross-validation is presented, together with other tools and techniques needed to observe artificial learners on their course of learning. Early observations can be used to forecast the future performance of a learner based on a small training sample.
Autorentext
Dr. Botjan Brumen has obtained his PhD in Informatics in 2004. Since then he has worked in in several data-related international projects. His research interests include artificial intelligence, machine learning and learning progress. He is the author of several articles published in top journals, including Journal of Medical Internet Research.
Weitere Informationen
- Allgemeine Informationen
- Sprache Englisch
- Anzahl Seiten 172
- Herausgeber LAP LAMBERT Academic Publishing
- Gewicht 274g
- Autor Bo tjan Brumen
- Titel Assessment of Classification Algorithms in Artificial Intelligence
- Veröffentlichung 07.07.2014
- ISBN 3659562513
- Format Kartonierter Einband
- EAN 9783659562518
- Jahr 2014
- Größe H220mm x B150mm x T11mm
- GTIN 09783659562518