Decision Trees with Hypotheses

Decision Trees with Hypotheses

AngličtinaPevná vazbaTisk na objednávku
Azad, Mohammad
Springer, Berlin
EAN: 9783031085840
Tisk na objednávku
Předpokládané dodání v pátek, 29. listopadu 2024
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Podrobné informace

In this book, the concept of a hypothesis about the values of all attributes is added to the standard decision tree model, considered, in particular, in test theory and rough set theory. This extension allows us to use the analog of equivalence queries from exact learning and explore decision trees that are based on various combinations of attributes, hypotheses, and proper hypotheses (analog of proper equivalence queries). The two main goals of this book are (i) to provide tools for the experimental and theoretical study of decision trees with hypotheses and (ii) to compare these decision trees with conventional decision trees that use only queries, each based on a single attribute. 

Both experimental and theoretical results show that decision trees with hypotheses can have less complexity than conventional decision trees. These results open up some prospects for using decision trees with hypotheses as a means of knowledge representation and algorithms for computing Boolean functions. The obtained theoretical results and tools for studying decision trees with hypotheses are useful for researchers using decision trees and rules in data analysis. This book can also be used as the basis for graduate courses.

EAN 9783031085840
ISBN 3031085841
Typ produktu Pevná vazba
Vydavatel Springer, Berlin
Datum vydání 19. listopadu 2022
Stránky 145
Jazyk English
Rozměry 240 x 168
Země Switzerland
Sekce Professional & Scholarly
Autoři Azad, Mohammad; Chikalov Igor; Hussain Shahid; Moshkov Mikhail; Zielosko Beata
Ilustrace XI, 145 p. 9 illus.
Edice 1st ed. 2022
Série Synthesis Lectures on Intelligent Technologies