An Investigation for Intelligence and Classical Optimization for NLP

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ISBN: 6200312419
ISBN 13: 9786200312419
Autor: Abdullah M Ramadhan, Shatha/H AL-Assady, Nidhal
Verlag: LAP LAMBERT Academic Publishing
Umfang: 116 S.
Erscheinungsdatum: 20.11.2019
Auflage: 1/2019
Format: 0.7 x 22 x 15
Gewicht: 191 g
Produktform: Kartoniert
Einband: Kartoniert
Artikelnummer: 8306516 Kategorie:

Beschreibung

This work is concerned with the improvements of both intelligence optimization technique (such as genetic algorithm) and the classical optimization technique (such as conjugate gradient) for non-linear unconstrained and constrained problems. This work contains the hybrid intelligence and classical optimization techniques. In the first part of this work deals with unconstrained problems and other part deals with constrained problems. Firstly, we have the classical conjugate gradient methods with scaling and restarting techniques based on the crossover of the genetic algorithm. Secondly, the modified genetic algorithm is used to solve constrained problems depending on the transformation of function and variables values. The integer-programming problem with genetic algorithm is also investigated. Finally, in this work a new conjugate gradient neural network and hybrid Fletcher Reeves type method have been investigated. Our improvement on conjugate gradient methods and genetic algorithms show that its promising when compared with other standard algorithms to solve non-linear optimization problems.

Autorenporträt

Dr. Shatha: lecturer at Mosul University, Col.Computer Sciences & Mathematics/Dept.Software Engineering. Received B.Sc. deg. inmath.science/Mosul University 1997, M.Sc.deg. Mosul University 2000, PhD. deg. Mosul University 2004. Research interests: artificial intelligence, biometric recognition, optimization, information security, image processing.

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