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Comparative Study Of Expansion Functions For Evolutionary Hybrid Functional Link Artificial Neural Networks For Data Mining And Classification by Ijhmi Journals By Asdf International
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1Comparative Study Of Expansion Functions For Evolutionary Hybrid Functional Link Artificial Neural Networks For Data Mining And Classification
By IJHMI Journals by ASDF International
This paper presents a comparison between different expansion function for a specific structure of neural network as the functional link artificial neural network (FLANN). This technique has been employed for classification tasks of data mining. In fact, there are a few studies that used this tool for solving classification problems, and in the most case, the trigonometric expansion function is the most used. In this present research, we propose a hybrid FLANN (HFLANN) model, where the optimization process is performed using 3 known population based techniques such as genetic algorithms, particle swarm and differential evolution. This model will be empirically compared using different expansion function and the best function one will be selected. IJHMI - ASDFJournals.com
“Comparative Study Of Expansion Functions For Evolutionary Hybrid Functional Link Artificial Neural Networks For Data Mining And Classification” Metadata:
- Title: ➤ Comparative Study Of Expansion Functions For Evolutionary Hybrid Functional Link Artificial Neural Networks For Data Mining And Classification
- Author: ➤ IJHMI Journals by ASDF International
- Language: English
“Comparative Study Of Expansion Functions For Evolutionary Hybrid Functional Link Artificial Neural Networks For Data Mining And Classification” Subjects and Themes:
- Subjects: ➤ Expansion function - Data mining - Classification - Functional link artificial neural network - genetic algorithms - Particle swarm - Differential evolution.
Edition Identifiers:
- Internet Archive ID: IJHMI2014006
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The book is available for download in "texts" format, the size of the file-s is: 6.65 Mbs, the file-s for this book were downloaded 116 times, the file-s went public at Thu Apr 23 2015.
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