Numerical solution of fuzzy differential equations under generalized differentiability by fuzzy neural network

نویسنده

  • M. Mosleh Department of Mathematics, Firoozkooh Branch, Islamic Azad University, Firoozkooh, Iran.
چکیده مقاله:

In this paper, we interpret a fuzzy differential equation by using the strongly generalized differentiability concept. Utilizing the Generalized characterization Theorem. Then a novel hybrid method based on learning algorithm of fuzzy neural network for the solution of differential equation with fuzzy initial value is presented. Here neural network is considered as a part of large eld called neural computing or soft computing. The model nds the approximated solution of fuzzy differential equation inside of its domain for the close enough neighborhood of the fuzzy initial point. We propose a learning algorithm from the cost function for adjusting of fuzzy weights.

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عنوان ژورنال

دوره 5  شماره 4

صفحات  281- 297

تاریخ انتشار 2013-12-01

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