2023
DOI: 10.3390/electronics12204245
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Utilizing Fractional Artificial Neural Networks for Modeling Cancer Cell Behavior

Reza Behinfaraz,
Amir Aminzadeh Ghavifekr,
Roberto De Fazio
et al.

Abstract: In this paper, a novel approach involving a fractional recurrent neural network (RNN) is proposed to achieve the observer-based synchronization of a cancer cell model. According to the properties of recurrent neural networks, our proposed framework serves as a predictive method for the behavior of fractional-order chaotic cancer systems with uncertain orders. Through a stability analysis of weight updating laws, we design a fractional-order Nonlinear Autoregressive with Exogenous Inputs (NARX) network, in whic… Show more

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