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PMNN:Physical Model-driven Neural Network for solving time-fractional differential equations

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arxiv 2310.04788 v1 pith:43PRLL5H submitted 2023-10-07 cs.LG cs.AIcs.NAmath.NA

PMNN:Physical Model-driven Neural Network for solving time-fractional differential equations

classification cs.LG cs.AIcs.NAmath.NA
keywords differentialequationsneuralphysicaldnnsfractionaliterationmodel-driven
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In this paper, an innovative Physical Model-driven Neural Network (PMNN) method is proposed to solve time-fractional differential equations. It establishes a temporal iteration scheme based on physical model-driven neural networks which effectively combines deep neural networks (DNNs) with interpolation approximation of fractional derivatives. Specifically, once the fractional differential operator is discretized, DNNs are employed as a bridge to integrate interpolation approximation techniques with differential equations. On the basis of this integration, we construct a neural-based iteration scheme. Subsequently, by training DNNs to learn this temporal iteration scheme, approximate solutions to the differential equations can be obtained. The proposed method aims to preserve the intrinsic physical information within the equations as far as possible. It fully utilizes the powerful fitting capability of neural networks while maintaining the efficiency of the difference schemes for fractional differential equations. Moreover, we validate the efficiency and accuracy of PMNN through several numerical experiments.

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