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A new unconditionally stable implicit numerical scheme for fractional diffusive epidemic model
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<abstract>
<p>This contribution proposes a numerical scheme for solving fractional parabolic partial differential equations (PDEs). One of the advantages of using the proposed scheme is its applicability for fractional and integer order derivatives. The scheme can be useful to get conditions for obtaining a positive solution to epidemic disease models. A COVID-19 mathematical model is constructed, and linear local stability conditions for the model are obtained; afterward, a fractional diffusive epidemic model is constructed. The numerical scheme is constructed by employing the fractional Taylor series approach. The proposed fractional scheme is second-order accurate in space and time and unconditionally stable for parabolic PDEs. In addition to this, convergence conditions are obtained by employing a proposed numerical scheme for the fractional differential equation of susceptible individuals. The scheme is also compared with existing numerical schemes, including the non-standard finite difference method. From theoretical analysis and graphical illustration, it is found that the proposed scheme is more accurate than the so-called existing non-standard finite difference method, which is a method with notably good boundedness and positivity properties.</p>
</abstract>
American Institute of Mathematical Sciences (AIMS)
Title: A new unconditionally stable implicit numerical scheme for fractional diffusive epidemic model
Description:
<abstract>
<p>This contribution proposes a numerical scheme for solving fractional parabolic partial differential equations (PDEs).
One of the advantages of using the proposed scheme is its applicability for fractional and integer order derivatives.
The scheme can be useful to get conditions for obtaining a positive solution to epidemic disease models.
A COVID-19 mathematical model is constructed, and linear local stability conditions for the model are obtained; afterward, a fractional diffusive epidemic model is constructed.
The numerical scheme is constructed by employing the fractional Taylor series approach.
The proposed fractional scheme is second-order accurate in space and time and unconditionally stable for parabolic PDEs.
In addition to this, convergence conditions are obtained by employing a proposed numerical scheme for the fractional differential equation of susceptible individuals.
The scheme is also compared with existing numerical schemes, including the non-standard finite difference method.
From theoretical analysis and graphical illustration, it is found that the proposed scheme is more accurate than the so-called existing non-standard finite difference method, which is a method with notably good boundedness and positivity properties.
</p>
</abstract>.
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