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Revista mexicana de astronomía y astrofísica

versión impresa ISSN 0185-1101

Resumen

AZZAM, Yosry. A.; ABDEL-SALAM, Emad A.-B.  y  NOUH, Mohamed I.. Artificial Neural Network Modeling of the Conformable Fractional Isothermal Gas Spheres. Rev. mex. astron. astrofis [online]. 2021, vol.57, n.1, pp.189-198.  Epub 30-Sep-2021. ISSN 0185-1101.  https://doi.org/10.22201/ia.01851101p.2021.57.01.14.

The isothermal gas sphere is a particular type of Lane-Emden equation and is used widely to model many problems in astrophysics, like the formation of stars, star clusters and galaxies. In this paper, we present a computational scheme to simulate the conformable fractional isothermal gas sphere using an artificial neural network (ANN) technique, and we compare the obtained results with the analytical solution deduced using the Taylor series. We performed our calculations, trained the ANN, and tested it using a wide range of the fractional parameter. Besides the Emden functions, we calculated the mass-radius relations and the density profiles of the fractional isothermal gas spheres. The results obtained show that the ANN could perfectly simulate the conformable fractional isothermal gas spheres.

Palabras llave : equation of state.

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