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    Analyzing {\gamma}-rays of the Galactic Center with Deep Learning

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    We present a new method to interpret the γ\gamma-ray data of our inner Galaxy as measured by the Fermi Large Area Telescope (Fermi LAT). We train and test convolutional neural networks with simulated Fermi-LAT images based on models tuned to real data. We use this method to investigate the origin of an excess emission of GeV γ\gamma-rays seen in previous studies. Interpretations of this excess include γ\gamma rays created by the annihilation of dark matter particles and γ\gamma rays originating from a collection of unresolved point sources, such as millisecond pulsars. Our new method allows precise measurements of the contribution and properties of an unresolved population of γ\gamma-ray point sources in the interstellar diffuse emission model.Comment: 24 pages, 11 figure
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