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  • title: Towards a Machine Learning Prediction of Electronic Stopping Power
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            Towards a Machine Learning Prediction of Electronic Stopping Power
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            Towards a Machine Learning Prediction of Electronic Stopping Power

            Dez 2, 2022

            Sprecher:innen

            FBH

            Felipe Bivort Haiek

            Sprecher:in · 0 Follower:innen

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            The prediction of Electronic Stopping Power for general ions and targets is a problem that lacks a closed-form solution. While full approximate solutions from first principles exist for certain cases, the most general model in use is a pseudo-empirical model. This paper presents our advances towards creating predictive models that leverage state-of-the-art Machine Learning techniques. A key component of our approach is the training data selection. We show results that outperform or are on par wi…

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            NeurIPS 2022

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