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Decoding quantum field theory with machine learning

Abstract We demonstrate how one can use machine learning techniques to bypass the technical difficulties of designing an experiment and translating its outcomes into concrete claims about fundamental features of quantum fields. In practice, all measurements of quantum fields are carried out through...

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書誌詳細
主要な著者: Daniel Grimmer, Irene Melgarejo-Lermas, José Polo-Gómez, Eduardo Martín-Martínez
フォーマット: Artigo
言語:Inglês
出版事項: SpringerOpen 2023-08-01
シリーズ:Journal of High Energy Physics
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オンライン・アクセス:https://doi.org/10.1007/JHEP08(2023)031
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