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Characterizing the interactions and dynamics of quantum mechanical systems is an essential task in the development of quantum technologies.
über Polynome, die in einem gegebenen Intervalle möglichst wenig von Null abweichen
W. Markoff and J. Grossmann · 1916
Earlier work this paper cites.
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E. H. Lieb and D. W. Robinson · 1972
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Jean Dalibard, Yvan Castin, and Klaus Mølmer · 1992
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