Neural quantum states plus minimum principles compute elastic and inelastic neutron-deuteron scattering observables with conservative uncertainties, without time evolution.
Inferring three-nucleon couplings from multi-messenger neutron- star observations
4 Pith papers cite this work. Polarity classification is still indexing.
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nucl-th 4representative citing papers
Bayesian global fit to Xe-Xe and Pb-Pb LHC data infers nearly maximal triaxiality for the 129Xe ground state and extracts two- and three-particle correlations.
Lattice AFQMC calculations of the polaron equation of state at unitarity and across scattering lengths, plus neutron polaron results, provide benchmarks for cold-atom and nuclear theory.
After removing renormalization-scheme-dependent short-distance parts, the scrutinized three-nucleon forces yield small contributions to neutron and symmetric nuclear matter equations of state, aligning with standard chiral EFT expectations.
citing papers explorer
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Light nuclear scattering from neural quantum states
Neural quantum states plus minimum principles compute elastic and inelastic neutron-deuteron scattering observables with conservative uncertainties, without time evolution.
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Yoctosecond imaging of the ground state of $^{129}$Xe at the Large Hadron Collider
Bayesian global fit to Xe-Xe and Pb-Pb LHC data infers nearly maximal triaxiality for the 129Xe ground state and extracts two- and three-particle correlations.
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Ab initio study of the neutron and Fermi polarons on the lattice
Lattice AFQMC calculations of the polaron equation of state at unitarity and across scattering lengths, plus neutron polaron results, provide benchmarks for cold-atom and nuclear theory.
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Scrutiny of the new class of three-nucleon forces
After removing renormalization-scheme-dependent short-distance parts, the scrutinized three-nucleon forces yield small contributions to neutron and symmetric nuclear matter equations of state, aligning with standard chiral EFT expectations.