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The Magnus expansion and the in-medium similarity renormalization group

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arxiv 1507.06725 v2 pith:E25JCJKC submitted 2015-07-24 nucl-th cond-mat.quant-gasphysics.chem-ph

classification nucl-thcond-mat.quant-gasphysics.chem-ph
keywords expansionim-srgmagnustransformationadditionalequationsflowformulation
verification ladder T0 review T1 audit T2 compute T3 formal
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abstract

We present an improved variant of the in-medium similarity renormalization group (IM-SRG) based on the Magnus expansion. In the new formulation, one solves flow equations for the anti-hermitian operator that, upon exponentiation, yields the unitary transformation of the IM-SRG. The resulting flow equations can be solved using a first-order Euler method without any loss of accuracy, resulting in substantial memory savings and modest computational speedups. Since one obtains the unitary transformation directly, the transformation of additional operators beyond the Hamiltonian can be accomplished with little additional cost, in sharp contrast to the standard formulation of the IM-SRG. Ground state calculations of the homogeneous electron gas (HEG) and $^{16}$O nucleus are used as test beds to illustrate the efficacy of the Magnus expansion.

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Cited by 2 Pith papers

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  1. Ab initio calculations of parity-violating electron scattering off $^{48}$Ca and $^{208}$Pb

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    Ab initio chiral EFT calculations of parity-violating asymmetries for 48Ca and 208Pb show mild tension with data and infer a neutron skin of 0.187(25)(18) fm for 208Pb.

  2. Taming nuclear size and shape effects in superallowed beta-decay

    nucl-th 2026-05 unverdicted novelty 7.0 of 10

    A combined ab initio and experimental analysis of nuclear form factors reduces uncertainties in superallowed beta-decay rates, enabling a more precise first-row CKM unitarity test.

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