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An eclipsing binary distance to the Large Magellanic Cloud accurate to 2 per cent

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arxiv 1303.2063 v1 pith:AG6DRUYY submitted 2013-03-08 astro-ph.GA astro-ph.CO

classification astro-ph.GAastro-ph.CO
keywords distancesystemseclipsingaccuracyaccurateaccuratelybinarycloud
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In the era of precision cosmology it is essential to determine the Hubble Constant with an accuracy of 3% or better. Currently, its uncertainty is dominated by the uncertainty in the distance to the Large Magellanic Cloud (LMC) which as the second nearest galaxy serves as the best anchor point of the cosmic distance scale. Observations of eclipsing binaries offer a unique opportunity to precisely and accurately measure stellar parameters and distances. The eclipsing binary method was previously applied to the LMC but the accuracy of the distance results was hampered by the need to model the bright, early-type systems used in these studies. Here, we present distance determinations to eight long-period, late- type eclipsing systems in the LMC composed of cool giant stars. For such systems we can accurately measure both the linear and angular sizes of their components and avoid the most important problems related to the hot early-type systems. Our LMC distance derived from these systems is demonstrably accurate to 2.2 % (49.97 +/- 0.19 (statistical) +/- 1.11 (systematic) kpc) providing a firm base for a 3 % determination of the Hubble Constant, with prospects for improvement to 2 % in the future.

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  1. Rapid Orbital Decay in the Ultracompact Double-degenerate Binary eRASSU J060839.5$-$704014

    astro-ph.HE 2026-08 conditional novelty 6.0 of 10

    The 374-second white-dwarf binary eRASSU J060839.5-704014 has an orbital decay rate of -4.7e-11 s/s, implying a chirp mass near 0.43 solar masses if gravitational waves drive the decay.

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