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Microlensing signatures of extended dark objects using machine learning

Published 31 Jan 2024 in astro-ph.CO and hep-ph | (2402.00107v2)

Abstract: This paper presents a machine learning-based method for the detection of the unique gravitational microlensing signatures of extended dark objects, such as boson stars, axion miniclusters and subhalos. We adapt MicroLIA, a machine learning-based package tailored to handle the challenges posed by low-cadence data in microlensing surveys. Using realistic observational timestamps, our models are trained on simulated light curves to distinguish between microlensing by point-like and extended lenses, as well as from other object classes which give a variable magnitude. We show that boson stars, examples of objects with a relatively flat mass distribution, can be confidently identified for $0.8 \lesssim r/r_E\lesssim 3$. Intriguingly, we also find that more sharply peaked structures, such as NFW-subhalos, can be distinctly recognized from point-lenses under regular observation cadence. Our findings significantly advance the potential of microlensing data in uncovering the elusive nature of extended dark objects. The code and dataset used are also provided.

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References (17)
  1. H. Niikura et al., Nature Astron. 3, 524 (2019a), arXiv:1701.02151 [astro-ph.CO] .
  2. A. M. Green and B. J. Kavanagh, J. Phys. G 48, 043001 (2021), arXiv:2007.10722 [astro-ph.CO] .
  3. G. Bertone et al., SciPost Phys. Core 3, 007 (2020), arXiv:1907.10610 [astro-ph.CO] .
  4. B. P. Abbott et al. (LIGO Scientific, Virgo), Phys. Rev. Lett. 123, 161102 (2019), arXiv:1904.08976 [astro-ph.CO] .
  5. Z.-C. Chen and Q.-G. Huang, JCAP 08, 039 (2020), arXiv:1904.02396 [astro-ph.CO] .
  6. G. Franciolini, Primordial Black Holes: from Theory to Gravitational Wave Observations, Ph.D. thesis, Geneva U., Dept. Theor. Phys. (2021), arXiv:2110.06815 [astro-ph.CO] .
  7. R. Ruffini and S. Bonazzola, Phys. Rev. 187, 1767 (1969).
  8. M. Gleiser, Phys. Rev. D38, 2376 (1988), [Erratum: Phys. Rev.D39,no.4,1257(1989)].
  9. A. L. Erickcek and K. Sigurdson, Phys. Rev. D 84, 083503 (2011).
  10. G. Barenboim and J. Rasero, JHEP 04, 138 (2014), arXiv:1311.4034 [hep-ph] .
  11. A. Einstein, Science 84, 506 (1936).
  12. M. Crispim Romão and D. Croon, “Light curves for variable, point-like microlensing, and extended objects microlensing sources with regular cadence and OGLE-II timestamps cadence.”  (2024).
  13. “Nasa exoplanet archive,” https://exoplanetarchive.ipac.caltech.edu/, accessed: 25-01-2024.
  14. “Ukirt microlensing survey information,” https://exoplanetarchive.ipac.caltech.edu/docs/UKIRTMission.html, accessed: 25-01-2024.
  15. D. Spergel et al.,   (2015), arXiv:1503.03757 [astro-ph.IM] .
  16. H. Niikura et al., Nat. Astron. 3, 524 (2019c), arXiv:1701.02151 [astro-ph.CO] .
  17. H. J. Witt and S. Mao, ApJ 430, 505 (1994).
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