English

Evidence of Systematic Errors in $Spitzer$ Microlens Parallax Measurements

Earth and Planetary Astrophysics 2020-09-30 v3

Abstract

The microlensing parallax campaign with the SpitzerSpitzer space telescope aims to measure masses and distances of microlensing events seen towards the Galactic bulge, with a focus on planetary microlensing events. The hope is to measure how the distribution of planets depends on position within the Galaxy. In this paper, we compare 50 microlens parallax measurements from the 2015 SpitzerSpitzer campaign to three different Galactic models commonly used in microlensing analyses, and we find that 74%\geq 74\% of these events have microlensing parallax values higher than the medians predicted by Galactic models. The Anderson-Darling tests indicate probabilities of pAD<6.6×105p_{\rm AD} < 6.6 \times 10^{-5} for these three Galactic models, while the binomial probability of such a large fraction of large microlensing parallax values is <4.6×104< 4.6\times 10^{-4}. Given that many SpitzerSpitzer light curves show evidence of large correlated errors, we conclude that this discrepancy is probably due to systematic errors in the SpitzerSpitzer photometry. We find formally acceptable probabilities of pAD>0.05p_{\rm AD} > 0.05 for subsamples of events with bright source stars (IS17.75I_{\rm S} \leq 17.75) or SpitzerSpitzer coverage of the light curve peak. This indicates that the systematic errors have a more serious influence on faint events, especially when the light curve peak is not covered by SpitzerSpitzer. We find that multiplying an error bar renormalization factor of 2.2 by the reported error bars on the SpitzerSpitzer microlensing parallax measurements provides reasonable agreement with all three Galactic models. However, corrections to the uncertainties in the SpitzerSpitzer photometry itself are a more effective way to address the systematic errors.

Keywords

Cite

@article{arxiv.1905.05794,
  title  = {Evidence of Systematic Errors in $Spitzer$ Microlens Parallax Measurements},
  author = {Naoki Koshimoto and David P. Bennett},
  journal= {arXiv preprint arXiv:1905.05794},
  year   = {2020}
}

Comments

32 pages, 8 figures, 5 tables, accepted for publication in AJ