Constraining gravity with a new precision $E_G$ estimator using Planck + SDSS BOSS
Abstract: The $E_G$ statistic is a discriminating probe of gravity developed to test the prediction of general relativity (GR) for the relation between gravitational potential and clustering on the largest scales in the observable universe. We present a novel high-precision estimator for the $E_G$ statistic using CMB lensing and galaxy clustering correlations that carefully matches the effective redshifts across the different measurement components to minimize corrections. A suite of detailed tests is performed to characterize the estimator's accuracy, its sensitivity to assumptions and analysis choices and the non-Gaussianity of the estimator's uncertainty is characterized. After finalization of the estimator, it is applied to $\textit{Planck}$ CMB lensing and SDSS CMASS and LOWZ galaxy data. We report the first harmonic space measurement of $E_G$ using the LOWZ sample and CMB lensing and also updated constraints using the final CMASS sample and the latest $\textit{Planck}$ CMB lensing map. We find $E_G{Planck+CMASS} = 0.36{+0.06}_{-0.05}$ (68.27%) and $E_G{\rm \textit{Planck}+LOWZ} = 0.40{+0.11}_{-0.09} $ (68.27%), with additional subdominant systematic error budget estimates of 2% and 3% respectively. Using $\Omega_{\rm m,0}$ constraints from $\textit{Planck}$ and SDSS BAO observations, $\Lambda$CDM-GR predicts $E_G{\rm GR} (z = 0.555) = 0.401 \pm 0.005$ and $E_G{\rm GR} (z = 0.316) = 0.452 \pm 0.005$ at the effective redshifts of the CMASS and LOWZ based measurements. We report the measurement to be in good statistical agreement with the $\Lambda$CDM-GR prediction, and report that the measurement is also consistent with the more general GR prediction of scale-independence for $E_G$. This work provides a carefully constructed and calibrated statistic with which $E_G$ measurements can be confidently and accurately obtained with upcoming survey data.
- P. J. Peebles and B. Ratra, Reviews of Modern Physics 75, 559 (2003), arXiv:astro-ph/0207347 [astro-ph] .
- S. Weinberg, Reviews of Modern Physics 61, 1 (1989).
- J. Khoury and A. Weltman, Phys. Rev. Lett. 93, 171104 (2004), arXiv:astro-ph/0309300 [astro-ph] .
- G. Dvali, G. Gabadadze, and M. Porrati, Physics Letters B 485, 208 (2000), arXiv:hep-th/0005016 [hep-th] .
- J. D. Bekenstein, Phys. Rev. D 70, 083509 (2004), arXiv:astro-ph/0403694 [astro-ph] .
- B. Jain and J. Khoury, Annals of Physics 325, 1479 (2010), arXiv:1004.3294 [astro-ph.CO] .
- J.-P. Uzan, General Relativity and Gravitation 42, 2219 (2010), arXiv:0908.2243 [astro-ph.CO] .
- B. Jain and P. Zhang, Phys. Rev. D 78, 063503 (2008), arXiv:0709.2375 [astro-ph] .
- M. Ishak, Living Reviews in Relativity 22, 1 (2019), arXiv:1806.10122 [astro-ph.CO] .
- A. R. Pullen, S. Alam, and S. Ho, MNRAS 449, 4326 (2015), arXiv:1412.4454 [astro-ph.CO] .
- C. D. Leonard, P. G. Ferreira, and C. Heymans, JCAP 2015, 051 (2015), arXiv:1510.04287 [astro-ph.CO] .
- F. Bianchini and C. L. Reichardt, The Astrophysical Journal 862, 81 (2018).
- G. A. Marques and A. Bernui, Journal of Cosmology and Astroparticle Physics 2020 (05), 052.
- J. Carron, M. Mirmelstein, and A. Lewis, JCAP 2022, 039 (2022), arXiv:2206.07773 [astro-ph.CO] .
- C.-P. Ma and E. Bertschinger, ApJ 455, 7 (1995), arXiv:astro-ph/9506072 [astro-ph] .
- A. Silvestri, L. Pogosian, and R. V. Buniy, Phys. Rev. D 87, 104015 (2013), arXiv:1302.1193 [astro-ph.CO] .
- E. V. Linder, Astroparticle Physics 29, 336 (2008), arXiv:0709.1113 [astro-ph] .
- E. Rosenberg, S. Gratton, and G. Efstathiou, MNRAS 517, 4620 (2022), arXiv:2205.10869 [astro-ph.CO] .
- A. Lewis, A. Challinor, and A. Lasenby, ApJ 538, 473 (2000), arXiv:astro-ph/9911177 [astro-ph] .
- H. Hildebrandt, L. van Waerbeke, and T. Erben, A&A 507, 683 (2009), arXiv:0906.1580 [astro-ph.CO] .
- H. Hildebrandt, Mon. Not. Roy. Astron. Soc. 455, 3943 (2016), arXiv:1511.01352 [astro-ph.GA] .
- L. Thiele, C. A. J. Duncan, and D. Alonso, Mon. Not. Roy. Astron. Soc. 491, 1746 (2020), arXiv:1907.13205 [astro-ph.CO] .
- L. Wenzl, S.-F. Chen, and R. Bean, MNRAS 10.1093/mnras/stad3314 (2023), arXiv:2308.05892 [astro-ph.CO] .
- A. Moradinezhad Dizgah and R. Durrer, JCAP 2016, 035 (2016), arXiv:1604.08914 [astro-ph.CO] .
- S. Yang and A. R. Pullen, MNRAS 481, 1441 (2018), arXiv:1807.05639 [astro-ph.CO] .
- B. Ghosh and R. Durrer, JCAP 2019, 010 (2019), arXiv:1812.09546 [astro-ph.CO] .
- J. Carron, JCAP 2023, 057 (2023), arXiv:2210.05449 [astro-ph.CO] .
- M. Kamionkowski, A. Kosowsky, and A. Stebbins, Phys. Rev. D 55, 7368 (1997), arXiv:astro-ph/9611125 [astro-ph] .
- J. Hartlap, P. Simon, and P. Schneider, A&A 464, 399 (2007), arXiv:astro-ph/0608064 [astro-ph] .
- G. Efstathiou, MNRAS 349, 603 (2004), arXiv:astro-ph/0307515 [astro-ph] .
- C. GarcÃa-GarcÃa, D. Alonso, and E. Bellini, JCAP 2019, 043 (2019), arXiv:1906.11765 [astro-ph.CO] .
- F. G. Mohammad and W. J. Percival, MNRAS 514, 1289 (2022), arXiv:2109.07071 [astro-ph.CO] .
- M. Maus, S.-F. Chen, and M. White, JCAP 2023, 005 (2023), arXiv:2302.07430 [astro-ph.CO] .
- S.-F. Chen, Z. Vlah, and M. White, JCAP 2020, 062 (2020), arXiv:2005.00523 [astro-ph.CO] .
- A. Lewis, arXiv e-prints , arXiv:1910.13970 (2019), arXiv:1910.13970 [astro-ph.IM] .
- J. H. Curtiss, The Annals of Mathematical Statistics 12, 409 (1941).
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