4.7 Article

CFHTLenS and RCSLenS cross-correlation with Planck lensing detected in fourier and configuration space

期刊

出版社

OXFORD UNIV PRESS
DOI: 10.1093/mnras/stw947

关键词

gravitational lensing: weak; dark matter; large-scale structure of Universe

资金

  1. Canadian Space Agency
  2. NSERC Research Tools and Instruments grant programme
  3. Canada Foundation for Innovation under Compute Canada
  4. Government of Ontario
  5. Ontario Research Fund - Research Excellence
  6. University of Toronto
  7. European Commission under a Marie-Sklodwoska-Curie European Fellowship (EU) [656869]
  8. NSERC of Canada
  9. Swiss National Science Foundation (SNSF)
  10. Emmy Noether grant of the Deutsche Forschungsgemeinschaft [Hi 1495/2-1]
  11. German Federal Ministry for Economic Affairs and Energy (BMWi) via DLR [50QE1103]
  12. European Research Council [279396, 240185, 647112]
  13. Netherlands Organisation for Scientific Research (NWO) [614.001.103]
  14. Royal Society URF
  15. STFC [ST/H002456/1, ST/N000919/1, ST/N000811/1] Funding Source: UKRI
  16. Science and Technology Facilities Council [ST/N000919/1, ST/H002456/1] Funding Source: researchfish
  17. European Research Council (ERC) [240185] Funding Source: European Research Council (ERC)
  18. Marie Curie Actions (MSCA) [656869] Funding Source: Marie Curie Actions (MSCA)

向作者/读者索取更多资源

We measure the cross-correlation signature between the Planck cosmicmicrowave background (CMB) lensing map and the weak lensing observations from both the Red-sequence Cluster Lensing Survey and the Canada-France-Hawaii Telescope Lensing Survey. In addition to a Fourier analysis, we include the first configuration-space detection, based on the estimators and . Combining 747.2 deg(2) from both surveys, we find a detection significance that exceeds 4.2 sigma in both Fourier-and configuration-space analyses. Scaling the predictions by a free parameter A, we obtain A(CFHT)(Planck) = 0.68 +/- 0.31 and A(RCS)(Planck) = 1.31 +/- 0.33. In preparation for the next generation of measurements similar to these, we quantify the impact of different analysis choices on these results. First, since none of these estimators probes the exact same dynamical range, we improve our detection by combining them. Secondly, we carry out a detailed investigation on the effect of apodization, zero-padding and mask multiplication, validated on a suite of high-resolution simulations, and find that the latter produces the largest systematic bias in the cosmological interpretation. Finally, we show that residual contamination from intrinsic alignment and the effect of photometric redshift error are both largely degenerate with the characteristic signal from massive neutrinos, however the signature of baryon feedback might be easier to distinguish. The three lensing data sets are publicly available.

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