SNLS3: Constraints on Dark Energy Combining the Supernova Legacy Survey Three Year Data with Other Probes
M. Sullivan, J. Guy, A. Conley, N. Regnault, P. Astier, C. Balland, S., Basa, R. G. Carlberg, D. Fouchez, D. Hardin, I. M. Hook, D. A. Howell, R., Pain, N. Palanque-Delabrouille, K. M. Perrett, C. J. Pritchet, J. Rich, V., Ruhlmann-Kleider, D. Balam, S. Baumont, R. S. Ellis

TL;DR
This paper uses the SNLS3 supernova data combined with other cosmological probes to place precise constraints on dark energy's properties, confirming consistency with a cosmological constant and exploring systematic uncertainties.
Contribution
It provides the first comprehensive analysis of SNLS3 data including host galaxy correlations and systematic uncertainties, improving dark energy parameter constraints.
Findings
Dark energy equation-of-state parameter w = -1.061 ± 0.069
Results consistent with a flat universe and w = -1
Systematic uncertainties dominated by photometric calibration
Abstract
We present observational constraints on the nature of dark energy using the Supernova Legacy Survey three year sample (SNLS3) of Guy et al. (2010) and Conley et al. (2011). We use the 472 SNe Ia in this sample, accounting for recently discovered correlations between SN Ia luminosity and host galaxy properties, and include the effects of all identified systematic uncertainties directly in the cosmological fits. Combining the SNLS3 data with the full WMAP7 power spectrum, the Sloan Digital Sky Survey luminous red galaxy power spectrum, and a prior on the Hubble constant H0 from SHOES, in a flat universe we find omega_m=0.269+/-0.015 and w=-1.061+0.069-0.068 -- a 6.5% measure of the dark energy equation-of-state parameter w. The statistical and systematic uncertainties are approximately equal, with the systematic uncertainties dominated by the photometric calibration of the SN Ia fluxes --…
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