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The last few years have seen the development of a promising theoretical framework for statistics of the cosmic large-scale structure -- the theory of large deviations (LDT) for modelling weak-lensing one-point statistics in the mildly non-linear regime.
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2019
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B.R. Gillis and A.N. Taylor, The effects of calibration on the bias of shear measurements , Monthly Notices of the Royal Astronomical Society 482
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2012
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2012
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T. Kacprzak, J. Zuntz, B. Rowe, S. Bridle, A. Refregier, A. Amara et al., Measurement and calibration of noise bias in weak lensing galaxy shape estimation , Monthly Notices of the Royal Astronomical Society 427
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M. Gatti, C. Chang, O. Friedrich, B. Jain, D. Bacon, M. Crocce et al., Dark energy survey year 3 results: cosmology with moments of weak lensing mass maps – validation on simulations , Monthly Notices of the Royal Astronomical Society 498
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2021
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J. Harnois-Déraps, N. Martinet, T. Castro, K. Dolag, B. Giblin, C. Heymans et al., Cosmic shear cosmology beyond two-point statistics: a combined peak count and correlation function analysis of DES-y1 , Monthly Notices of the Royal Astronomical Society 506
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M. Gatti, B. Jain, C. Chang, M. Raveri, D. Zürcher, L. Secco et al., Dark Energy Survey Year 3 results: Cosmology with moments of weak lensing mass maps , Physical Review D 106
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A. Amon, D. Gruen, M.A. Troxel, N. MacCrann, S. Dodelson, A. Choi et al., Dark Energy Survey Year 3 results: Cosmology from cosmic shear and robustness to data calibration , Physical Review D 105
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L.F. Secco, S. Samuroff, E. Krause, B. Jain, J. Blazek, M. Raveri et al., Dark Energy Survey Year 3 results: Cosmology from cosmic shear and robustness to modeling uncertainty , Physical Review D 105
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