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Constraining Neutrino Mass with the Tomographic Weak Lensing Bispectrum

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arxiv 1810.02374 v1 pith:W677G33J submitted 2018-10-04 astro-ph.CO

classification astro-ph.CO
keywords bispectrumamplitudeconstraintseffectlensingmassiveneutrinopower
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abstract

We explore the effect of massive neutrinos on the weak lensing shear bispectrum using the Cosmological Massive Neutrino Simulations. We find that the primary effect of massive neutrinos is to suppress the amplitude of the bispectrum with limited effect on the bispectrum shape. The suppression of the bispectrum amplitude is a factor of two greater than the suppression of the small scale power-spectrum. For an LSST-like weak lensing survey that observes half of the sky with five tomographic redshift bins, we explore the constraining power of the bispectrum on three cosmological parameters: the sum of the neutrino mass $\sum m_\nu$, the matter density $\Omega_m$ and the amplitude of primordial fluctuations $A_s$. Bispectrum measurements alone provide similar constraints to the power spectrum measurements and combining the two probes leads to significant improvements than using the latter alone. We find that the joint constraints tighten the power spectrum $95\%$ constraints by $\sim 32\%$ for $\sum m_\nu$, $13\%$ for $\Omega_m$ and $57\%$ for $A_s$ .

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Cited by 2 Pith papers

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    astro-ph.CO 2025-06 conditional novelty 6.0 of 10

    A new emulator predicts cumulative dark matter halo mass functions for three mass definitions with claimed 2-10% accuracy from z=0 to 3, based on the Kun simulation suite.

  2. Cosmological preference for a positive neutrino mass at 2.7$\sigma$: A joint analysis of DESI DR2, DESY5, and DESY1 data

    astro-ph.CO 2025-07 conditional novelty 4.0 of 10

    A joint fit of DESI DR2, CMB, DESY5 and DESY1 data gives total neutrino mass 0.098 (+0.016, -0.037) eV, a 2.7 sigma preference for positive mass in the w0waCDM model.

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