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Redshift space correlations and scale-dependent stochastic biasing of density peaks

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arxiv 0909.4544 v4 pith:7U7NTHYR submitted 2009-09-24 astro-ph.CO

classification astro-ph.CO
keywords biasspacek-dependentpeakredshiftpeaksdarkgrowth
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We calculate the redshift space correlation function and the power spectrum of density peaks of a Gaussian random field. In the linear regime k < 0.1 h/Mpc, the redshift space power spectrum is P^s_{pk}(k,u) = exp(-f^2 s_{vel}^2 k^2 u^2) * [b_{pk}(k) + b_{vel}(k) f u^2]^2 * P_m(k), where u is the angle with respect to the line of sight, s_{vel} is the one-dimensional velocity dispersion, f is the growth rate, and b_{pk}(k) and b_{vel}(k) are k-dependent linear spatial and velocity bias factors. For peaks, the value of s_{vel} depends upon the functional form of b_{vel}. The peaks model is remarkable because it has unbiased velocities -- peak motions are driven by dark matter flows -- but, in order to achieve this, b_{vel} is k-dependent. We speculate that this is true in general: k-dependence of the spatial bias will lead to k-dependence of b_{vel} even if the biased tracers flow with the dark matter. Because of the k-dependence of the linear bias parameters, standard manipulations applied to the peak model will lead to k-dependent estimates of the growth factor that could erroneously be interpreted as a signature of modified dark energy or gravity. We use the Fisher formalism to show that the constraint on the growth rate f is degraded by a factor of two if one allows for a k-dependent velocity bias of the peak type. We discuss a simple estimate of nonlinear evolution and illustrate the effect of the peak bias on the redshift space multipoles. For k < 0.1 h/Mpc, the peak bias is deterministic but k-dependent, so the configuration space bias is stochastic and scale dependent, both in real and redshift space. We provide expressions for this stochasticity and its evolution (abridged).

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Cited by 3 Pith papers

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  1. Non-Gaussian Expansion of Minkowski Tensors in Redshift Space

    astro-ph.CO 2025-07 conditional novelty 6.0 of 10

    A first derivation of the non-Gaussian, redshift-space ensemble averages of two rank-2 Minkowski tensors, with percent-level agreement against Quijote simulations for smoothing scales above 20 Mpc/h.

  2. Scale-dependent bias and mode coupling in redshift-space clustering near the BAO scale

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

    A biased-tracer clustering model that adds scale-dependent density/velocity bias and mode coupling accurately describes BAO-scale redshift-space multipoles in simulations, and scale-dependent bias matters more than mo...

  3. A pilot sample of Planck-selected strongly lensed sub-mm galaxies: NOEMA observations and physical characterisation

    astro-ph.GA 2026-07 conditional novelty 5.0 of 10

    Four Planck-selected dusty star-forming galaxies are confirmed as strongly lensed at z≈2.3–3.3 via NOEMA CO line detections; a lens model for one source yields µ≈11.

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