论文标题

量化双光谱III的红移空间变形:多极矩的检测前景

Quantifying the redshift space distortion of the bispectrum III : Detection prospects of the multipole moments

论文作者

Mazumdar, Arindam, Sarkar, Debanjan, Bharadwaj, Somnath

论文摘要

通常使用多极力矩来定量双光谱的红移空间各向异性。在任何调查中测量这些多物的可能性取决于统计波动的水平。我们提出了一种形式主义,以计算银河系调查的双光谱多物测量中的统计波动。我们考虑了{\ it euclid}的规格,例如星系调查,并呈现两个数量:信噪比(SNR),量化了多物的可检测性,以及量级相关性,该级别相关性量化了任何两个多物之间的测量误差的相关性。基于SNR值,我们发现{\ it Euclid}可以潜在地测量双方多尔斯在各种三角形形状上最高= $ \ ell = 4 $,由三个{\ bf k}向量形成。通常,对于线性三角形,SNR是最大的。 SNR值还取决于观察的量表和红移。而$ {\ rm snr}> 5 $也可以测量$ \ ell \ el \ leq 2 $多极,即使在线性/准线性($ k \ lyseSim 0.1 \,{\ rm mpc}^{ - 1} $)$中,对于$ \ ell> 2 $乘,需要增加bin,即对于大多数多极对,在大部分三角形的形状上,这些错误仅在挤压和拉伸三角形附近的几个形状上存在微弱相关。这使得结合不同多物的测量以增加有效的SNR。

The redshift space anisotropy of the bispectrum is generally quantified using multipole moments. The possibility of measuring these multipoles in any survey depends on the level of statistical fluctuations. We present a formalism to compute the statistical fluctuations in the measurement of bispectrum multipoles for galaxy surveys. We consider specifications of a {\it Euclid} like galaxy survey and present two quantities: the signal-to-noise ratio (SNR) which quantifies the detectability of a multipole, and the rank correlation which quantifies the correlation in measurement errors between any two multipoles. Based on SNR values, we find that {\it Euclid} can potentially measure the bispectrum multipoles up to $\ell=4$ across various triangle shapes, formed by the three {\bf k} vectors in Fourier space. In general, SNR is maximum for the linear triangles. SNR values also depend on the scales and redshifts of observation. While, $\ell \leq 2$ multipoles can be measured with ${\rm SNR}>5$ even at linear/quasi-linear ($k \lesssim 0.1 \,{\rm Mpc}^{-1}$) scales, for $\ell>2$ multipoles, we require to go to small scales or need to increase bin sizes. For most multipole pairs, the errors are only weakly correlated across much of the triangle shapes barring a few in the vicinity of squeezed and stretched triangles. This makes it possible to combine the measurements of different multipoles to increase the effective SNR.

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