论文标题

Galaxy群集SZ检测具有无偏噪声估计:一种迭代方法

Galaxy cluster SZ detection with unbiased noise estimation: an iterative approach

论文作者

Zubeldia, Íñigo, Rotti, Aditya, Chluba, Jens, Battye, Richard

论文摘要

多频匹配的过滤器(MMF)通常用于通过热Sunyaev-Zeldovich(TSZ)效应从CMB数据中检测出星系簇,从而导致可用于宇宙学推断的群集目录。为了应用,MMF需要了解地图中噪声的跨频功率光谱。这通常是从数据中估算的,并将其等于数据的功率谱,假设检测的TSZ信号的贡献可以忽略不计。使用分析参数和\ textit {planck}类似模拟观察结果,我们表明这样做会导致MMF噪声被高估,从而诱发了信噪比的损失。此外,MMF群集可观察(振幅$ \ hat {y} _0 $或信噪比$ q $)的行为不如预期,这可能是偏见的宇宙学推断。特别是,可观察的可观察到其理论预测的偏见,并显示出与其预测值不同的方差。我们提出了一种迭代MMF(IMMF)方法,旨在减轻这些影响。在这种方法中,在第一个标准MMF步骤之后,通过掩盖数据检测来重新估计噪声功率光谱,从而提供了更新的迭代群集目录。将我们的IMMF应用于我们的\ textit {planck}类似模拟观察结果,我们发现上述效果完全被抑制。这导致相对于标准MMF的信噪增长,具有更重要的检测和较高的数量,并且具有可观察到的预期理论特性的群集,从而消除了宇宙学约束中的任何潜在偏见。

Multi-frequency matched filters (MMFs) are routinely used to detect galaxy clusters from CMB data through the thermal Sunyaev-Zeldovich (tSZ) effect, leading to cluster catalogues that can be used for cosmological inference. In order to be applied, MMFs require knowledge of the cross-frequency power spectra of the noise in the maps. This is typically estimated from the data and taken to be equal to the power spectra of the data, assuming the contribution from the tSZ signal of the detections to be negligible. Using both analytical arguments and \textit{Planck}-like mock observations, we show that doing so causes the MMF noise to be overestimated, inducing a loss of signal-to-noise. Furthermore, the MMF cluster observable (the amplitude $\hat{y}_0$ or the signal-to-noise $q$) does not behave as expected, which can potentially bias cosmological inference. In particular, the observable becomes biased with respect to its theoretical prediction and displays a variance that also differs from its predicted value. We propose an iterative MMF (iMMF) approach designed to mitigate these effects. In this approach, after a first standard MMF step, the noise power spectra are reestimated by masking the detections from the data, delivering an updated iterative cluster catalogue. Applying our iMMF to our \textit{Planck}-like mock observations, we find that the aforementioned effects are completely suppressed. This leads to a signal-to-noise gain relative to the standard MMF, with more significant detections and a higher number of them, and to a cluster observable with the expected theoretical properties, thus eliminating any potential biases in the cosmological constraints.

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