Towards unbiased recovery of cosmic filament properties: the role of spine curvature and optimized smoothing

IF 5.3 2区 物理与天体物理 Q1 ASTRONOMY & ASTROPHYSICS Journal of Cosmology and Astroparticle Physics Pub Date : 2024-09-18 DOI:10.1088/1475-7516/2024/09/041
Saee Dhawalikar and Aseem Paranjape
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Abstract

Cosmic filaments, the most prominent features of the cosmic web, possibly hold untapped potential for cosmological inference. While it is natural to expect the structure of filaments to show universality similar to that seen in dark matter halos, the lack of agreement between different filament finders on what constitutes a filament has hampered progress on this topic. We initiate a programme to systematically investigate and uncover possible universal features in the phase space structure of cosmic filaments, by generating particle realizations of mock filaments with a priori known properties. Using these, we identify an important source of bias in the extraction of radial density profiles, which occurs when the local curvature κ of the spine exceeds a threshold determined by the filament thickness. This bias exists even for perfectly determined spines, thus affecting all filament finders. We show that this bias can be nearly eliminated by simply discarding the regions with the highest κ, with little loss of precision. An additional source of bias is the noise generated by the filament finder when identifying the spine, which depends on both the finder algorithm as well as intrinsic properties of the individual filament. We find that to mitigate this bias, it is essential not only to smooth the estimated spine, but to optimize this smoothing separately for each filament. We propose a novel optimization based on minimizing the estimated filament thickness, along with Fourier space smoothing. We implement these techniques using two tools, FilGen which generates mock filaments and FilAPT which analyses and processes them. We expect these tools to be useful in calibrating the performance of filament finders, thereby enabling searches for filament universality.
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宇宙丝是宇宙网最突出的特征,可能蕴藏着尚未开发的宇宙学推断潜力。尽管人们自然而然地期望宇宙丝的结构显示出与暗物质晕类似的普遍性,但不同的宇宙丝发现者对什么是宇宙丝缺乏一致的认识,这阻碍了这一课题的进展。我们启动了一项计划,通过生成具有先验已知性质的模拟丝的粒子现实,系统地研究和揭示宇宙丝的相空间结构中可能存在的普遍特征。利用这些,我们发现了径向密度剖面提取中的一个重要偏差源,当脊柱的局部曲率κ超过由丝状物厚度决定的阈值时,就会出现这种偏差。即使是完全确定的脊柱,这种偏差也会存在,因此会影响所有丝状物的发现。我们的研究表明,只需舍弃κ最大的区域,就几乎可以消除这种偏差,而且精度损失很小。另一个偏差来源是灯丝发现者在识别脊柱时产生的噪声,这既取决于发现者的算法,也取决于单个灯丝的内在属性。我们发现,要减少这种偏差,不仅要平滑估计出的脊柱,还要针对每根灯丝分别优化这种平滑。我们提出了一种新颖的优化方法,该方法基于最小化估计的细丝厚度以及傅立叶空间平滑。我们使用两个工具来实现这些技术,一个是生成模拟丝的 FilGen,另一个是分析和处理模拟丝的 FilAPT。我们希望这些工具能够在校准丝状物探测器的性能方面发挥作用,从而实现对丝状物普遍性的搜索。
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来源期刊
Journal of Cosmology and Astroparticle Physics
Journal of Cosmology and Astroparticle Physics 地学天文-天文与天体物理
CiteScore
10.20
自引率
23.40%
发文量
632
审稿时长
1 months
期刊介绍: Journal of Cosmology and Astroparticle Physics (JCAP) encompasses theoretical, observational and experimental areas as well as computation and simulation. The journal covers the latest developments in the theory of all fundamental interactions and their cosmological implications (e.g. M-theory and cosmology, brane cosmology). JCAP''s coverage also includes topics such as formation, dynamics and clustering of galaxies, pre-galactic star formation, x-ray astronomy, radio astronomy, gravitational lensing, active galactic nuclei, intergalactic and interstellar matter.
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Towards unbiased recovery of cosmic filament properties: the role of spine curvature and optimized smoothing Results of the follow-up of ANTARES neutrino alerts Observational features of reflection asymmetric black holes Constraining Post-Newtonian Parameters with the Cosmic Microwave Background Accurate power spectrum estimation toward Nyquist limit
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