哪个是哪个?识别引力波双星中的两个紧凑天体

Davide Gerosa, Viola De Renzis, Federica Tettoni, Matthew Mould, Alberto Vecchio, Costantino Pacilio
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引用次数: 0

摘要

迄今为止,引力波天文学观测到的紧凑天体总是成对出现,从未单独出现过。识别双星系统的两个组成部分是一项微妙的操作,通常被认为是理所当然的。在引力波数据推理中,标注过程(即哪个是天体 "1",哪个是天体 "2")实际上是一种系统学,或者说是一种未指定的先验。通常的做法是在逐个样本的基础上,仅以质量来标注天体;虽然直观,但当双星质量相当时,这会导致退化。相反,我们认为应该使用整体的后验分布来处理天体识别问题。我们从受限聚类(一种半监督机器学习)的角度来解决这个问题,并发现展开标签系统学可以极大地影响并改善我们对数据的解读。特别是,黑洞自旋测量的精确度提高了多达50%,虚假的多模态和尾部趋于消失,后验值变得更接近高斯分布,并有助于识别天体的性质(即黑洞与中子星)。据我们估计,大约有10%的LIGO/Virgo后验样本受到了这种重新标注的影响,也就是说,它们可能被归因于观测到的双星中的错误紧凑天体。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Which is which? Identification of the two compact objects in gravitational-wave binaries
Compact objects observed in gravitational-wave astronomy so far always come in pairs and never individually. Identifying the two components of a binary system is a delicate operation that is often taken for granted. The labeling procedure (i.e. which is object "1" and which is object "2") effectively acts as systematics, or equivalently an unspecified prior, in gravitational-wave data inference. The common approach is to label the objects solely by their masses, on a sample-by-sample basis; while intuitive, this leads to degeneracies when binaries have comparable masses. Instead, we argue that object identification should be tackled using the posterior distribution as a whole. We frame the problem in terms of constrained clustering -- a flavor of semi-supervised machine learning -- and find that unfolding the labeling systematics can significantly impact, and arguably improve, our interpretation of the data. In particular, the precision of black-hole spin measurements improves by up to 50%, spurious multimodalities and tails tend to disappear, posteriors become closer to Gaussian distributions, and the identification of the nature of the object (i.e. black hole vs. neutron star) is facilitated. We estimate that about 10% of the LIGO/Virgo posterior samples are affected by this relabeling, i.e. they might have been attributed to the wrong compact object in the observed binaries.
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