引力透镜的假阳性:引力波视角

David Keitel
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引用次数: 0

摘要

对于首次探测到新的天体物理现象,科学标准特别高。特别是在多信使的情况下,对任何探测结果进行后续观测都需要付出机会成本。因此,在寻找仍然难以捉摸的透镜引力波时,需要注意控制假阳性。特别是,许多识别强透镜的方法都依赖于某种形式的参数相似性或波形一致性,在星表规模快速增长的情况下,如果不加以适当的注意,就会暴露在来自重合但未透镜事件的误报中。而且,在所有透镜状态下对波形变形的搜索,都会受到我们需要缓解的透镜、固有参数、未充分建模的效应(如轨道偏心率),甚至广义相对论偏差之间的退行性的影响。稳健的透镜研究还需要了解并减少探测数据中的故障和非稳态现象。这篇文章回顾了引力波透镜搜索中可能出现假阳性(及其反面:假阴性)的原因,以及研究界为减少这些原因而采取的主要方法。
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False positives for gravitational lensing: the gravitational-wave perspective
For the first detection of a novel astrophysical phenomenon, scientific standards are particularly high. Especially in a multi-messenger context, there are also opportunity costs to follow-up observations on any detection claims. So in searching for the still elusive lensed gravitational waves, care needs to be taken in controlling false positives. In particular, many methods for identifying strong lensing rely on some form of parameter similarity or waveform consistency, which under rapidly growing catalog sizes can expose them to false positives from coincident but unlensed events if proper care is not taken. And searches for waveform deformations in all lensing regimes are subject to degeneracies we need to mitigate between lensing, intrinsic parameters, insufficiently modelled effects such as orbital eccentricity, or even deviations from general relativity. Robust lensing studies also require understanding and mitigating glitches and non-stationarities in the detector data. This article reviews sources of possible false positives (and their flip side: false negatives) in gravitational-wave lensing searches and the main approaches the community is pursuing to mitigate them.
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