论文标题

信号簇在宽频搜索中的影响连续重力波

Impact of signal clusters in wide-band searches for continuous gravitational waves

论文作者

Pierini, Lorenzo, Astone, Pia, Palomba, Cristiano, Nyquist, Aidan, Dall'Osso, Simone, D'Antonio, Sabrina, Frasca, Sergio, La Rosa, Iuri, Leaci, Paola, Muciaccia, Federico, Piccinni, Ornella J., Rei, Luca

论文摘要

在本文中,我们介绍了一项研究,研究了在Ligo和处女座协作中使用的分层频率 - 荷(FH)管道的一些相关步骤,用于通过旋转中子星(NSS)发出的连续引力波(CWS)的宽参数空间搜索(CWS)。由于其预期幅度较弱,到目前为止仍未发现CW。这些步骤,即光谱估计,{\ it peakmap}构造和在FH平面中选择候选者的过程,对于确定最终搜索灵敏度的贡献至关重要。在这里,我们有兴趣研究其在信号簇的(目前非常)的极端情况下的行为,这是由于许多且强大的CW源,在一个小(即<1 Hz宽)频率范围内发射引力波(GWS)。对于下一代探测器,例如丽莎,爱因斯坦望远镜和宇宙资源管理器,可能会发生这种情况。此外,在当前基于地球的探测器的某些情况下,这种可能性最近也被提出,在某些情况下,从恒星质量黑洞(BHS)周围的超轻玻色云中发射CW。我们定量评估FH分析程序的鲁棒性,旨在最大程度地减少信号簇的异常情况下的单个CW信号的损失。结果主要取决于信号的幅度和致密性的强度,以及它们覆盖的频率范围。我们表明,在存在很高的平均信号密度的情况下,可能会发生小敏感性损失,从而影响一个赫兹的频率范围,而当信号簇覆盖了赫尔茨的十分之一或更少的频率范围时,我们实际上可能具有灵敏度增长。总体而言,即使存在中等到大信号簇,我们也证明了FH也是可靠的。

In this paper we present a study of some relevant steps of the hierarchical frequency-Hough (FH) pipeline, used within the LIGO and Virgo Collaborations for wide-parameter space searches of continuous gravitational waves (CWs) emitted, for instance, by spinning neutron stars (NSs). Because of their weak expected amplitudes, CWs have not been still detected so far. These steps, namely the spectral estimation, the {\it peakmap} construction and the procedure to select candidates in the FH plane, are critical as they contribute to determine the final search sensitivity. Here, we are interested in investigating their behavior in the (presently quite) extreme case of signal clusters, due to many and strong CW sources, emitting gravitational waves (GWs) within a small (i.e. <1 Hz wide) frequency range. This could happen for some kinds of CW sources detectable by next generation detectors, like LISA, Einstein Telescope and Cosmic Explorer. Moreover, this possibility has been recently raised even for current Earth-based detectors, in some scenarios of CW emission from ultralight boson clouds around stellar mass black holes (BHs). We quantitatively evaluate the robustness of the FH analysis procedure, designed to minimize the loss of single CW signals, under the unusual situation of signal clusters. Results depend mainly on how strong in amplitude and dense in frequency the signals are, and on the range of frequency they cover. We show that indeed a small sensitivity loss may happen in presence of a very high mean signal density affecting a frequency range of the order of one Hertz, while when the signal cluster covers a frequency range of one tenth of Hertz, or less, we may actually have a sensitivity gain. Overall, we demonstrate the FH to be robust even in presence of moderate-to-large signal clusters.

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