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Searches for gravitational waves from binary black hole coalescences with ground-based laser interferometers across a wide parameter space.

机译:使用基于地面的激光干涉仪在较宽的参数空间中搜索来自二进制黑洞合并的引力波。

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摘要

This is an exciting time for Gravitational Wave (GW) theory and observations. From a theoretical standpoint, the grand-challenge problem of the full evolution of a Binary Black Hole (BBH) system has been solved numerically, and a variety of source simulations are made available steadfastly. On the observational side, the first generation of state-of-the-art GW detectors, LIGO and Virgo, have achieved their design goal, collected data and provided astrophysically meaningful limits. The second generation of detectors are expected to start running by 2015. Inspired by this zeitgeist, this thesis focuses on the detection of potential GW signatures from the coalescence of BBH in ground-based laser interferometers. The LIGO Scientific Collaboration has implemented different algorithms to search for transient GW signatures, targeting different portions of the BBH coalescence waveform. This thesis has used the existing algorithms to study the detection potential of GW from colliding BBH in LIGO in a wide range of source parameters, such as mass and spin of the black holes, using a sample of data from the last two months of the S5 LIGO science run (14 Aug 2007 to 30 Sept 2007). This thesis also uses numerical relativity waveforms made available via the Numerical INJection Analysis project (NINJA). Methods such as the Chirplet based analysis and the use of multivariate classifiers to optimize burst search algorithms have been introduced in this thesis. These performance studies over a wide parameter space were designed to optimize the discovery potential of ground-based GW detectors and defining strategies for the search of BBH signatures in advanced LIGO data, as a step towards the realization of GW astronomy.
机译:对于引力波(GW)理论和观测而言,这是一个激动人心的时刻。从理论的角度来看,二进制黑洞(BBH)系统完全演化的大挑战问题已经得到了数值解决,并且各种源代码仿真也可以稳定地获得。在观测方面,第一代最先进的GW探测器LIGO和Virgo已实现其设计目标,收集了数据并提供了天文学意义上的有意义的限制。预计第二代探测器将于2015年开始运行。受这一时代精神的启发,本论文着重于从地面激光干涉仪中BBH的结合中检测潜在的GW信号。 LIGO科学合作社已针对BBH合并波形的不同部分实施了不同的算法来搜索瞬时GW签名。本文使用现有算法研究了S5最后两个月的数据样本,研究了LIGO中BBH碰撞GW中GW的检测潜力,这些参数在广泛的源参数中,例如黑洞的质量和旋转。 LIGO科学竞赛(2007年8月14日至2007年9月30日)。本文还使用了通过数值注射分析项目(NINJA)获得的数值相对论波形。本文介绍了基于Chirplet的分析方法以及使用多元分类器优化突发搜索算法的方法。这些在宽参数空间上的性能研究旨在优化地面GW探测器的发现潜力,并定义高级LIGO数据中BBH签名搜索策略,这是实现GW天文学的一步。

著录项

  • 作者单位

    University of Massachusetts Amherst.;

  • 授予单位 University of Massachusetts Amherst.;
  • 学科 Physics Astrophysics.;Physics Theory.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 292 p.
  • 总页数 292
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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