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首页> 外文期刊>Bulletin of the American Mathematical Society >THE EMERGENCE OF GRAVITATIONAL WAVE SCIENCE: 100 YEARS OF DEVELOPMENT OF MATHEMATICAL THEORY, DETECTORS, NUMERICAL ALGORITHMS, AND DATA ANALYSIS TOOLS
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THE EMERGENCE OF GRAVITATIONAL WAVE SCIENCE: 100 YEARS OF DEVELOPMENT OF MATHEMATICAL THEORY, DETECTORS, NUMERICAL ALGORITHMS, AND DATA ANALYSIS TOOLS

机译:引力波科学的出现:数学理论,探测器,数值算法和数据分析工具100年的发展

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摘要

On September 14, 2015, the newly upgraded Laser Interferometer Gravitational-wave Observatory (LIGO) recorded a loud gravitational-wave (GW) signal, emitted a billion light-years away by a coalescing binary of two stellar-mass black holes. The detection was announced in February 2016, in time for the hundredth anniversary of Einstein's prediction of GWs within the theory of general relativity (GR). The signal represents the first direct detection of GWs, the first observation of a black-hole binary, and the first test of GR in its strong-field, high-velocity, nonlinear regime. In the remainder of its first observing run, LIGO observed two more signals from black-hole binaries, one moderately loud, another at the boundary of statistical significance. The detections mark the end of a decades-long quest and the beginning of GW astronomy: finally, we are able to probe the unseen, electromagnetically dark Universe by listening to it. In this article, we present a short historical overview of GW science: this young discipline combines GR, arguably the crowning achievement of classical physics, with record-setting, ultra-low-noise laser interferometry, and with some of the most powerful developments in the theory of differential geometry, partial differential equations, high-performance computation, numerical analysis, signal processing, statistical inference, and data science. Our emphasis is on the synergy between these disciplines and how mathematics, broadly understood, has historically played, and continues to play, a crucial role in the development of GW science. We focus on black holes, which are very pure mathematical solutions of Einstein's gravitational-field equations that are nevertheless realized in Nature and that provided the first observed signals.
机译:2015年9月14日,新升级的激光干涉仪引力波观测台(Ligo)记录了大量的引力波(GW)信号,通过两个恒星质量黑洞的合并二进制散发了十亿光年。该检测于二零一六年二月宣布,在一般相对论(GR)理论中,爱因斯坦对GWS预测的百周度。该信号代表GW的第一直接检测,第一观察黑洞二进制二进制,以及GR的强大的高速,高速,非线性方案的第一次测试。在其剩余的第一次观察运行中,利加戈观察了来自黑洞二进制文件的两个信号,一个中度响亮,另一个在统计显着性的边界处。检测标志着几十年的追求和GW天文的开始:最后,我们能够通过收听它来探测看不见的电磁黑暗宇宙。在本文中,我们提出了GW Science的简短历史概述:这段年轻的学科结合了GR,可以说是古典物理的加剧成就,具有记录设置,超低噪声激光干涉测量,以及一些最强大的发展差分几何形状,部分微分方程,高性能计算,数值分析,信号处理,统计推断和数据科学理论。我们的重点是在这些学科之间的协同作用以及历史上广泛地了解的数学和数学之间的协同作用,并继续发挥作用,这是在GW Science的发展中的一种至关重要的作用。我们专注于黑洞,这是Einstein的引力场方程的非常纯粹的数学解决方案,其自然实现并且提供了第一观察到的信号。

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