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Testing general relativity with present and future astrophysical observations

机译:用现在和将来的天体观测来检验广义相对论

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One century after its formulation, Einstein's general relativity (GR) has made remarkable predictions and turned out to be compatible with all experimental tests. Most of these tests probe the theory in the weak-field regime, and there are theoretical and experimental reasons to believe that GR should be modified when gravitational fields are strong and spacetime curvature is large. The best astrophysical laboratories to probe strong-field gravity are black holes and neutron stars, whether isolated or in binary systems. We review the motivations to consider extensions of GR. We present a (necessarily incomplete) catalog of modified theories of gravity for which strong-field predictions have been computed and contrasted to Einstein's theory, and we summarize our current understanding of the structure and dynamics of compact objects in these theories. We discuss current bounds on modified gravity from binary pulsar and cosmological observations, and we highlight the potential of future gravitational wave measurements to inform us on the behavior of gravity in the strong-field regime.
机译:提出爱因斯坦广义相对论(GR)的一个世纪后,它做出了非凡的预测,并证明与所有实验测试兼容。这些测试中的大多数都是在弱场状态下对理论进行探讨的,并且有理论和实验上的理由认为,当引力场较强且时空曲率较大时,应修改GR。探测强场引力的最佳天体实验室是黑洞和中子星,无论是孤立的还是双星系统。我们回顾了考虑扩展遗传资源的动机。我们提供了一个修正的重力理论目录(可能是不完整的),其中已经计算了强场预测并将其与爱因斯坦的理论进行了对比,并总结了我们对这些理论中的紧凑物体的结构和动力学的当前理解。我们从二元脉冲星和宇宙学观测中讨论了修正引力的当前界线,并强调了未来引力波测量的潜力,以向我们介绍强场状态下的引力行为。

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