We review the tests of general relativity that will become possible with space-based gravitational-wave detectors operating in the ∼ 10^{-5} – 1 Hz low-frequency band. The fundamental aspects of gravitation that can be tested include the presence of additional gravitational fields other than the metric; the number and tensorial nature of gravitational-wave polarization states; the velocity of propagation of gravitational waves; the binding energy and gravitational-wave radiation of binaries, and therefore the time evolution of binary inspirals; the strength and shape of the waves emitted from binary mergers and ringdowns; the true nature of astrophysical black holes; and much more. The strength of this science alone calls for the swift impl...
In 2015, the detection of gravitational waves (GWs) from merging black holes by the LIGO Scientific ...
The detections of gravitational-wave (GW) signals from compact binary coalescence by ground-based de...
The detection of gravitational waves by Advanced LIGO and Advanced Virgo provides an opportunity to ...
Low-frequency gravitational-wave astronomy can perform precision tests of general relativity and pro...
In 2015, the detection of gravitational waves (GWs) from merging black holes by the LIGO Scientific ...
The detections of gravitational-wave (GW) signals from compact binary coalescence by ground-based de...
The detection of gravitational waves by Advanced LIGO and Advanced Virgo provides an opportunity to ...
Low-frequency gravitational-wave astronomy can perform precision tests of general relativity and pro...
In 2015, the detection of gravitational waves (GWs) from merging black holes by the LIGO Scientific ...
The detections of gravitational-wave (GW) signals from compact binary coalescence by ground-based de...
The detection of gravitational waves by Advanced LIGO and Advanced Virgo provides an opportunity to ...