Gravitational self-force
In gravitational wave physics, the gravitational self-force formalism is an approach to solving the relativistic two body problem using a systematic expansion of the dynamics is powers of the ratio of the masses of the two components of the binary. The gravitational self-force formalism is generally perceived as the only viable route towards predicting accurate gravitational waveform templates for observing extreme mass-ratio inspirals with the Laser Interferometer Space Antenna.
Formulation
The gravitational self-force formalism addresses the regime of the relativistic two body problem where one body is much more massive than the other body. It aims to solve the dynamics as a systematic expansion in powers of the mass-ratio. In typical situations both bodies are assumed to be black holes, but this assumption is not strictly necessary and most results hold for general bodies, as long as the secondary is compact, meaning that the length scales associated with the secondary are proportional to. The gravitational self-force formalism exploits these systems will exhibit a hierarchy of length scales with the typical length scale of the secondary much smaller than the curvature length scale associated with the primary. As a consequence the metric "far" away from the secondary can be described as a perturbation of the metric that would have been produced by the primary aloneAt the same time, the equivalence principle implies that if we zoom in on the secondary that in some sufficiently small neighborhood "near" the secondary the metric is described as
Taking general solutions in each regime and matching both in some intermediate regime using the method of matched asymptotic expansions leads to an effective description of the binary in terms of an effective spacetime
and the motion of the secondary being represented as a worldline in this spacetime. If the secondary is spherically metric then its worldline will be a geodesic in the effective spacetime. Our equivalently, expressed relative to the background spacetime the 4-velocity of worldline satisfies
where the left-hand side is simply the geodesic equation in the background spacetime, and the right-hand side representing an effective force term correcting the motion, the gravitational self-force. Specifically, is known as the first-order gravitational self-force and as the second-order gravitational self-force.