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Applying the effective-source approach to frequency-domain self-force calculations: Lorenz-gauge gravitational perturbations

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arxiv 1505.07841 v3 pith:SDKES5EW submitted 2015-05-28 gr-qc astro-ph.HE

Applying the effective-source approach to frequency-domain self-force calculations: Lorenz-gauge gravitational perturbations

classification gr-qc astro-ph.HE
keywords effective-sourcefieldmethodself-forcesourceapproacheffectivegravitational
verification ladder T0 review T1 audit T2 compute T3 formal T4 reserved
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With a view to developing a formalism that will be applicable at second perturbative order, we devise a new practical scheme for computing the gravitational self-force experienced by a point mass moving in a curved background spacetime. Our method works in the frequency domain and employs the effective-source approach, in which a distributional source for the retarded metric perturbation is replaced with an effective source for a certain regularized self-field. A key ingredient of the calculation is the analytic determination of an appropriate puncture field from which the effective source and regularized residual field can be calculated. In addition to its application in our effective-source method, we also show how this puncture field can be used to derive tensor-harmonic mode-sum regularization parameters that improve the efficiency of the traditional mode-sum procedure. To demonstrate the method, we calculate the first-order-in-the-mass-ratio self-force and redshift invariant for a point mass on a circular orbit in Schwarzschild spacetime.

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    Extended 1PA self-force waveforms for slowly spinning primary and precessing secondary, with re-summed 1PAT1R variant showing improved accuracy against NR for q ≳ 5 and |χ1| ≲ 0.1.