The Magnusian generator for dissipative systems and application to leading 2.5PN radiation-reaction dynamics
gr-qc, astro-ph.SR, physics.class-ph
Submitted: 2026-07-27
Updated: 2026-09-01
Comments: 42 pages. 2 figures
License: http://creativecommons.org/licenses/by/4.0/
The gist: The Magnusian is a phase-space function that generates finite-time evolution through nested Poisson brackets.
Terminology
Abstract
The Magnusian is a phase-space function that generates finite-time evolution through nested Poisson brackets. It is related to several familiar generators of classical dynamics, including the radial action, the eikonal phase and related quantities. In this work, we extend the Magnusian framework to systems with dissipation and nonlocal-in-time interactions using the in-in formalism, also known as the Schwinger-Keldysh or Galley formalism. This framework is particularly natural for binary dynamics, where integrating out the mediating gravitational field can produce both dissipative radiation-reaction effects and hereditary, nonlocal-in-time interactions. We derive the generalized Magnusian and show that it continues to generate finite-time evolution. As an application, we construct the Magnusian for Newtonian bound motion subject to the leading 2.5PN radiation-reaction force. The resulting generator defines a discrete evolution map from one cycle to the next and describes the evolution of the system in agreement with numerical solutions.
Sources
- Observation of Gravitational Waves from a Binary Black Hole Merger
- GW151226: Observation of Gravitational Waves from a 22-Solar-Mass Binary Black Hole Coalescence
- Binary Black Hole Mergers in the first Advanced LIGO Observing Run
- Post-Newtonian Theory for Gravitational Waves
- The Effective Field Theorist's Approach to Gravitational Dynamics
- Effective Field Theories of Post-Newtonian Gravity: A comprehensive review
- Dynamics of Binary Systems to Fourth Post-Minkowskian Order from the Effective Field Theory Approach
- Laser Interferometer Space Antenna
- Conservative Dynamics of Binary Systems at Fourth Post-Minkowskian Order in the Large-eccentricity Expansion
- Gravitational scattering, post-Minkowskian approximation and Effective One-Body theory
- Scattering Amplitudes and Conservative Binary Dynamics at ${\cal O}(G^4)$
- Scattering Amplitudes, the Tail Effect, and Conservative Binary Dynamics at $O(G^4)$
- The motion of point particles in curved spacetime
- Black holes, gravitational waves and fundamental physics: a roadmap
- Self-force and radiation reaction in general relativity
- A practical, covariant puncture for second-order self-force calculations
- The General Relativistic Two Body Problem and the Effective One Body Formalism
- Effective-one-body model for black-hole binaries with generic mass ratios and spins
- The First Law of Binary Black Hole Mechanics in General Relativity and Post-Newtonian Theory
- Classical eikonal from Magnus expansion
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