Time domain maximum likelihood parameter estimation in LISA Pathfinder Data Analysis
arXiv:1108.0862 · doi:10.1103/PhysRevD.85.122004
Abstract
LISA is the upcoming space-based Gravitational Wave telescope. LISA Pathfinder, to be launched in the coming years, will prove and verify the detection principle of the fundamental Doppler link of LISA on a flight hardware identical in design to that of LISA. LISA Pathfinder will collect a picture of all noise disturbances possibly affecting LISA, achieving the unprecedented pureness of geodesic motion necessary for the detection of gravitational waves. The first steps of both missions will crucially depend on a very precise calibration of the key system parameters. Moreover, robust parameters estimation is of fundamental importance in the correct assessment of the residual force noise, an essential part of the data processing for LISA. In this paper we present a maximum likelihood parameter estimation technique in time domain being devised for this calibration and show its proficiency on simulated data and validation through Monte Carlo realizations of independent noise runs. We discuss its robustness to non-standard scenarios possibly arising during the real-life mission, as well as its independence to the initial guess and non-gaussianities. Furthermore, we apply the same technique to data produced in mission-like fashion during operational exercises with a realistic simulator provided by ESA.
16 pages (two columns), 15 figures, 5 tables, submitted to Phys. Rev. D
References in corpus (7)
- Use and Abuse of the Fisher Information Matrix in the Assessment of Gravitational-Wave Parameter-Estimation Prospects
- Intermediate and Extreme Mass-Ratio Inspirals -- Astrophysics, Science Applications and Detection using LISA
- Beyond Fisher: exact sampling distributions of the maximum-likelihood estimator in gravitational-wave parameter estimation
- Bayesian parameter estimation in the second LISA Pathfinder Mock Data Challenge
- Coupling characterization and noise studies of the Optical Metrology System on-board the LISA Pathfinder Mission
- Quantitative Analysis of LISA Pathfinder Test Mass Noise
- The end-to-end testbed of the Optical Metrology System on-board LISA Pathfinder
Cited by in corpus (5)
- Calibrating the system dynamics of LISA Pathfinder
- Data series subtraction with unknown and unmodeled background noise
- Bayesian Model Selection for LISA Pathfinder
- Measuring test mass acceleration noise in space-based gravitational wave astronomy
- Optimal design of calibration signals in space borne gravitational wave detectors