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Adapting time-delay interferometry for LISA data in frequency

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arxiv 2103.06976 v2 pith:XX2UCKCR submitted 2021-03-11 gr-qc

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keywords interferometriclasermeasurementsnoisetechniquegravitationalarmlengthsfrequency
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Time-delay interferometry (TDI) is a post-processing technique used to reduce laser noise in heterodyne interferometric measurements with unequal armlengths, a situation characteristic of space gravitational detectors such as Laser Interferometer Space Antenna (LISA). This technique consists in properly time-shifting and linearly combining the interferometric measurements in order to reduce the laser noise by several orders of magnitude and to detect gravitational waves. In this communication, we show that the Doppler shift due to the time evolution of the armlengths leads to an unacceptably large residual noise when using interferometric measurements expressed in units of frequency and standard expressions of the TDI variables. We also present a technique to mitigate this effect by including a scaling of the interferometric measurements in addition to the usual time-shifting operation when constructing the TDI variables. We demonstrate analytically and using numerical simulations that this technique allows one to recover standard laser noise suppression which is necessary to measure gravitational waves.

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Cited by 1 Pith paper

Reviewed papers in the Pith corpus that reference this work. Sorted by Pith novelty score. Full citation record

  1. Mitigation of the Flexing-Filtering Effect in Time-Delay Interferometry

    astro-ph.IM 2025-06 conditional novelty 7.0 of 10

    A modified TDI delay operator that folds the anti-aliasing filter response into the delay itself suppresses flexing-filtering noise in LISA simulations, with residuals dropping below the 0.1 pm reference.

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