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    Systematic biases in parameter estimation on LISA binaries: The effect of excluding higher harmonics for non-spinning binaries

    Sophia Yi1,*, Francesco Iacovelli1,†, Sylvain Marsat2,‡, Digvijay Wadekar1,§, and Emanuele Berti1,∥

    • *Contact author: syi24@jh.edu
    • †Contact author: fiacovelli@jhu.edu
    • ‡Contact author: sylvain.marsat@l2it.in2p3.fr
    • §Contact author: jayw@jhu.edu
    • ∥Contact author: berti@jhu.edu

    Phys. Rev. D 112, 124063 – Published 18 December, 2025

    DOI: https://doi.org/10.1103/3gs3-gmb4

    Abstract

    The remarkable sensitivity achieved by the planned Laser Interferometer Space Antenna (LISA) will allow us to observe gravitational-wave signals from the mergers of massive black hole binaries (MBHBs) with signal-to-noise ratio (SNR) in the hundreds, or even thousands. At such high SNR, our ability to precisely infer the parameters of an MBHB from the detected signal will be limited by the accuracy of the waveform templates we use. In this paper, we explore the systematic biases that arise in parameter estimation if we use waveform templates that do not model radiation in higher-order multipoles. This is an important consideration for the large fraction of high-mass events expected to be observed with LISA. We examine how the biases change for MBHB events with different total masses, mass ratios, and inclination angles. We find that systematic biases due to insufficient mode content are severe for events with total redshifted mass ≳106M⊙. We then compare several methods of predicting such systematic biases without performing a full Bayesian parameter estimation. In particular, we show that through direct likelihood optimization it is possible to predict systematic biases with remarkable computational efficiency and accuracy. Finally, we devise a method to construct approximate waveforms including angular multipoles with ℓ≥5 to better understand how many additional modes (beyond the ones available in current approximants) might be required to perform unbiased parameter estimation on the MBHB signals detected by LISA.

    Physics Subject Headings (PhySH)

    See Also

    Systematic biases in parameter estimation on LISA binaries. II. The effect of excluding higher harmonics for spin-aligned, high-mass binaries

    Sophia Yi, Francesco Iacovelli, Emanuele Berti, Rohit S. Chandramouli, Sylvain Marsat, Digvijay Wadekar, and Nicolás Yunes
    Phys. Rev. D 114, 024017 (2026)

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