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Quantifying energy fluence and its uncertainty for radio emission from particle cascades in the presence of noise

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arxiv 2407.18654 v3 pith:DZMTEV5P submitted 2024-07-26 astro-ph.IM

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keywords fluencenoiseenergyradiomeasurementsmethodquantifyingsignals
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Measurements of radio signals induced by an astroparticle generating a cascade present a challenge because they are always superposed with an irreducible noise contribution. Quantifying these signals constitutes a non-trivial task, especially at low signal-to-noise ratios (SNR). Because of the randomness of the noise phase, the measurements can be either a constructive or a destructive superposition of signal and noise. To recover the electromagnetic energy of the cascade from the radio measurements, the energy fluence, i.e. the time integral of the Poynting vector, has to be estimated. Conventionally, noise subtraction in the time domain has been employed for energy fluence reconstruction, yielding significant biases, including even non-physical and negative values. To mitigate the effect of this bias, usually an SNR threshold cut is imposed, at the expense of excluding valuable data from the analyses. Additionally, the uncertainties derived from the conventional method are underestimated, even for large SNR values. This work tackles these challenges by detailing a method to correctly estimate the uncertainties and lower the reconstruction bias in quantifying radio signals, thereby, ideally, eliminating the need for an SNR cut. The development of the method is based on a robust theoretical and statistical background, and the estimation of the fluence is performed in the frequency domain, allowing for the improvement of further analyses by providing access to frequency-dependent fluence estimation.

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Cited by 2 Pith papers

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

  1. Likelihood Reconstruction for Radio Detectors of Neutrinos and Cosmic Rays

    astro-ph.IM 2025-10 conditional novelty 6.0 of 10

    A multivariate-normal likelihood with a circulant noise covariance, derived from the noise spectrum, improves radio-detector reconstruction of neutrino and cosmic-ray parameters and yields correctly covered event-by-e...

  2. Towards a Cosmic-Ray Energy Scale with the Auger Engineering Radio Array

    astro-ph.IM 2024-11 conditional novelty 5.0 of 10

    The Auger Engineering Radio Array proposes to compare measured radio energies of 912 hybrid air showers with matched CoREAS simulations initialized at surface-detector energies, but no comparison result is presented.

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