Reconstruction of cosmic ray air showers with Tunka-Rex data using template fitting of radio pulses
P.A. Bezyazeekov, N.M. Budnev, D. Chernykh, O. Fedorov, O.A. Gress, A., Haungs, R. Hiller, T. Huege, Y. Kazarina, M. Kleifges, D. Kostunin, E.E., Korosteleva, L.A. Kuzmichev, V. Lenok, N. Lubsandorzhiev, T. Marshalkina,, R.R. Mirgazov, R. Monkhoev, E. Osipova, A. Pakhorukov

TL;DR
This paper introduces an improved radio pulse shape fitting method for reconstructing cosmic ray air showers with Tunka-Rex, achieving high accuracy in energy and shower maximum measurements, comparable to optical detectors.
Contribution
The paper presents a novel template fitting technique for radio pulse analysis that enhances the precision of cosmic ray air shower reconstruction using sparse radio arrays.
Findings
Energy resolution of about 10% achieved.
Shower maximum accuracy improved to 35 g/cm².
Shower maximum resolution reaches 25 g/cm² under optimal conditions.
Abstract
We present an improved method for the precise reconstruction of cosmic ray air showers above eV with sparse radio arrays. The method is based on the comparison of predictions for radio pulse shapes by CoREAS simulations to measured pulses. We applied our method to the data of Tunka-Rex, a 1 km radio array in Siberia operating in the frequency band of 30-80 MHz. Tunka-Rex is triggered by the air-Cherenkov detector Tunka-133 and by scintillators (Tunka-Grande). The instrument collects air-shower data since 2012. The present paper describes updated data and signal analyses of Tunka-Rex and details of a new method applied. After efficiency cuts, when Tunka-Rex reaches its full efficiency, the energy resolution of about 10% given by the new method has reached the limit of systematic uncertainties due to the calibration uncertainty and shower-to-shower fluctuations. At the same…
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