Multi-Horizon Probabilistic Forecasting of Rain-Induced Signal Degradation for Weather-Aware Radio Telescope Operations in a Tropical Climate

Rain fade is the dominant weather disturbance for high-frequency radio telescopes in the tropics, where convective storms develop within minutes and long-term statistical models such as ITU-R P.618 offer no short-term guidance. We present the first site-specific multi-horizon forecast of rain-induced signal degradation for a radio telescope in a tropical climate, built from 65 days (1249 h) of 30-s signal-to-noise ratio (SNR) telemetry from the KMITL 12-m Ku-band antenna in Bangkok, co-located with a 16-s surface weather station. An attention-based network with quantile output and a gradient-boosting ensemble forecast the apparent attenuation (the SNR loss from clear sky; a radiometric correction for rain-emitted noise yields the path attenuation) 5–60 min ahead under day-blocked cross-validation. The point skill against persistence reaches +0.13 at 60 min but is near zero at 5–15 min under rain: the slant-path signal itself leads every surface predictor, including the rain gauge by about 5 min. The forecast value appears instead at the event level. At matched false-alarm rates, quantile-based warnings detect 11 to 13 of 13 fade events with a 20–60 min median lead time, against 9 of 13 and under 20 min for reactive monitoring. A scheduling replay quantifies when forecast-based deferral beats reactive operation, and the fade climatology, lead–lag physics, and 17.7-dB (apparent) case study characterize the site itself.

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Publication Details

Journal
Galaxies
Published
2026-09-28
DOI
https://doi.org/10.3390/galaxies14050089
Primary Topic
Precipitation Measurement and Analysis
Type
article
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article

Multi-Horizon Probabilistic Forecasting of Rain-Induced Signal Degradation for Weather-Aware Radio Telescope Operations in a Tropical Climate

Soemsak Yooyen, Pattarapong Phasukkit, Chusit Pradabpet, Popphon Laon et al.
Galaxies
Precipitation Measurement and Analysis
article

Multi-Horizon Probabilistic Forecasting of Rain-Induced Signal Degradation for Weather-Aware Radio Telescope Operations in a Tropical Climate

Soemsak Yooyen, Pattarapong Phasukkit, Chusit Pradabpet, Popphon Laon, Yoshikazu Miyanaga, Tanawit Sahavisit
article en

Abstract

Rain fade is the dominant weather disturbance for high-frequency radio telescopes in the tropics, where convective storms develop within minutes and long-term statistical models such as ITU-R P.618 offer no short-term guidance. We present the first site-specific multi-horizon forecast of rain-induced signal degradation for a radio telescope in a tropical climate, built from 65 days (1249 h) of 30-s signal-to-noise ratio (SNR) telemetry from the KMITL 12-m Ku-band antenna in Bangkok, co-located with a 16-s surface weather station. An attention-based network with quantile output and a gradient-boosting ensemble forecast the apparent attenuation (the SNR loss from clear sky; a radiometric correction for rain-emitted noise yields the path attenuation) 5–60 min ahead under day-blocked cross-validation. The point skill against persistence reaches +0.13 at 60 min but is near zero at 5–15 min under rain: the slant-path signal itself leads every surface predictor, including the rain gauge by about 5 min. The forecast value appears instead at the event level. At matched false-alarm rates, quantile-based warnings detect 11 to 13 of 13 fade events with a 20–60 min median lead time, against 9 of 13 and under 20 min for reactive monitoring. A scheduling replay quantifies when forecast-based deferral beats reactive operation, and the fade climatology, lead–lag physics, and 17.7-dB (apparent) case study characterize the site itself.

GalaxiesVol. 14(5)
Chitose Institute of Science and Technology (JP), Phranakhon Si Ayutthaya Rajabhat University (TH), King Mongkut's Institute of Technology Ladkrabang (TH)
Climate action
Openalex Percentile: Top 16%
Precipitation Measurement and Analysis
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Multi-Horizon Probabilistic Forecasting of Rain-Induced Signal Degradation for Weather-Aware Radio Telescope Operations in a Tropical Climate — Soemsak Yooyen, Pattarapong Phasukkit, et al. · Galaxies (2026) | TGRS Research Map | TGRS