Low-Cost Ka-Band Satellite Receiver Data Preprocessing for Tropospheric Propagation Studies
Abstract
:1. Introduction
2. Materials and Methods
2.1. Experimental Setup
2.1.1. The RF Outdoor Unit
2.1.2. The Indoor Unit
2.2. Extraction of the Daily Template
- 1.
- Three days of data selection: time synchronized beacon and meteorological data of the previous, current, and next days;
- 2.
- Outlier detection based on the standard deviation of the mean value of the raw data: These mean values were computed using a 2 min moving average filter. When the difference between the beacon level and its moving average is larger than the standard deviation multiplied by a coverage factor, then the sample is recognized as an outlier and flagged as invalid data. In this work, a coverage factor of 5 was used;
- 3.
- Detection of abnormal amplitude changes (exceeding a defined threshold) from one sample to another: In this study, the samples exceeding a threshold of 1 were considered as spikes and flagged as invalid data;
- 4.
- Identification of rainy periods: Data corresponding to rain events are flagged as invalid data;
- 5.
- A repair operation: Missing and invalid data are replaced by linear interpolation from the valid data;
- 6.
- After having inspected and repaired the selected data, template extraction itself is performed. To identify the template, we performed a low-pass filter processing that should be able to follow the fairly slow changes in water vapor in the atmosphere, with time constants of hours, and the presence of clouds, with time constants faster, but still slower than rain. In addition, we had to follow both the combined effect of receive antenna mispointing plus satellite orbit perturbation and the LNB gain oscillations due to the thermal variations, which clearly have a full one-day duration. The template was computed with an FFT by considering only those components whose period was longer than 8 min. Several tests were carried out, and this seemed to be the optimum value in our case.
3. Results
4. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
a.m.s.l. | above mean sea level |
ASI | Agenzia Spaziale Italiana (Italian Space Agency) |
CDF | Cumulative Distribution Function |
EIRP | Equivalent Isotropically Radiated Power |
ESA | European Space Agency |
FFT | Fast Fourier Transform |
GNSS | Global Navigation Satellite System |
IF | Intermediate Frequency |
LNB | Low-Noise Block |
METAR | METeorological Aerodrome Report |
N | Noise |
PC | Personal Computer |
RF | Radio Frequency |
RH | Relative Humidity |
S | Received Beacon Signal |
SDR | Software-Defined Radio |
SNR | Signal-power-to-Noise-power Ratio |
USB | Universal Serial Bus |
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Pastoriza-Santos, V.; Machado, F.; Nandi, D.; Pérez-Fontán, F. Low-Cost Ka-Band Satellite Receiver Data Preprocessing for Tropospheric Propagation Studies. Sensors 2022, 22, 1043. https://doi.org/10.3390/s22031043
Pastoriza-Santos V, Machado F, Nandi D, Pérez-Fontán F. Low-Cost Ka-Band Satellite Receiver Data Preprocessing for Tropospheric Propagation Studies. Sensors. 2022; 22(3):1043. https://doi.org/10.3390/s22031043
Chicago/Turabian StylePastoriza-Santos, Vicente, Fernando Machado, Dalia Nandi, and Fernando Pérez-Fontán. 2022. "Low-Cost Ka-Band Satellite Receiver Data Preprocessing for Tropospheric Propagation Studies" Sensors 22, no. 3: 1043. https://doi.org/10.3390/s22031043
APA StylePastoriza-Santos, V., Machado, F., Nandi, D., & Pérez-Fontán, F. (2022). Low-Cost Ka-Band Satellite Receiver Data Preprocessing for Tropospheric Propagation Studies. Sensors, 22(3), 1043. https://doi.org/10.3390/s22031043