Resumen
Global navigation satellite system (GNSS) receivers commonly integrated into small unmanned aircraft systems (UAS) generally function in standard or differential fix configurations, providing horizontal and vertical accuracies of approximately ±5 meters and ±15 meters, respectively. The accuracy of GNSS positioning is an important factor with widespread implications, affecting domains such as precision agriculture, meteorology, and photogrammetry. In the context of atmospheric observations, spatial accuracy plays a critical role, particularly in applications related to barometric pressure and precipitable water vapor. Similarly, UAS-based photogrammetry applications rely on high geospatial precision for tasks including topographic mapping and environmental monitoring. As such, this study aimed to improve our understanding of GNSS positioning accuracy in UAS-based observations. The main objectives included (1) deploying a UAS-based GNSS accuracy testing system and (2) evaluating the static and dynamic short-term accuracy of L1 and L1/L2 GNSS receivers in RTK and non-RTK fix modes. Results indicated significant differences across receiver configurations and deployment strategies. RTK receivers displayed minimal mean error and consistent standard deviations, while non-RTK receivers exhibited greater mean error and variability, especially in elevation. Though the study did not conclusively confirm a consistent reduction in accuracy due to UAS deployment, findings suggest that RTK receivers substantially enhance accuracy by reducing position measurement error by two orders of magnitude (1–6 cm for RTK; 50–315 cm for non-RTK), thereby mitigating measurement variability attributable to timing or deployment strategy. In conclusion, this research contributed insights into GNSS accuracy for UAS-based observations and underscored the importance of considering receiver configurations and deployment strategies for position measurement during atmospheric and photogrammetric observations.
| Idioma original | English |
|---|---|
| Páginas (desde-hasta) | 1433-1446 |
| Número de páginas | 14 |
| Publicación | Journal of the ASABE |
| Volumen | 67 |
| N.º | 6 |
| DOI | |
| Estado | Published - 2024 |
Nota bibliográfica
Publisher Copyright:© 2024 American Society of Agricultural and Biological Engineers.
Financiación
This research was supported in part by the National Aeronautics and Space Administration (NASA) Kentucky Space Grant Consortium under NASA award number 80NSSC20M0047, the National Science Foundation (NSF) under award 1932105, and the United States Department of Agriculture National Institute of Food and Agriculture (USDA NIFA) Multistate Project S1069 under accession number 1539070.
| Financiadores | Número del financiador |
|---|---|
| National Aeronautics and Space Administration | |
| Kentucky Space Grant Consortium | 80NSSC20M0047 |
| National Science Foundation Arctic Social Science Program | 1932105 |
| US Department of Agriculture National Institute of Food and Agriculture, Agriculture and Food Research Initiative | 1539070, S1069 |
ASJC Scopus subject areas
- Forestry
- Food Science
- Biomedical Engineering
- Agronomy and Crop Science
- Soil Science
Huella
Profundice en los temas de investigación de 'SHORT-TERM PERFORMANCE EVALUATION OF REAL-TIME KINEMATIC GLOBAL NAVIGATION SATELLITE SYSTEM RECEIVERS IN UNMANNED AIRCRAFT SYSTEMS'. En conjunto forman una huella única.Citar esto
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