Construction Progress and Aviation Flight Test of BDSBAS
Abstract
:1. Introduction
2. Overview of BDSBAS
2.1. System Architecture
2.2. Operation Flow
2.3. BDSBAS SF Solution
2.3.1. Long-Term Correction and Fast Correction Calculation
Long-Term Correction
Fast Correction
2.3.2. Atmospheric Delay Correction Calculation
Ionospheric Correction
Tropospheric Correction
2.3.3. Degradation Parameter Calculation
2.3.4. Protection Level Calculation
2.3.5. Carrier Smoothing Pseudo-Range
3. BDSBAS Service Performance Evaluation
3.1. Positioning Accuracy
3.2. Availability
- The positioning error (PE) is less than the protection level, and the PL is less than the AL. Therefore the service is available;
- The PE is less than the AL, and the AL is less than the PL. The service is unavailable;
- The PL is less than the AL, and the AL is less than the PE. In this case, the service will be misjudged as available, causing system miss alarms and result in serious integrity risk events;
- The PE is less than the AL, and the AL is less than the PL. In this case, the service will be misjudged as unavailable, causing system false alarms and affecting the availability and continuity of the service.
3.3. Continuity
3.4. Integrity
4. BDSBAS Aviation Flight Test
4.1. Flight Test Environment
4.2. Flight Test-I
4.3. Flight Test-II
4.4. Flight Test-III
5. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Conflicts of Interest
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Satellite | PRN Code Number | Orbital Slot | Launch Date |
---|---|---|---|
GEO-1 | 130 | 140E | 1 November 2018 |
GEO-2 | 144 | 80E | 9 March 2020 |
GEO-3 | 143 | 110.5E | 23 June 2020 |
Indicators | Statistical Results |
---|---|
Horizontal accuracy/m (95%) | 1.62 |
Vertical accuracy/m (95%) | 4.38 |
Minimum horizontal safety index | 7.160 |
Minimum vertical safety index | 4.594 |
NPA availability | 100.00% |
NPA continuity | 100.00% |
NPA HMI events | 0 |
APV-I availability | 100.00% |
APV-I continuity | 100.00% |
APV-I HMI events | 0 |
Indicators | Statistical Results |
---|---|
Horizontal accuracy/m (95%) | 1.27 |
Vertical accuracy/m (95%) | 4.30 |
Minimum horizontal safety index | 8.860 |
Minimum vertical safety index | 2.582 |
NPA availability | 100.00% |
NPA continuity | 100.00% |
NPA HMI events | 0 |
APV-I availability | 100.00% |
APV-I continuity | 100.00% |
APV-I HMI events | 0 |
Indicators | Statistical Results |
---|---|
Horizontal accuracy/m (95%) | 1.49 |
Vertical accuracy/m (95%) | 4.04 |
Minimum horizontal safety index | 11.506 |
Minimum vertical safety index | 3.099 |
NPA availability | 100.000% |
NPA continuity | 100.000% |
NPA HMI events | 0 |
APV-I availability | 99.993% |
APV-I continuity | 99.989% |
APV-I HMI events | 0 |
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Gao, W.; Cao, Y.; Liu, C.; Lu, J.; Shao, B.; Xiong, S.; Su, C. Construction Progress and Aviation Flight Test of BDSBAS. Remote Sens. 2022, 14, 1218. https://doi.org/10.3390/rs14051218
Gao W, Cao Y, Liu C, Lu J, Shao B, Xiong S, Su C. Construction Progress and Aviation Flight Test of BDSBAS. Remote Sensing. 2022; 14(5):1218. https://doi.org/10.3390/rs14051218
Chicago/Turabian StyleGao, Weiguang, Yueling Cao, Cheng Liu, Jun Lu, Bo Shao, Shuai Xiong, and Chengeng Su. 2022. "Construction Progress and Aviation Flight Test of BDSBAS" Remote Sensing 14, no. 5: 1218. https://doi.org/10.3390/rs14051218
APA StyleGao, W., Cao, Y., Liu, C., Lu, J., Shao, B., Xiong, S., & Su, C. (2022). Construction Progress and Aviation Flight Test of BDSBAS. Remote Sensing, 14(5), 1218. https://doi.org/10.3390/rs14051218