RSONAR: Data-Driven Evaluation of Dual-Use Star Tracker for Stratospheric Space Situational Awareness (SSA)
Abstract
1. Introduction
1.1. Overview of Ground and Space-Based SSA Architecture
1.2. Dual-Use of SSA Sensor
1.3. Overview of Stratospheric Ballooning for Scientific Observations
1.4. Resident Space Object Near-Space Astrometric Research (RSONAR) Overview
2. RSONAR Dataset
3. Methodology
3.1. Attitude Determination
3.2. Full Width at Half Maximum (FWHM)
3.3. Astrometric Residuals
3.4. Photometric Residuals
3.4.1. RSO Aperture Photometry
3.4.2. Application of Stellar Calibration
3.4.3. Physics-Based Throughput Model
3.5. RSO Angular Rate and Phase Angles
3.6. TLE-Based Correlation of RSOs
3.7. RSO Detection
4. Results
4.1. Attitude Determination
4.2. Full Width at Half Maximum (FWHM)
4.3. Astrometric Residuals
4.4. Photometric Residuals
4.5. RSO Characterization
4.5.1. Cross-Comparison of Photometric Estimates
4.5.2. Apparent Angular Velocity of RSOs
4.5.3. Phase-Angle Distribution and Illumination Geometry
4.6. TLE-Based Correlation of RSOs
4.7. RSO Detection
5. Discussion
5.1. Attitude Determination
5.2. FWHM
5.3. Astrometric Residuals
5.4. Photometric Residuals
5.5. RSO Characterization
5.6. TLE-Based Correlation of RSOs
5.7. RSO Detection
5.8. Limitation and Future Work
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| ASAT | Anti-Satellite Test |
| CCC | Concordance Correlation Coefficient |
| 95% Confidence Limit | |
| CSA | Canadian Space Agency |
| Dec | Declination |
| ECI | Earth-Centered Inertial |
| F/# or f/2 | Focal Ratio |
| Aperture correction factor | |
| FOV | Field of View |
| FWHM | Full Width at Half Maximum |
| GPS | Global Positioning System |
| IQR | Interquartile Range |
| IOD | Initial Orbit Determination |
| LEO | Low Earth Orbit |
| MEO | Medium Earth Orbit |
| GEO | Geostationary Earth Orbit |
| sCMOS | Scientific CMOS (Complementary Metal–Oxide–Semiconductor) |
| FPGA | Field-Programmable Gate Array |
| WCS | World Coordinate System |
| ICRS | International Celestial Reference System |
| TRL | Technology Readiness Level |
| NMEA | National Marine Electronics Association |
| MAD | Median Absolute Deviation |
| LoA | Limits of Agreement |
| MD | Mahalanobis Distance |
| PFT | Proximity Filtering and Tracking algorithm |
| PSF | Point-Spread Function |
| QE | Quantum Efficiency |
| RA | Right Ascension |
| RMS | Root Mean Square |
| RSO | Resident Space Object |
| RSONAR | Resident Space Object Near-space Astrometric Reconnaissance payload |
| SNR | Signal-to-Noise Ratio |
| SPP | Stabilized Pointing Period |
| SSA | Space Situational Awareness |
| SSM | Star Stare Mode |
| ST | Star Tracker |
| TLE | Two-Line Element set |
| CNES | Centre National d’Études Spatiales |
| TRM | Track Rate Mode |
| UTC | Coordinated Universal Time |
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| Parameter | Value |
|---|---|
| Aperture diameter ( | 12.5 mm |
| Focal length | 25 mm |
| Focal Ratio | f/2 |
| Field of View | 29.7° × 29.7° |
| Lens transmission () | 0.94 |
| Window transmission () | 0.98 |
| Pixel size | 6.5 m × 6.5 m |
| Pixel scale | 104 arcsec/pixel |
| Chromaticity | Monochrome (unfiltered) |
| Bit depth | 16 bits |
| Exposure time | 100 ms |
| Effective quantum efficiency ( @ 550 nm) | 78% |
| Dark current ( @ −1.5°C) | 1.12 e−/s/pixel |
| Read noise () | 2.1 e− rms/pixel/read |
| Interval (UTC) | Mean FWHM (arcsec) | CL95 (arcsec) | |
|---|---|---|---|
| 02:56–03:26 | 399.2 | [396.7, 401.6] | 1.01 |
| 03:36–03:56 | 385.8 | [383.1, 388.5] | 1.10 |
| 03:56–04:26 | 381.4 | [378.7, 384.2] | 1.03 |
| 04:26–04:56 | 380.5 | [377.9, 383.3] | 1.08 |
| 04:56–05:26 | 377.0 | [374.1, 380.1] | 1.06 |
| 05:26–05:33 | 404.7 | [401.5, 407.8] | 1.07 |
| Overall Mean | 388.1 | — | 1.058 |
| NORAD | Name | Mean | (arcsec s−1) | (deg) |
|---|---|---|---|---|
| 32153 | FENGYUN 1C DEB | 0.003 | 1559.9 | 36.20 |
| 06020 | SL-8 R/B | 0.025 | 3686.8 | 34.11 |
| 21032 | COSMOS 2118 | 0.014 | 8440.1 | 34.34 |
| 42440 | NIMBUS 2 DEB | 0.025 | 1396.6 | 32.86 |
| 39818 | COSMOS 1823 DEB | 0.035 | 2300.6 | 38.19 |
| 01549 | SL-8 DEB | 0.035 | 2499.6 | 34.83 |
| 05507 | THORAD AGENA D DEB | 0.003 | 1114.8 | 22.19 |
| 44780 | NINGXIA-12 | 0.013 | 1543.1 | 24.53 |
| 38257 | YAOGAN 14 | 0.004 | 728.6 | 12.74 |
| 08296 | THORAD DELTA 1 DEB | 0.033 | 3014.6 | 41.54 |
| 34610 | COSMOS 2251 DEB | 0.043 | 1900.9 | 33.34 |
| 19786 | COSMOS 1995 | 0.009 | 2063.8 | 28.74 |
| 21032 | COSMOS 2118 | 0.009 | 1279.0 | 26.22 |
| 21269 | DELTA 1 DEB | 0.006 | 1188.0 | 26.75 |
| 04968 | THORAD AGENA D DEB | 0.015 | 1027.9 | 25.19 |
| 04823 | COSMOS 374 DEB | 0.011 | 921.5 | 24.63 |
| 30200 | FENGYUN 1C DEB | 0.016 | 1019.1 | 28.21 |
| 23859 | MSX DEB | 0.023 | 1894.4 | 35.23 |
| 31133 | AEROCUBE 2 | 0.025 | 2246.4 | 41.67 |
| 22601 | SL-16 DEB | 0.016 | 1723.1 | 27.70 |
| Observation Period | Number of Streaks | Mean Streak Length (arcsec) | Mean SNR | PFT Detections |
|---|---|---|---|---|
| 2:56–3:26 a.m. | 65 | 2036.47 | 18.51 | 527 |
| 3:26–3:56 a.m. | 6 | 2981.90 | 18.74 | 440 |
| 3:56–4:26 a.m. | 76 | 3413.58 | 18.40 | 3500 |
| 4:26–4:56 a.m. | 110 | 4215.95 | 18.76 | 7849 |
| 4:56–5:26 a.m. | 86 | 4679.19 | 17.44 | 7260 |
| 5:26–5:33 a.m. | 44 | 4265.96 | 17.57 | 2460 |
| Total | 387 | 3781.81 | 18.22 | 22,036 |
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Suthakar, V.; Porto, I.; Myhre, M.; Sanvido, A.A.; Clark, R.; Lee, R.S.K. RSONAR: Data-Driven Evaluation of Dual-Use Star Tracker for Stratospheric Space Situational Awareness (SSA). Sensors 2026, 26, 179. https://doi.org/10.3390/s26010179
Suthakar V, Porto I, Myhre M, Sanvido AA, Clark R, Lee RSK. RSONAR: Data-Driven Evaluation of Dual-Use Star Tracker for Stratospheric Space Situational Awareness (SSA). Sensors. 2026; 26(1):179. https://doi.org/10.3390/s26010179
Chicago/Turabian StyleSuthakar, Vithurshan, Ian Porto, Marissa Myhre, Aiden Alexander Sanvido, Ryan Clark, and Regina S. K. Lee. 2026. "RSONAR: Data-Driven Evaluation of Dual-Use Star Tracker for Stratospheric Space Situational Awareness (SSA)" Sensors 26, no. 1: 179. https://doi.org/10.3390/s26010179
APA StyleSuthakar, V., Porto, I., Myhre, M., Sanvido, A. A., Clark, R., & Lee, R. S. K. (2026). RSONAR: Data-Driven Evaluation of Dual-Use Star Tracker for Stratospheric Space Situational Awareness (SSA). Sensors, 26(1), 179. https://doi.org/10.3390/s26010179

