Experimental Comparison of Radon Domain Approaches for Resident Space Object's Parameter Estimation
Selenia Ghio1, Marco Martorella1,2, Daniele Staglianò3
1National Laboratory of Radar and Surveillance Systems (RaSS), Consorzio Nazionale Interuniversitario per le Telecomunicazioni (CNIT), 56124 Pisa, Italy.
Space debris poses a threat to satellites. This study compares Inverse Radon Transform (IRT) methods for estimating the rotation period of space objects using simulated and experimental data.
Area of Science:
- Space Surveillance and Tracking (SST)
- Orbital Mechanics
- Signal Processing
Background:
- The increasing population of space objects poses a significant risk to operational space assets.
- Accurate characterization of resident space objects, particularly their size and rotational period, is crucial for space situational awareness.
- The Inverse Radon Transform (IRT) has emerged as a promising technique for space object characterization.
Purpose of the Study:
- To compare different Inverse Radon Transform (IRT) based approaches for estimating the rotational period of space objects.
- To evaluate the performance of these IRT methods using both simulated and experimental data.
- To identify the most effective IRT techniques for space object rotation period estimation.
Main Methods:
- Application of various Inverse Radon Transform (IRT) algorithms to analyze space object data.
- Utilizing simulated datasets to control variables and assess fundamental performance.
- Employing experimental data from ground-based or space-based observations for real-world validation.
Main Results:
- Quantitative comparison of the accuracy and robustness of different IRT methods.
- Identification of specific IRT approaches that yield more precise rotational period estimations.
- Assessment of the impact of data quality and noise on estimation performance.
Conclusions:
- The Inverse Radon Transform (IRT) is a viable technique for estimating space object rotational periods.
- Specific IRT methodologies demonstrate superior performance in rotational period estimation.
- Further research and validation are needed to optimize IRT application in operational space surveillance.
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