Analysis and Simulation of Quantum Scattering Characteristics of Target Based on Spatial Correlation
Naixuan Wei, Shitao Zhu · 2021
In the traditional radar, radar cross section (RCS) is used to represent the echo intensity that the target scattered. The modulation signals are used in the traditional radar systems to detect the targets based on principle of induced radiation, which makes the targets with geometric shape stealth design hard to detect. Quantum radar systems employ photons to detect targets. The processes of absorption and emission of photons follows the rules of quantum electrodynamics. The quantum scattering is not sensitive to the shape design of the targets, which can be used to enhance detection capability of radar system. Quantum radar cross section (QRCS) is used to analyze the performance of quantum radars. A computation method of QRCS based on spatial correlation is proposed in this paper to improve the performance of the quantum radar system. Multiple detectors are used to collect the quantum scattering signals of the target. The spatial correlation characteristics of scattered signals are extracted to represent the quantum scattering characteristics of the target. The randomness of atom-photon scattering process is efficiently used in this method, which can enhance detection capability of radar system. The method proposed in this paper is verified by numerical simulation. In addition, the multiphoton scattering of a typical three-dimensional target is studied in this paper. The results show that quantum radar with multiphoton as transmitting signal may have better detection capability. These results are of great significance to further study the quantum scattering characteristics of complex targets. The research of quantum radar system based on spatial correlation detection is a potential research direction especially for the stealth target detection.