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Adaptive waveform optimization design for target detection in cognitive radar

机译:认知雷达目标检测的自适应波形优化设计

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摘要

The problem of adaptive waveform design for target detection in cognitive radar (CR) is investigated. This problem is analyzed in signal-dependent interference, as well as additive channel noise for extended target with unknown target impulse response (TIR). In order to estimate the TIR accurately, the Kalman filter is used in target tracking. In each Kalman filtering iteration, a flexible online waveform spectrum optimization design taking both detection and range resolution into account is modeled in Fourier domain. Unlike existing CR waveform, the proposed waveform can be simultaneously updated according to the environment information fed back by receiver and radar performance demands. Moreover, the influence of waveform spectral phase to radar performance is analyzed. Simulation results demonstrate that CR with the proposed waveform performs better than a traditional radar system with a fixed waveform and offers more flexibility and suitability. In addition, waveform spectral phase will not influence tracking, detection, and range resolution performance but will greatly influence waveform forming speed and peak-to-average power ratio. (C) 2017 Society of Photo-Optical Instrumentation Engineers (SPIE).
机译:研究了认知雷达(CR)中目标检测的自适应波形设计问题。针对具有未知目标脉冲响应(TIR)的扩展目标,分析了信号相关干扰和加性信道噪声对该问题的影响。为了准确估计TIR,在目标跟踪中使用了卡尔曼滤波器。在每次卡尔曼滤波迭代中,在傅里叶域中建立了一个灵活的在线波形频谱优化设计模型,同时考虑了检测和距离分辨率。与现有CR波形不同,该波形可以根据接收机反馈的环境信息和雷达性能需求同时更新。此外,还分析了波形频谱相位对雷达性能的影响。仿真结果表明,与固定波形的传统雷达系统相比,该波形的CR系统性能更好,具有更大的灵活性和适用性。此外,波形频谱相位不会影响跟踪、检测和距离分辨率性能,但会极大地影响波形形成速度和峰均功率比。(C) 2017年光电仪器工程师学会(SPIE)。

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