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Robust calibration method for distributed ISAR time-varying frequency errors based on the contrast maximisation principle

机译:基于对比度最大化原理的分布式ISAR时变频率误差的鲁棒校准方法

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摘要

The linear time-varying frequency errors (LTFE) caused by the mismatch of transmitter and receiver oscillators can defocus the imaging result of distributed inverse synthetic aperture radar (ISAR) seriously. The LTFE calibration method based on the entropy minimization principle is sensitive to signal-to-noise ratio (SNR), and its performance is degraded significantly under low SNR conditions. In addition, this method uses enumeration algorithm to solve the optimization problem, which has a heavy computation burden. Therefore, a robust calibration method based on the contrast maximization principle is proposed. Compared with image entropy, image contrast has better anti-noise ability because it has better sensitivity property, namely, the change of image contrast is sharper than the change of image entropy. In the proposed method, the estimation of frequency error coefficient is modelled as an unconstrained optimization problem with image contrast as cost function, and the particle swarm optimization (PSO) algorithm is used to search the global optimal solution. Then, the LTFE can be calibrated by the estimated frequency error coefficient. The proposed method has better robustness, which can work well under low SNR conditions. Besides, it has higher computational efficiency. Simulations are carried out to verify the effectiveness and robustness of the proposed method.
机译:由发射器和接收器振荡器不匹配引起的线性时变频误差(LTFE)可以确定分布式逆合成孔径雷达(ISAR)的成像结果。基于熵最小化原理的LTFE校准方法对信噪比(SNR)敏感,并且其性能在低SNR条件下显着降低。此外,该方法使用枚举算法来解决优化问题,其具有沉重的计算负担。因此,提出了一种基于对比度最大化原理的鲁棒校准方法。与图像熵相比,图像对比度具有更好的抗噪声能力,因为它具有更好的灵敏度属性,即图像对比度的变化比图像熵的变化更为尖锐。在所提出的方法中,频率误差系数的估计被建模为与成本函数的图像对比度的无约束优化问题,粒子群优化(PSO)算法用于搜索全局最优解决方案。然后,可以通过估计的频率误差系数来校准LTFE。该方法具有更好的稳健性,可以在低SNR条件下运行良好。此外,它具有更高的计算效率。进行仿真以验证所提出的方法的有效性和鲁棒性。

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