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首页> 外文期刊>The Journal of Engineering >Adaptive target detection against spatially correlated compound-Gaussian clutter with multivariate inverse Gaussian texture
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Adaptive target detection against spatially correlated compound-Gaussian clutter with multivariate inverse Gaussian texture

机译:具有多变量逆高斯纹理的空间相关复合复合高斯杂波的自适应目标检测

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摘要

To improve the detection performance in the presence of target-steering vector mismatches, a novel robust adaptive matched filter (AMF) detector for compound Gaussian clutter is proposed. First, the multivariate inverse Gaussian distribution is first introduced to compound Gaussian clutter model. Second, the texture value is estimated with maximum a posteriori (MAP) estimator in spatial domain, which has a closed form and is not affected by the target's steering vector mismatch. A robust AMF detector is derived based on this estimation. Simulation results demonstrate that the proposed detector can achieve better performance in the presence of target-steering vector mismatches.
机译:为了提高目标转向载体不匹配的存在下的检测性能,提出了一种用于复合高斯杂波的新型鲁棒自适应匹配过滤器(AMF)检测器。首先,首先引入复合高斯杂波模型的多变量逆高斯分布。其次,在空间域中的最大后验(MAP)估计器估计纹理值,其具有封闭形式并且不受目标转向载体不匹配的影响。基于此估计导出了一种强大的AMF检测器。仿真结果表明,所提出的探测器可以在存在目标转向载体不匹配的情况下实现更好的性能。

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