首页> 外文会议>International Symposium on Antennas, Propagation and EM Theory(ISAPE 2006); 20061026-29; Guilin(CN) >Super-resolution Direction Finding at Subarray Level for Coherent Sources Based on Weighting Network
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Super-resolution Direction Finding at Subarray Level for Coherent Sources Based on Weighting Network

机译:基于加权网络的相干源子阵列级超分辨率测向

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2-D subarray level super-resolution direction finding methods have important applications in phased array radars. This paper studies ML (Maximum Likelihood) method at subarray level suitable for coherent sources and gives the corresponding signal model. Applying simplified array manifolds can make calibration cost of phased array reduced largely. We post-process the digital subarray outputs by bringing in weighting network which increases the flexibility of array processing greatly. The simplified array manifold based on Gaussian patterns we constructed can overcome the limitations of DSAM (Direct Simplified Array Manifold) method that available direction estimation area can't be changed and the uninterested sidelobe sources can't be suppressed completely, but the cost is that the precision of direction finding drops. Simulation results demonstrate the validity of the proposed method.
机译:二维子阵列级超分辨率测向方法在相控阵雷达中具有重要的应用。本文研究了适合相干源的子阵列级的ML(最大似然)方法,并给出了相应的信号模型。应用简化的阵列歧管可以大大降低相控阵的校准成本。我们通过引入加权网络对数字子阵列输出进行后处理,这大大增加了阵列处理的灵活性。我们构建的基于高斯模式的简化阵列流形可以克服DSAM(直接简化阵列歧管)方法的局限性,即无法更改可用方向估计区域并且无法完全抑制不感兴趣的旁瓣源,但是代价是测向的精度下降。仿真结果证明了该方法的有效性。

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