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Cognitive FDA-MIMO With Channel Uncertainty Information for Target Tracking

机译:认知FDA-MIMO具有目标跟踪的信道不确定性信息

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In this paper, we propose a cognitive frequency diverse array multiple input multiple output (FDA-MIMO) design by utilizing channel uncertainty information. Time-variant non-uniform frequency offsets are utilized to decouple frequency diverse array (FDA) range-angle dependent beampattern and a design strategy is proposed to maximize the transmit energy toward the desired range-angle region by steering the beam to match the channel uncertainty for enhanced target detect and tracking performance. To unambiguously estimate target parameters, we divide the FDA elements into multiple fully overlapped subarrays using orthogonal waveforms. Furthermore, we adaptively update the transmit beamspace matrix with two optimization criterions, namely, signal-to-noise ratio maximization and Cramer-Rao bound minimization. All proposed approaches are verified by numerical results.
机译:在本文中,我们通过利用信道不确定性信息提出认知频率各种阵列多输入多输出(FDA-MIMO)设计。时变非均匀频率偏移用于耦合频率各种阵列(FDA)范围角度依赖的波束型器,并且提出了一种设计策略来通过转向光束来使光束匹配频道不确定性来最大化发射能量朝向所需的范围角区域。用于增强目标检测和跟踪性能。为了毫不含糊地估计目标参数,我们使用正交波形将FDA元素分成多个完全重叠的子阵列。此外,我们自适应地更新具有两个优化标准的发射波束空间矩阵,即信噪比最大化和克拉姆 - RAO结合的最小化。所有提出的方法都是通过数值结果验证的。

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