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Successive QCQP Refinement for MIMO Radar Waveform Design Under Practical Constraints

机译:实际约束下MIMO雷达波形设计的连续QCQP优化

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The authors address the problem of designing a waveform for multiple-input multiple-output (MIMO) radar under the important practical constraints of constant modulus and waveform similarity. Incorporating these constraints in an analytically tractable manner is a longstanding open challenge. This is due to the fact that the optimization problem that results from signal-to-interference-plus-noise ratio (SINR) maximization subject to these constraints is a hard non-convex problem. The authors develop a new analytical approach that involves solving a sequence of convex quadratically constrained quadratic programing (QCQP) problems, which they prove converges to a sub-optimal solution. Because an improvement in SINR results via solving each problem in the sequence, they call the method Successive QCQP Refinement (SQR). Furthermore, the proposed SQR method can be easily extended to incorporate emerging requirements of spectral coexistence, as shown briefly in this paper. The authors evaluate SQR against other candidate techniques with respect to SINR performance, beam pattern, and pulse compression properties in a variety of scenarios. Results show that SQR outperforms state-of-the-art methods that also employ constant modulus and/or similarity constraints while being computationally less burdensome.
机译:作者解决了在恒定模量和波形相似性的重要实际约束下为多输入多输出(MIMO)雷达设计波形的问题。将这些约束以分析上易处理的方式纳入其中是一个长期的公开挑战。这是由于以下事实:由受这些约束的信号干扰加噪声比(SINR)最大化导致的优化问题是一个很难解决的非凸问题。作者开发了一种新的分析方法,该方法涉及解决一系列凸二次约束二次规划(QCQP)问题,并证明它们收敛于次优解。由于通过解决序列中的每个问题而导致SINR的提高,因此他们将其称为“连续QCQP优化”(SQR)方法。此外,如本文简要所示,所提出的SQR方法可以很容易地扩展以包含新出现的频谱共存要求。作者在各种情况下针对SINR性能,波束方向图和脉冲压缩特性,对照其他候选技术评估了SQR。结果表明,SQR优于采用了恒定模量和/或相似性约束的最新方法,同时计算负担较小。

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