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Weak signal detection and asymptotic relative efficiency in Gaussian-Exponential mixture noise

机译:高斯-指数混合噪声中的弱信号检测和渐近相对效率

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Traditional signal detectors for underwater targets are based on Gaussian model. Such model, according to recent research, does not agree with actual ocean ambient noise, and the optimal detector based on this model risks unexpectedly poor performance. We present a Gaussian- Exponential mixture model to describe the received noise by analysis of underwater noise samples for deriving an optimal signal detector. We first rebuild the ocean ambient noise model as a Gaussian-Exponential mixture model. Next, we derive an optimal nonlinear detector structure for known signals in such noise. Finally, in order to evaluate the performance of the optimal detector, it is compared to the conventional energy detector. The comparison is based on the concept of asymptotic relative efficiency (ARE) for comparing hypothesis testing procedures. The simulation results show that the performance of the proposed detector is better than that of the conventional energy detector by 4∼8dB.
机译:用于水下目标的传统信号检测器基于高斯模型。根据最近的研究,这种模型与实际的海洋环境噪声不一致,并且基于该模型的最佳检测器可能会出乎意料地表现不佳。我们提出了一种高斯-指数混合模型,通过分析水下噪声样本来描述接收到的噪声,以得出最佳信号检测器。我们首先将海洋环境噪声模型重建为高斯指数混合模型。接下来,我们针对此类噪声中的已知信号推导最佳非线性检测器结构。最后,为了评估最佳检测器的性能,将其与常规能量检测器进行比较。比较是基于渐进相对效率(ARE)的概念,用于比较假设检验程序。仿真结果表明,所提出的检测器的性能比传统的能量检测器好4〜8dB。

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