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Noise-Induced Resonance and Particle Swarm Optimization-Based Weak Signal Detection

机译:基于噪声诱发共振和粒子群优化的微弱信号检测

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摘要

The noise always plays a key role in different science and engineering applications. Here, we study the effect of the addition of external noise (i.e., stochastic resonance (SR) noise) in weak signal detection application. We also explore the conditions of improvability and non-improvability for a particular SR noise. We analyze both symmetric and asymmetric SR noises in our example. With certain equality and inequality constraints, we discuss the penalty function method which is used to design a single objective function. Furthermore, the particle swarm optimization technique has been used to maximize the probability of detection (PD) at a constant value of the probability of false alarm (PFA). With a numerical example, we have exhibited the performance of the proposed detector. We compare our proposed detection technique with the state-of-the-art techniques, and it is observed that the optimum PD is comparable at a constant value of PFA. The proposed detection technique is also used for watermark detection application to show the practicality of the proposed technique.
机译:在不同的科学和工程应用中,噪声始终起着关键作用。在这里,我们研究了在弱信号检测应用中添加外部噪声(即随机共振(SR)噪声)的影响。我们还探讨了特定SR噪声的可改进性和不可改进性的条件。在我们的示例中,我们分析了对称和非对称SR噪声。在具有一定等式和不等式约束的情况下,我们讨论了用于设计单个目标函数的惩罚函数方法。此外,粒子群优化技术已被用于以错误警报概率(PFA)的恒定值最大化检测概率(PD)。通过一个数值示例,我们展示了所提出的检测器的性能。我们将我们提出的检测技术与最新技术进行了比较,并观察到最佳PD在恒定PFA值下是可比的。所提出的检测技术还用于水印检测应用,以证明所提出技术的实用性。

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