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A hybrid algorithm based on neuron-fuzz and wavelet transforms for wideband sonar detection in a reverberation-limited environment

机译:混响受限环境中基于神经元-小波变换的宽带声纳检测混合算法

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A fast hybrid de-noising algorithm is developed to enhance the performance of wideband acoustic signal detection in a reverberation-limited environment. Making use of the hybrid algorithm, the active sonar echolocation detector is able to estimate motion parameters (radial range and velocity) of a moving target in an effective and efficient manner with very low level of signal-to-reverberation ratio (SRR). The hybrid algorithm is composed of two parts: adaptive noise reduction (ANR) part based on an adaptive intelligent fuzzy system in the continuous wavelet transform (CWT) domain, and target motion estimation (TME) part based on recursive fast wavelets transform. In the ANR operation which serves as prefiltering of the noisy signal, the SRR of a noisy wideband signal is drastically improved by adopting the technique of adaptive neuro-fuzzy inference system (ANFIS). The pre-filtered signal is transformed to the CWT domain and then processed using the recursive TME operation, a combination of discrete wavelet denoising (WDeN) and CWT techniques. Simulation results demonstrate that the proposed hybrid algorithm is not only effective in accurately predicting the motion parameters, but also is more efficient in terms of computational time consumption than the fuzzy detector previously developed on the basis of the ANR operation.
机译:开发了一种快速混合降噪算法,以增强在混响受限环境中宽带声信号检测的性能。利用混合算法,有源声纳回声定位检测器能够以非常低的信噪比(SRR)水平,以有效和高效的方式估算运动目标的运动参数(径向范围和速度)。混合算法由两部分组成:基于连续小波变换(CWT)域中的自适应智能模糊系统的自适应降噪(ANR)部分和基于递归快速小波变换的目标运动估计(TME)部分。在用作噪声信号预滤波的ANR操作中,通过采用自适应神经模糊推理系统(ANFIS)的技术,可以大大提高噪声宽带信号的SRR。预滤波的信号被转换到CWT域,然后使用递归TME操作,离散小波去噪(WDeN)和CWT技术的组合进行处理。仿真结果表明,所提出的混合算法不仅可以有效地准确预测运动参数,而且在计算时间上也比以前基于ANR操作开发的模糊检测器更有效。

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