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Parallel feedback Active Noise Control of MRI acoustic noise with signal decomposition using hybrid RLS-NLMS adaptive algorithms

机译:混合RLS-NLMS自适应算法对MRI声信号进行信号分解的并行反馈有源噪声控制

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This paper presents a cost-effective adaptive feedback Active Noise Control (FANC) method for controlling functional Magnetic Resonance Imaging (fMRI) acoustic noise by decomposing it into dominant periodic components and residual random components. Periodicity of fMRI acoustic noise is exploited by using linear prediction (LP) filtering to achieve signal decomposition. A hybrid combination of adaptive filters-Recursive Least Squares (RLS) and Normalized Least Mean Squares (NLMS) are then used to effectively control each component separately. Performance of the proposed FANC system is analyzed and Noise attenuation levels (NAL) up to 32.27dB obtained by simulation are presented which confirm the effectiveness of the proposed FANC method.
机译:本文提出了一种经济有效的自适应反馈主动噪声控制(FANC)方法,用于将功能性磁共振成像(fMRI)声噪声分解为主要的周期性成分和剩余的随机成分,以进行控制。通过使用线性预测(LP)滤波来利用fMRI声噪声的周期性,以实现信号分解。然后使用自适应滤波器-递归最小二乘(RLS)和归一化最小均方(NLMS)的混合组合来分别有效地控制每个组件。分析了所提出的FANC系统的性能,并通过仿真获得了高达32.27dB的噪声衰减水平(NAL),证实了所提出的FANC方法的有效性。

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