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An Efficient Feedback Active Noise Control Algorithm Based on Reduced-Order Linear Predictive Modeling of fMRI Acoustic Noise

机译:基于fMRI噪声降阶线性预测建模的有效反馈主动噪声控制算法

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Functional magnetic resonance imaging (fMRI) acoustic noise exhibits an almost periodic nature (quasi-periodicity) due to the repetitive nature of currents in the gradient coils. Small changes occur in the waveform in consecutive periods due to the background noise and slow drifts in the electroacoustic transfer functions that map the gradient coil waveforms to the measured acoustic waveforms. The period depends on the number of slices per second, when echo planar imaging (EPI) sequencing is used. Linear predictability of fMRI acoustic noise has a direct effect on the performance of active noise control (ANC) systems targeted to cancel the acoustic noise. It is shown that by incorporating some samples from the previous period, very high linear prediction accuracy can be reached with a very low order predictor. This has direct implications on feedback ANC systems since their performance is governed by the predictability of the acoustic noise to be cancelled. The low complexity linear prediction of fMRI acoustic noise developed in this paper is used to derive an effective and low-cost feedback ANC system.
机译:由于梯度线圈中电流的重复性,功能性磁共振成像(fMRI)声噪声表现出几乎周期性的特性(准周期性)。由于背景噪声和电声传递函数中的缓慢漂移,波形在连续的周期中会发生小变化,这些函数将梯度线圈波形映射到测得的声波波形。当使用回波平面成像(EPI)排序时,该周期取决于每秒的切片数。 fMRI声噪声的线性可预测性直接影响旨在消除声噪声的有源噪声控制(ANC)系统的性能。结果表明,通过合并前期的一些样本,可以使用非常低阶的预测器达到非常高的线性预测精度。这对反馈ANC系统有直接影响,因为其性能受要消除的声学噪声的可预测性支配。本文开发的fMRI声噪声的低复杂度线性预测可用于推导有效且低成本的反馈ANC系统。

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