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Noise cancellation in Doppler ultrasound signals with adaptive neuro-fuzzy inference system

机译:自适应神经模糊推理系统消除多普勒超声信号中的噪声

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摘要

Adaptive noise cancellation using adaptive neuro-fuzzy inference system (ANFIS) is proposed for denoising Doppler ultrasound signals. Doppler ultrasound technology has been widely used in the clinic to diagnose vascular diseases for its noninvasive advantage. Therefore, the improvement in the flow velocity estimation performed by Doppler ultrasound blood measurement systems is important in vascular diseases diagnosis. The Doppler ultrasound signals were modeled as the summation of the true velocity signal, a wall motion signal, a clutter signal, and a random noise component. The ophthalmic arterial (OA) Doppler signals recorded from the healthy subjects and subjects suffering from the OA stenosis were used as the test sources. The signal-to-noise ratio (SNR) improvements were studied for the OA Doppler signals. Based on the results (SNR improvements and root mean square - RMS error) of the experiments, it was concluded that the performance of the proposed method is higher than that of the existing methods in the literature for denoising the Doppler ultrasound signals.
机译:提出了使用自适应神经模糊推理系统(ANFIS)进行自适应噪声消除的多普勒超声信号降噪技术。多普勒超声技术以其非侵入性优势已广泛用于临床诊断血管疾病。因此,由多普勒超声血液测量系统执行的流速估计的改进在血管疾病诊断中是重要的。将多普勒超声信号建模为真实速度信号,壁运动信号,杂波信号和随机噪声分量之和。从健康受试者和患有OA狭窄的受试者记录的眼动脉(OA)多普勒信号用作测试源。研究了OA多普勒信号的信噪比(SNR)改善。根据实验的结果(SNR改善和均方根-RMS误差),可以得出结论:所提出的方法在去噪多普勒超声信号方面性能优于文献中的现有方法。

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