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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Spread-Spectrum Beamforming and Clutter Filtering for Plane-Wave Color Doppler Imaging
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Spread-Spectrum Beamforming and Clutter Filtering for Plane-Wave Color Doppler Imaging

机译:平面波彩色多普勒成像的扩谱波束形成和杂波滤波

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Plane-wave imaging is desirable for its ability to achieve high frame rates, allowing the capture of fast dynamic events and continuous Doppler data. In most implementations of plane-wave imaging, multiple low-resolution images from different plane-wave tilt angles are compounded to form a single high-resolution image (HRI), thereby reducing the frame rate. Compounding improves the lateral beam profile in the HRI, but it also acts as a low-pass filter in slow time that causes attenuation and aliasing of signals with high Doppler shifts. This paper introduces a spread-spectrum color Doppler imaging method that produces HRIs without the use of compounding, thereby eliminating the tradeoff between beam quality, maximum unaliased Doppler frequency, and frame rate. The method uses a long, random sequence of transmit angles rather than a linear sweep of plane-wave directions. The random angle sequence randomizes the phase of off-focus (clutter) signals, thereby spreading the clutter power in the Doppler spectrum, while keeping the spectrum of the in-focus signal intact. The ensemble of randomly tilted low-resolution frames also acts as the Doppler ensemble, so it can be much longer than a conventional linear sweep, thereby improving beam formation while also making the slow-time Doppler sampling frequency equal to the pulse repetition frequency. Experiments performed using a carotid artery phantom with constant flow demonstrate that the spread-spectrum method more accurately measures the parabolic flow profile of the vessel and outperforms conventional plane-wave Doppler in both contrast resolution and estimation of high flow velocities. The spread-spectrum method is expected to be valuable for Doppler applications that require the measurement of high velocities at high frame rates.
机译:平面波成像是理想的,因为它具有实现高帧速率的能力,可以捕获快速动态事件和连续的多普勒数据。在平面波成像的大多数实现中,来自不同平面波倾斜角的多个低分辨率图像会被合成以形成单个高分辨率图像(HRI),从而降低帧速率。复合可以改善HRI中的横向波束轮廓,但它在缓慢的时间内还可以充当低通滤波器,从而导致衰减和高多普勒频移信号的混叠。本文介绍了一种无需使用混合即可产生HRI的扩频彩色多普勒成像方法,从而消除了光束质量,最大无混叠多普勒频率和帧频之间的折衷。该方法使用长而随机的发射角序列,而不是平面波方向的线性扫描。随机角度序列使离焦(杂波)信号的相位随机化,从而在多普勒频谱中扩展杂波功率,同时保持聚焦信号的频谱完整。随机倾斜的低分辨率帧的合奏也可以用作多普勒合奏,因此它可以比传统的线性扫描更长,从而改善了波束形成,同时还使慢速多普勒采样频率等于脉冲重复频率。使用恒定流量的颈动脉体模进行的实验表明,扩频方法可以更准确地测量血管的抛物线流动特性,并且在对比度分辨率和高流速估计方面均优于传统的平面波多普勒仪。对于需要在高帧频下测量高速的多普勒应用,预计扩频方法将很有价值。

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