Institute for DigitalCommunications, University of Edinburgh, Edinburgh, UK.
IEEE Trans Ultrason Ferroelectr Freq Control. 2010 May;57(5):1039-50. doi: 10.1109/TUFFC.2010.1516.
Ultrasonic imaging using complementary coded pulses offers the SNR improvements of signal coding without the filter side-lobes introduced by single-transmit codes. Tissue motion between coded pulse emissions, however, can introduce high side-lobes caused by misalignment of complementary filter outputs. This paper presents a method for filtering and motion compensation of complementary coded signals appropriate for use in medical imaging. The method is robust to the effects of non-ideal transducers on the imaging signals, includes mirrored compensation stages to reduce the impact of motion estimation error, and has been shown to reduce side-lobes to levels that compare favorably to systems using FM-coded signals of similar length and bandwidth while providing increased coding gain and range resolution. In addition, motion compensation allows the received data to be used without the frame-rate penalty usually incurred by complementary-coded imaging. The method has been verified using simulated point and speckle targets with both homogeneous and inhomogeneous motion profiles. Selected results have been verified experimentally.
使用互补编码脉冲的超声成像是在不引入单发射码滤波器旁瓣的情况下提高信号编码的 SNR。然而,编码脉冲发射之间的组织运动可能会由于互补滤波器输出的失准而引入高旁瓣。本文提出了一种适用于医学成像的互补编码信号的滤波和运动补偿方法。该方法对成像信号中不理想的换能器具有鲁棒性,包括镜像补偿级以减少运动估计误差的影响,并且已被证明可以将旁瓣降低到与使用类似长度和带宽的 FM 编码信号的系统相媲美的水平,同时提供更高的编码增益和距离分辨率。此外,运动补偿允许在不产生通常由互补编码成像引起的帧率损失的情况下使用接收数据。该方法已使用具有均匀和非均匀运动轮廓的模拟点和散斑目标进行了验证。已选择部分结果进行了实验验证。