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Multiple transmit focusing using modified orthogonal Golay codes for small scale systems

机译:使用用于小规模系统的修改正交GOLAY代码的多个传输聚焦

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Recently, coded excitation with orthogonal Golay codes is used to increase the frame rate and the SNR of ultrasound imaging according to R.Y. Chiao and L.J. Thomas (2000), M. O'Donnell (1992) and Y.M. Yoo et al. (2001). An application of orthogonal Golay codes may be to use them for simultaneous transmit multi-zone (STMZ) focusing, in which orthogonal Golay codes can be simultaneously transmitted along the same scan line, each focused at different depths. This method achieves multiple transmit focusing with no accompanying decrease in the imaging frame rate. However, coded excitation system using Golay codes is in trouble to use for handheld, portable ultrasound systems due to the large number of correlators since it should have correlators at all active channels to compress the received signals without any degradation. In this paper, we present STMZ focusing method using modified orthogonal Golay codes for small scale systems, in which 2(N-1) (N is the number of active channels) correlators can be saved by performing compression after beamforming. By inverting the precedence of compression and beamforming when using coded excitation and dynamic receive focusing, the error is introduced as stated in R.T. Bjerngaard and J.A. Jensen (2002). However, since the error decreases with depth and the coded excitation is usually used to provide far field of depth, the presented method may be the possibility of reducing complexity of the receiver structure without introducing errors. To verify the presented method, we performed experiments with a commercial ultrasound scanner and acquired A-scan and B-scan images of a tissue-mimicking phantom.
机译:最近,使用正交高尔代码的编码激励用于增加根据R.Y的超声成像的帧速率和SNR。 Chiao和L.J. Thomas(2000),M. O'Donnell(1992)和Y.M. yoo等。 (2001)。正交高尔代码的应用可以是用于同时发送多区(STMZ)聚焦,其中可以沿相同的扫描线同时传输正交的大码代码,每个扫描线聚焦在不同的深度。该方法实现了多个发送聚焦,其成像帧速率下没有伴随的降低。然而,由于大量的相关器,使用Golay代码的编码激励系统误用用于手持式便携式超声系统,因为它应该在所有活动通道处具有相关器来压缩所接收的信号而不进行任何劣化。在本文中,我们向STMZ聚焦方法使用用于小刻度系统的修改正交高利码,其中2(n-1)(n是有效信道的数量)通过在波束形成后执行压缩可以保存相关器。通过在使用编码激励和动态接收聚焦时反转压缩和波束成形的优先权,如R.T中所述介绍所述误差。 Bjerngaard和J.A.詹森(2002)。然而,由于误差随着深度而减小并且通常用于提供远景的译码激励,所以所示的方法可以是在不引入误差的情况下降低接收器结构的复杂性的可能性。为了验证所提出的方法,我们通过商业超声扫描仪进行实验,并获取组织模拟幻像的扫描和B扫描图像。

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