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戈莱编码激励组织谐波成象中改善信噪比分谐波发射相位。

Third harmonic transmit phasing for SNR improvement in tissue harmonic imaging with Golay-encoded excitation.

机构信息

Department of Electrical Engineering, National Taiwan University of Science and Technology, Taipei, Taiwan.

出版信息

Ultrasonics. 2011 Jul;51(5):554-60. doi: 10.1016/j.ultras.2010.12.008. Epub 2010 Dec 20.

Abstract

BACKGROUND

Ultrasound tissue harmonic signal generally provides superior image quality as compared to the linear signal. However, since the generation of the tissue harmonic signal is based on finite amplitude distortion of the propagating waveform, the penetration and the sensitivity in tissue harmonic imaging are markedly limited because of the low signal-to-noise ratio (SNR).

METHODS

The method of third harmonic (3f(0)) transmit phasing can improve the tissue harmonic SNR by transmitting at both the fundamental (2.25MHz) and the 3f(0) (6.75MHz) frequencies to achieve mutual enhancement between the frequency-sum and the frequency-difference components of the second harmonic signal. To further increase the SNR without excessive transmit pressure, coded excitation can be incorporated in 3f(0) transmit phasing to boost the tissue harmonic generation.

RESULTS

Our analyses indicate that the phase-encoded Golay excitation is suitable in 3f(0) transmit phasing due to its superior transmit bandwidth efficiency. The resultant frequency-sum and frequency-difference components of tissue harmonic signal can be simultaneously Golay-encoded for SNR improvement. The increase of the main-lobe signal with the Golay excitation in 3f(0) transmit phasing are consistent between the tissue harmonic measurements and the simulations. B-mode images of the speckle generating phantom also demonstrate the increases of tissue harmonic SNR for about 11dB without noticeable compression artifacts.

CONCLUSION

For tissue harmonic imaging in combination with the 3f(0) transmit phasing method, the Golay excitation can provide further SNR improvement. Meanwhile, the axial resolution can be effectively restored by pulse compression while the lateral resolution remains unchanged.

摘要

背景

与线性信号相比,超声组织谐波信号通常能提供更好的图像质量。然而,由于组织谐波信号的产生基于传播波形的有限幅度失真,因此组织谐波成像是由于信噪比(SNR)低,其穿透性和灵敏度受到明显限制。

方法

三谐波(3f(0))发射相位技术可以通过同时发射基波(2.25MHz)和 3f(0)(6.75MHz)来提高组织谐波 SNR,从而实现第二谐波信号的频率和与频率差分量之间的相互增强。为了在不增加过多发射压力的情况下进一步提高 SNR,可以在 3f(0)发射相位中加入编码激励以增强组织谐波的产生。

结果

我们的分析表明,由于其出色的发射带宽效率,相位编码的 Golay 激励适用于 3f(0)发射相位。组织谐波信号的频率和与频率差分量可以同时进行 Golay 编码以提高 SNR。3f(0)发射相位中 Golay 激励对主瓣信号的增强在组织谐波测量和模拟中是一致的。散斑产生体模的 B 模式图像也表明,在没有明显压缩伪像的情况下,组织谐波 SNR 可提高约 11dB。

结论

对于与 3f(0)发射相位方法相结合的组织谐波成像,Golay 激励可以提供进一步的 SNR 提高。同时,脉冲压缩可以有效地恢复轴向分辨率,而横向分辨率保持不变。

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