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使用多音非线性编码的谐波成像。

Harmonic imaging using multitone nonlinear coding.

作者信息

Nowicki Andrzej, Wójcik Janusz, Secomski Wojciech

机构信息

Institute of Fundamental Technological Research, Polish Academy of Sciences, Warsaw, Poland.

出版信息

Ultrasound Med Biol. 2007 Jul;33(7):1112-22. doi: 10.1016/j.ultrasmedbio.2007.02.001. Epub 2007 Apr 23.

Abstract

We present a new method that uses nonlinear properties of tissue to improve contrast-to-noise ratio. In our novel method, the acoustic source is activated with two tone-bursts (2.2 and 4.4 MHz), with specially designed polarization of the individual tone-burst. This new approach is called multitone nonlinear coding (MNC) because the choice of polarization of both tones (and their amplitudes), allowing optimization of the receiving properties, depends on the nonlinear properties of tissue. The calculations were done for two tone-bursts propagating in the tissue-like glossy medium with absorption of 7 Np/m x MHz. The method was experimentally verified by scanning the incident pulses propagating in soft tissue and by scanning the thread phantom immersed in water. The concept of the virtual fields was introduced to explain abilities and properties of pulse inversion and MNC and to compare the two methods. Comparison of the spatial field distribution obtained using MNC with the conventional harmonic imaging approach, in which the second harmonic is used to reconstruct the image, is presented. It was shown that, for the same peak pressure amplitude, the resulting mechanical index was about 40% lower for MNC, lateral resolution was 10% to 30% better and, what seems to be the most encouraging, the signal gain was up to eight times higher than pulse inversion.

摘要

我们提出了一种利用组织的非线性特性来提高对比度噪声比的新方法。在我们的新方法中,声源由两个短声脉冲(2.2和4.4兆赫兹)激活,每个短声脉冲具有特殊设计的极化。这种新方法被称为多音非线性编码(MNC),因为两个音调(及其幅度)的极化选择(允许优化接收特性)取决于组织的非线性特性。针对在具有7奈培/米×兆赫兹吸收的类组织光泽介质中传播的两个短声脉冲进行了计算。通过扫描在软组织中传播的入射脉冲以及扫描浸入水中的线体模,对该方法进行了实验验证。引入了虚拟场的概念来解释脉冲反转和MNC的能力及特性,并比较这两种方法。展示了使用MNC获得的空间场分布与传统谐波成像方法(其中使用二次谐波重建图像)的比较。结果表明,对于相同的峰值压力幅度,MNC产生的机械指数低约40%,横向分辨率提高10%至30%,而且最令人鼓舞的是,信号增益比脉冲反转高八倍。

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