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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Simultaneous Axial Multifocal Imaging Using a Single Acoustical Transmission: A Practical Implementation
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Simultaneous Axial Multifocal Imaging Using a Single Acoustical Transmission: A Practical Implementation

机译:使用单个声音传输的同时轴向多焦点成像:一种实际的实现

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摘要

Standard ultrasound imaging techniques rely on sweeping a focused beam across a field of view; however, outside the transmission focal depth, image resolution and contrast are degraded. High-quality deep tissue in vivo imaging requires focusing the emitted field at multiple depths, yielding high-resolution and high-contrast ultrasound images but at the expense of a loss in frame rate. Recent developments in ultrasound technologies have led to user-programmable systems, which enable real-time dynamic control over the phase and apodization of each individual element in the imaging array. In this paper, we present a practical implementation of a method to achieve simultaneous axial multifoci using a single acoustical transmission. Our practical approach relies on the superposition of axial multifoci waveforms in a single transmission. The delay in transmission between different elements is set such that pulses constructively interfere at multiple focal depths. The proposed method achieves lateral resolution similar to successive focusing, but with an enhanced frame rate. The proposed method uses standard dynamic receive beamforming, identical to two-way focusing, and does not require additional postprocessing. Thus, the method can be implemented in real time on programmable ultrasound systems that allow different excitation signals for each element. The proposed method is described analytically and validated by laboratory experiments in phantoms and ex vivo biological samples.
机译:标准的超声成像技术依赖于在整个视场中扫掠聚焦光束。然而,在透射焦点深度之外,图像分辨率和对比度下降。高质量的深层组织活体内成像需要将发射场聚焦在多个深度,以产生高分辨率和高对比度的超声图像,但要以牺牲帧频为代价。超声技术的最新发展已导致用户可编程的系统,该系统可对成像阵列中每个单个元素的相位和切趾进行实时动态控制。在本文中,我们提出了一种使用单个声波传输同时实现轴向多焦点的方法的实际实现。我们的实际方法依赖于单个传输中轴向多焦点波形的叠加。设置不同元件之间的传输延迟,以使脉冲在多个焦深处相长干涉。所提出的方法实现了类似于连续聚焦的横向分辨率,但是帧速率有所提高。所提出的方法使用标准的动态接收波束成形,与双向聚焦相同,并且不需要额外的后处理。因此,该方法可以在可编程超声系统上实时实现,该可编程超声系统允许每个元件具有不同的激励信号。分析方法描述了所提出的方法,并通过实验室实验对模型和离体生物样品进行了验证。

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