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反射超声计算机断层成像中的图像获取加速。

Expediting Image Acquisition in Reflection Ultrasound Computed Tomography.

出版信息

IEEE Trans Ultrason Ferroelectr Freq Control. 2022 Oct;69(10):2837-2848. doi: 10.1109/TUFFC.2022.3172713. Epub 2022 Sep 27.

Abstract

Reflection ultrasound computed tomography (RUCT) attains optimal image quality from objects that can be fully accessed from multiple directions, such as the human breast or small animals. Owing to the full-view tomography approach based on the compounding of images taken from multiple angles, RUCT effectively mitigates several deficiencies afflicting conventional pulse-echo ultrasound (US) systems, such as speckle patterns and interuser variability. On the other hand, the small interelement pitch required to fulfill the spatial sampling criterion in the circular transducer configuration used in RUCT typically implies the use of an excessive number of independent array elements. This increases the system's complexity and costs, and limits the achievable imaging speed. Here, we explore acquisition schemes that enable RUCT imaging with the reduced number of transmit/receive elements. We investigated the influence of the element size in transmission and reception in a ring array geometry. The performance of a sparse acquisition approach based on partial acquisition from a subset of the elements has been further assessed. A larger element size is shown to preserve contrast and resolution at the center of the field of view (FOV), while a reduced number of elements is shown to cause uniform loss of contrast and resolution across the entire FOV. The tradeoffs of achievable FOV, contrast-to-noise ratio, and temporal and spatial resolutions are assessed in phantoms and in vivo mouse experiments. The experimental analysis is expected to aid the development of optimized hardware and image acquisition strategies for RUCT and, thus, result in more affordable imaging systems facilitating wider adoption.

摘要

反射超声计算机断层成像(RUCT)可从可从多个方向完全访问的物体中获得最佳的图像质量,例如人体乳房或小动物。由于基于从多个角度拍摄的图像复合的全视场断层成像方法, RUCT 有效地减轻了传统脉冲回波超声(US)系统的几个缺陷,例如斑点图案和用户间可变性。另一方面, RUCT 中使用的圆形换能器配置中为满足空间采样标准所需的小单元间距通常意味着需要使用过多的独立阵元。这增加了系统的复杂性和成本,并限制了可实现的成像速度。在这里,我们探索了用较少的发射/接收元件实现 RUCT 成像的采集方案。我们研究了在环形阵列几何形状中传输和接收时元件尺寸的影响。进一步评估了基于从元素子集进行部分采集的稀疏采集方法的性能。较大的元件尺寸被证明可以在视场(FOV)的中心保持对比度和分辨率,而较少的元件数量则会导致整个 FOV 的对比度和分辨率均匀降低。在体模和体内小鼠实验中评估了可实现的 FOV、对比度噪声比以及时空分辨率的权衡。预计实验分析将有助于为 RUCT 开发优化的硬件和图像采集策略,从而实现更经济实惠的成像系统,从而更广泛地采用。

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