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A high-frequency ultrasound imaging system combining limited-angle spatial compounding and model-based synthetic aperture focusing

机译:结合有限角度空间合成和基于模型的合成孔径聚焦的高频超声成像系统

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摘要

High-frequency ultrasound (HFUS) imaging systems are routinely used for medical diagnostics (skin, eyes) and for medical research (small animal imaging). Although systems with array transducers are already commercially available, imaging systems with single-element transducers are still of interest and available as well, because this type of transducer is less complex, less expensive, and technically mature. Nevertheless, drawbacks exist, for example, the need for mechanical scanning units and the limited depth of field. In this paper, we present a high-frequency (20 MHz) ultrasound imaging system equipped with a spherically focused transducer. Limited-angle spatial compounding is utilized to improve the image contrast, to suppress speckle and noise, and to reduce imaging artifacts. To overcome the limitation in depth of field, the system uses a novel synthetic aperture focusing technique based on the correlation of the recorded echo signals with the simulated point spread function of the imaging system. This method results in lower side lobe levels and greater noise reduction compared with delay-and-sum focusing, which is demonstrated by wire phantom measurements. When used in combination with limited-angle spatial compounding, as presented in this paper, the resulting image quality is superior to conventional single-element HFUS imaging systems and to array systems. Examples of measurements on tissue phantoms and small animals (ex vivo) are presented and discussed in detail.
机译:高频超声(HFUS)成像系统通常用于医学诊断(皮肤,眼睛)和医学研究(小动物成像)。尽管具有阵列换能器的系统已经可以在市场上买到,但是具有单元件换能器的成像系统仍然是令人关注和可用的,因为这种类型的换能器不那么复杂,不那么昂贵并且在技术上已经成熟。然而,仍然存在缺陷,例如,需要机械扫描单元和有限的景深。在本文中,我们提出了一种配备球形聚焦换能器的高频(20 MHz)超声成像系统。有限角度的空间复合可用于改善图像对比度,抑制斑点和噪声并减少成像伪像。为了克服景深的限制,该系统基于记录的回波信号与成像系统的模拟点扩展函数之间的相关性,使用了一种新颖的合成孔径聚焦技术。与延迟和求和聚焦相比,此方法可导致较低的旁瓣电平和更大的降噪效果,这通过线体模测量得以证明。如本文所述,当与有限角度空间合成技术结合使用时,所得到的图像质量优于常规的单元素HFUS成像系统和阵列系统。提出并详细讨论了组织模型和小型动物(离体)的测量示例。

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