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Photoacoustic reflection artifact reduction using photoacoustic-guided focused ultrasound: comparison between plane-wave and element-by-element synthetic backpropagation approach

机译:使用光声引导聚焦超声减少光声反射伪像:平面波与逐元素合成反向传播方法之间的比较

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摘要

Reflection artifacts caused by acoustic inhomogeneities constitute a major problem in epi-mode biomedical photoacoustic imaging. Photoacoustic transients from the skin and superficial optical absorbers traverse into the tissue and reflect off echogenic structures to generate reflection artifacts. These artifacts cause difficulties in the interpretation of images and reduce contrast and imaging depth. We recently developed a method called PAFUSion (photoacoustic-guided focused ultrasound) to circumvent the problem of reflection artifacts in photoacoustic imaging. We already demonstrated that the photoacoustic signals can be backpropagated using synthetic aperture pulse-echo data for identifying and reducing reflection artifacts in vivo. In this work, we propose an alternative variant of PAFUSion in which synthetic backpropagation of photoacoustic signals is based on multi-angled plane-wave ultrasound measurements. We implemented plane-wave and synthetic aperture PAFUSion in a handheld ultrasound/photoacoustic imaging system and demonstrate reduction of reflection artifacts in phantoms and in vivo measurements on a human finger using both approaches. Our results suggest that, while both approaches are equivalent in terms of artifact reduction efficiency, plane-wave PAFUSion requires less pulse echo acquisitions when the skin absorption is the main cause of reflection artifacts.
机译:由声不均匀引起的反射伪像构成了落射模式生物医学光声成像中的主要问题。来自皮肤和浅层光吸收体的光声瞬变遍历组织,并反射回声结构以产生反射伪像。这些伪像在解释图像时造成困难,并降低对比度和成像深度。我们最近开发了一种称为PAFUSion(光声引导的聚焦超声)的方法来规避光声成像中的反射伪像问题。我们已经证明,可以使用合成孔径脉冲回波数据反向传播光声信号,以识别和减少体内反射伪像。在这项工作中,我们提出了PAFUSion的另一种变体,其中光声信号的合成反向传播基于多角度平面波超声测量。我们在手持式超声/光声成像系统中实现了平面波和合成孔径PAFUSion,并使用这两种方法演示了幻影反射伪影的减少以及人手指的体内测量。我们的结果表明,尽管两种方法在减少伪影方面都相当,但是当皮肤吸收是反射伪影的主要原因时,平面波PAFUSion所需的脉冲回声就更少了。

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