经颅光声成像中颞骨多重散射和模式转换剪切波的数值研究

Fatemeh Hosseini, Moein Mozaffarzadeh, Ali Mahlooiifar, M. Verweij, N. de Jong
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引用次数: 0

摘要

近年来,经颅光声成像(TPA)已成为诊断脑部疾病的一种流行方式。然而,由于颅骨的存在,TPA图像严重退化。在声学上,这种退化主要分为相位像差、模式转换剪切波和多次散射。以往的研究在忽略颅骨相位像差的情况下,数值研究了模式转换剪切波和多次散射对TPA图像的影响,采用传统的延迟求和方法重建TPA图像。在本文中,我们研究了这些影响,同时使用折射校正图像重建方法来形成TPA图像。这种方法可以分离相位像差、模式转换剪切波和多次散射的影响。采用基于MicroCT的真实人颞骨模型进行数值模拟。在所有吸收体中,当在成像过程中进行折射校正时,模式转换剪切波和多次散射引起的伪影功率平均分别为-13.7 dB和-20.1 dB。如果使用常规重建,这些值为-7.9和-18.8。考虑相位像差可以精确地量化模式转换剪切波和多次散射的影响,这对于评估为降低这些影响而开发的方法是必要的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical Investigation of Multiple Scattering and Mode-Converted Shear Waves Caused by Temporal Bone in Transcranial Photoacoustic Imaging
In recent years, transcranial photoacoustic (TPA) imaging has become a popular modality for diagnosis of brain disorders. However, due to the presence of skull, TPA images are strongly degraded. Acoustically, this degradation is mainly categorized into the phase aberration, mode-converted shear waves, and multiple scattering. Previous studies numerically investigated the effects of mode-converted shear waves and multiple scattering on TPA images while the phase aberration caused by the skull was ignored and a conventional delay-and-sum method was employed for reconstructing TPA images. In this paper, we investigate these effects while a refraction-corrected image reconstruction approach is used to form TPA images. This approach enables separating the effects of phase aberration, mode-converted shear wave and multiple scattering. A realistic human temporal bone based on a MicroCT was used in the numerical model. In average for all the absorbers, the power of the artifacts caused by the mode-converted shear wave and multiple scattering are -13.7 dB and -20.1 dB when the refraction is corrected during image formation, respectively. These values were -7.9 and -18.8 if the conventional reconstruction is used. Accounting for phase aberration enables accurate quantification of the effects of the mode-converted shear waves and multiple scattering, which is necessary for evaluating the methods developed for degrading these effects.
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