超声乳房成像的频域逆时偏移

O. Roy, M. Zuberi, R. Pratt, N. Duric
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引用次数: 9

摘要

传统的超声重建技术,如b模式,是基于一个简单的波传播模型,从高频近似推导。因此,为了最小化模型不匹配,输入脉冲的中心频率通常选择在3到15兆赫之间。尽管理论分辨率有所提高,但在更高频率下工作的代价是较低的信噪比。这最终会降低较高成像深度下的图像对比度和整体质量。为了解决这个问题,我们研究了一种反射成像技术,称为逆时偏移,它使用更精确的传播模型进行重建。我们提出了初步的模拟结果,以及利用乳房成像超声断层扫描原型获得的数据获得的物理幻象图像重建。对原始重建进行过滤,以去除由于包含直接到达而产生的低波数伪影。我们证明了在逆时偏移过程中使用精确声速模型的优势。我们还解释了如何使用频域方法和并行计算平台来减轻计算复杂性的增加。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Ultrasound breast imaging using frequency domain reverse time migration
Conventional ultrasonography reconstruction techniques, such as B-mode, are based on a simple wave propagation model derived from a high frequency approximation. Therefore, to minimize model mismatch, the central frequency of the input pulse is typically chosen between 3 and 15 megahertz. Despite the increase in theoretical resolution, operating at higher frequencies comes at the cost of lower signal-to-noise ratio. This ultimately degrades the image contrast and overall quality at higher imaging depths. To address this issue, we investigate a reflection imaging technique, known as reverse time migration, which uses a more accurate propagation model for reconstruction. We present preliminary simulation results as well as physical phantom image reconstructions obtained using data acquired with a breast imaging ultrasound tomography prototype. The original reconstructions are filtered to remove low-wavenumber artifacts that arise due to the inclusion of the direct arrivals. We demonstrate the advantage of using an accurate sound speed model in the reverse time migration process. We also explain how the increase in computational complexity can be mitigated using a frequency domain approach and a parallel computing platform.
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