论文标题

线性阵列光声成像的噪声自适应波束形成

Noise adaptive beamforming for linear array photoacoustic imaging

论文作者

Paul, Souradip, Mandal, Subhamoy, Singh, Mayanglambam Suheshkumar

论文摘要

延迟和-AM(DAS)算法被广泛用于线性阵列光声成像系统中的光束形成,并以快速执行为特征。然而,这些算法遭受了各种缺点,例如低分辨率,低对比度,高旁白工件和缺乏视觉连贯性。最近,引入了自适应加权以提高重建图像质量。不幸的是,现有的最新自适应波束形成算法在计算上是昂贵的,并且不考虑获得的超声信号的特定噪声特性。在本文中,我们提出了一个新的自适应加权因子,名为“变异相干因子”(VCF),该因子考虑了射频数据的噪声水平变化。该提出的技术在图像分辨率,旁观者减少,信噪比和对比度的改进方面提供了卓越的结果。数值模拟和幻影成像的定量结果表明,与最先进的DAS方法相比,SNR提出的VCF辅助DAS方法分别提高了FWHM,SNR的57%和32%改善。结果表明,即使使用有限数量的传感器元素,提出的方法也可以有效地改善重建的图像质量并提供令人满意的成像性能。所提出的方法可以潜在地降低光声成像系统的仪器成本,并有助于模态的临床翻译。

Delay-and-sum (DAS) algorithms are widely used for beamforming in linear array photoacoustic imaging systems and are characterized by fast execution. However, these algorithms suffer from various drawbacks like low resolution, low contrast, high sidelobe artifacts and lack of visual coherence. More recently, adaptive weighting was introduced to improve the reconstruction image quality. Unfortunately, the existing state-of-the-art adaptive beamforming algorithms are computationally expensive and do not consider the specific noise characteristics of the acquired ultrasonic signal. In this article, we present a new adaptive weighting factor named the variational coherence factor (VCF), which takes into account the noise level variations of radio-frequency data. The proposed technique provides superior results in terms of image resolution, sidelobe reduction, signal-to-noise and contrast level improvement. The quantitative results of the numerical simulations and phantom imaging show that the proposed VCF assisted DAS method leads to 55% and 25% improvement in FWHM, 57% and 32% improvement in SNR, respectively, compared to the state-of-the-art DAS-based methods. The results demonstrate that the proposed method can effectively improve the reconstructed image quality and deliver satisfactory imaging performance even with a limited number of sensor elements. The proposed method can potentially reduce the instrumentation cost of the photoacoustic imaging system and contribute toward the clinical translation of the modality.

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