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Increasing Axial Resolution of Ultrasonic Imaging With a Joint Sparse Representation Model

机译:联合稀疏表示模型提高超声成像的轴向分辨率

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摘要

The axial resolution of ultrasonic imaging is confined by the temporal width of acoustic pulse generated by the transducer, which has a limited bandwidth. Deconvolution can eliminate this effect and, therefore, improve the resolution. However, most ultrasonic imaging methods perform deconvolution scan line by scan line, and therefore the information embedded within the neighbor scan lines is unexplored, especially for those materials with layered structures such as blood vessels. In this paper, a joint sparse representation model is proposed to increase the axial resolution of ultrasonic imaging. The proposed model combines the sparse deconvolution along the axial direction with a sparsity-favoring constraint along the lateral direction. Since the constraint explores the information embedded within neighbor scan lines by connecting nearby pixels in the ultrasound image, the axial resolution of the image improves after deconvolution. The results on simulated data showed that the proposed method can increase resolution and discover layered structure. Moreover, the results on real data showed that the proposed method can measure carotid intima-media thickness automatically with good quality ( 0.56±0.03 versus 0.60±0.06 mm manually).
机译:超声成像的轴向分辨率受换能器产生的声脉冲的时间宽度限制,带宽有限。去卷积可以消除这种影响,因此可以提高分辨率。但是,大多数超声成像方法逐行执行反卷积扫描,因此,尤其是对于那些具有分层结构的材料(例如血管),尚未探索嵌入在相邻扫描线中的信息。本文提出了一种联合稀疏表示模型,以提高超声成像的轴向分辨率。所提出的模型将沿轴向的稀疏反卷积与沿横向的稀疏性约束结合在一起。由于约束条件是通过连接超声图像中附近的像素来探索嵌入在相邻扫描线中的信息,因此在解卷积后,图像的轴向分辨率会提高。仿真结果表明,该方法可以提高分辨率,发现分层结构。此外,真实数据的结果表明,所提出的方法可以自动测量颈动脉内中膜厚度,质量良好(手动测量为0.56±0.03 vs 0.60±0.06 mm)。

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