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Retaining axial-lateral orthogonality in steered ultrasound data to improve image quality in reconstructed lateral displacement data

机译:在转向超声数据中保持轴向横向正交性,以改善重建的横向位移数据中的图像质量

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Ultrasound elastography tracks tissue displacements under small levels of compression to obtain images of strain, a mechanical property useful in the detection and characterization of pathology. Due to the nature of ultrasound beamforming, only tissue displacements in the direction of beam propagation, referred to as 'axial', are measured to high quality, although an ability to measure other components of tissue displacement is desired to more fully characterize the mechanical behavior of tissue. Previous studies have used multiple one-dimensional (1D) angled axial displacements tracked from steered ultrasound beams to reconstruct improved quality trans-axial displacements within the scan plane (`lateral'). We show that two-dimensional (2D) displacement tracking is not possible with unmodified electronically-steered ultrasound data, and present a method of reshaping frames of steered ultrasound data to retain axial-lateral orthogonality, which permits 2D displacement tracking. Simulated and experimental ultrasound data are used to compare changes in image quality of lateral displacements reconstructed using 1D and 2D tracked steered axial and steered lateral data. Reconstructed lateral displacement image quality generally improves with the use of 2D displacement tracking -at each steering angle, relative to axial tracking alone, particularly at high levels of compression. Due to the influence of tracking noise, unsteered lateral displacements exhibit greater accuracy than axial-based reconstructions at high levels of applied strain.
机译:超声弹性跟踪在压缩下的小水平组织位移来获得应变,机械性质中的检测和病理学表征有用的图像。由于超声波束成形的性质,在光束传播方向只组织位移,被称为“轴向”,进行测量,以高品质,虽然能力来测量组织位移的其它部件需要更充分地表征机械行为的组织。以前的研究已经使用了多个一维(1D)成角度的轴向位移,从转向超声跟踪光束以扫描平面(`横向')内重建质量改善反式轴向位移。我们表明,两维(2D)位移跟踪是不可能的用未修饰的电子转向的超声数据,并呈现重塑转向超声数据帧保留轴向外侧的正交性,其允许二维位移跟踪的方法。模拟和实验的超声数据用于比较在横向位移的图像质量的变化使用1D重构和二维跟踪转向轴向和转向侧的数据。重构横向位移的图像质量通常与使用二维位移跟踪的每个-at转向角,相对于单独的轴向跟踪,特别是在高程度的压缩性提高。由于噪声跟踪的影响,未被导向的横向位移表现出比以高水平外加应变的基于轴向重建更高的精度。

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