Li P C, O'Donnell M
Electrical Engineering and Computer Science Department, University of Michigan, Ann Arbor 48109-2122.
Ultrason Imaging. 1994 Jul;16(3):176-89. doi: 10.1177/016173469401600303.
Spatial compounding has long been explored to reduce coherent speckle noise in medical ultrasound. By laterally translating a one-dimensional array, partially correlated measurements made at different look directions can be obtained and incoherently averaged. The lateral resolution, however, is limited by the sub-array length used for each independent measurement. To reduce speckle contrast without compromising lateral resolution, a new spatial compounding technique using two-dimensional, anisotropic arrays is proposed. This technique obtains partially correlated measurements by steering the image plane elevationally with small inclinations. Incoherent averaging is then performed by adding image magnitudes. Therefore, contrast resolution is improved only at the price of a slightly wider elevational beam. Note that although anisotropic arrays have limited steering capability in elevation, grating lobes are not considered influential since only small inclinations are needed between measurements. Simulations have been performed to show both the change in spatial resolution and the improvement in contrast resolution. Results indicated minimal increase in the correlation length both laterally and axially. It was also shown that detectability can be significantly enhanced by increasing the number of measurements or increasing the differential inclination between measurements. This technique is therefore effective for reducing speckle noise while maintaining in-plane spatial resolution. Furthermore, it demonstrates a new application of two-dimensional anisotropic arrays in spite of their limited elevational steering capability.
长期以来,人们一直在探索空间复合技术以减少医学超声中的相干斑点噪声。通过横向平移一维阵列,可以获得在不同观察方向上进行的部分相关测量,并进行非相干平均。然而,横向分辨率受到用于每个独立测量的子阵列长度的限制。为了在不损害横向分辨率的情况下降低斑点对比度,提出了一种使用二维各向异性阵列的新空间复合技术。该技术通过以小倾角在仰角方向上操纵图像平面来获得部分相关测量。然后通过相加图像幅度进行非相干平均。因此,对比度分辨率仅以略宽的仰角波束为代价得到改善。请注意,尽管各向异性阵列在仰角方向上的操纵能力有限,但由于测量之间只需要小倾角,因此不认为光栅旁瓣有影响。已经进行了模拟以显示空间分辨率的变化和对比度分辨率的提高。结果表明横向和轴向的相关长度增加最小。还表明,通过增加测量次数或增加测量之间的差分倾角,可以显著提高可检测性。因此,该技术在保持平面内空间分辨率的同时,对于减少斑点噪声是有效的。此外,尽管二维各向异性阵列的仰角操纵能力有限,但它展示了一种新的应用。