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Ultrasonic Phased Array Sparse-TFM Imaging Based on Sparse Array Optimization and New Edge-Directed Interpolation

机译:基于稀疏阵列优化和新型边沿定向内插的超声相控阵稀疏-TFM成像

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摘要

The ultrasonic phased array total focusing method (TFM) has the advantages of full-range dynamic focusing and high imaging resolution, but the problem of long imaging time limits its practically industrial applications. To reduce the imaging calculation demand of TFM, the locations of active array elements in the sparse array are optimized by combining almost different sets with the genetic algorithm (ADSGA), and corrected based on the consistency of the effective aperture with the equivalent point diffusion function. At the same time, to further increase the imaging efficiency, a sparse-TFM image with lower resolution is obtained by reducing the number of focus points and then interpolated by the new edge-directed interpolation algorithm (NEDI) to obtain a high quality sparse-TFM image. Compared with TFM, the experimental results show that the quantitative accuracy of the proposed method is only decreased by 1.09% when the number of sparse transmitting elements reaches 8 for a 32-element transducer, and the imaging speed is improved by about 16 times with the same final pixel resolution.
机译:超声相控阵全聚焦法具有全范围动态聚焦和高成像分辨率的优点,但是成像时间长的问题限制了其实际的工业应用。为了减少TFM的成像计算需求,通过将几乎不同的集合与遗传算法(ADSGA)相结合来优化稀疏阵列中有源阵列元素的位置,并根据等效等效点扩散函数的有效孔径的一致性进行校正。 。同时,为进一步提高成像效率,通过减少焦点数量获得了较低分辨率的稀疏TFM图像,然后通过新的边沿定向插值算法(NEDI)进行插值以获得高质量的稀疏TFM图像。 TFM图像。与TFM相比,实验结果表明,对于32元素换能器,当稀疏传输元件的数量达到8时,该方法的定量精度仅降低1.09%,而使用SFM时,成像速度提高了约16倍。相同的最终像素分辨率。

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