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首页> 外文期刊>Ultrasonics, Ferroelectrics and Frequency Control, IEEE Transactions on >Least-squares estimation of imaging parameters for an ultrasonic array using known geometric image features
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Least-squares estimation of imaging parameters for an ultrasonic array using known geometric image features

机译:使用已知几何图像特征的超声阵列成像参数的最小二乘估计

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Ultrasonic array images are adversely affected by errors in the assumed or measured imaging parameters. For non-destructive testing and evaluation, this can result in reduced defect detection and characterization performance. In this paper, an autofocus algorithm is presented for estimating and correcting imaging parameter errors using the collected echo data and a priori knowledge of the image geometry. Focusing is achieved by isolating a known geometric feature in the collected data and then performing a weighted leastsquares minimization of the errors between the data and a feature model, with respect to the unknown parameters. The autofocus algorithm is described for the estimation of element positions in a flexible array coupled to a specimen with an unknown surface profile. Experimental results are shown using a prototype flexible array and it is demonstrated that (for an isolated feature and a well-prescribed feature model) the algorithm is capable of generating autofocused images that are comparable in quality to benchmark images generated using accurately known imaging parameters.
机译:超声阵列图像会受到假定或测量的成像参数错误的不利影响。对于无损测试和评估,这可能会导致缺陷检测和表征性能下降。在本文中,提出了一种自动聚焦算法,用于使用收集的回波数据和图像几何的先验知识来估计和校正成像参数误差。通过在收集的数据中隔离已知的几何特征,然后对未知参数进行数据和特征模型之间的误差的加权最小二乘最小化,可以实现聚焦。描述了自动聚焦算法,用于估计耦合到具有未知表面轮廓的样本的柔性阵列中的元素位置。使用原型柔性阵列显示了实验结果,并证明了该算法(对于隔离的特征和规定良好的特征模型)能够生成质量与使用精确已知的成像参数生成的基准图像相当的自动聚焦图像。

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