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Legendre polynomial based fast minimum variance beamforming method for medical ultrasound systems

机译:基于勒让德多项式的医学超声系统快速最小方差波束形成方法

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摘要

Recently, minimum variance beamforming (MV BF) has been actively investigated as a method to improve the performance of an ultrasound system beamformer, especially in terms of both the lateral and contrast resolution. However, since the inverse spatial covariance matrix must be calculated, a severe problem with the method is the prohibitive computational complexity. Among numerous attempts to overcome the problem, notable ones are the fast MV BF method based on principal component analysis and beam space adaptive beamforming. The two are similar in transforming an original signal in the element space to the other domain using an orthonormal basis matrix and approximating the covariance matrix with dimensionality reduction in the transformed domain, hence simplifying the inversion of the matrix. A new method that uses the Legendre polynomial as the basis matrix for such transformation is proposed. The efficacy of the proposed method is verified through Field II simulation. Computer simulation results show that the proposed method is better than or almost equal to the above two methods in the approximation error and the lateral response.
机译:近来,最小方差波束成形(MV BF)已作为提高超声系统波束成形器性能的一种方法进行了积极的研究,特别是在横向分辨率和对比度分辨率方面。但是,由于必须计算逆空间协方差矩阵,因此该方法的严重问题是计算量过大。在克服该问题的众多尝试中,值得注意的是基于主成分分析和波束空间自适应波束形成的快速MV BF方法。两者的相似之处在于,使用正交基矩阵将元素空间中的原始信号转换为另一个域,并在转换后的域中通过降维来近似协方差矩阵,从而简化了矩阵的求逆。提出了一种利用勒让德多项式作为这种变换的基础矩阵的新方法。通过Field II仿真验证了该方法的有效性。计算机仿真结果表明,该方法在逼近误差和横向响应方面均优于或几乎等于上述两种方法。

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