Generalized sidelobe canceler beamforming applied to medical ultrasound imaging

被引:0
作者
Jiake Li
Xiaodong Chen
Yi Wang
Yifeng Shi
Daoyin Yu
机构
[1] Ministry of Education,School of Precision Instrument and Opto
来源
Acoustical Physics | 2017年 / 63卷
关键词
generalized sidelobe canceler; adaptive beamforming; minimum variance; unconstrained optimization beamformer; medical ultrasound imaging;
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学科分类号
摘要
A generalized sidelobe canceler (GSC) approach is proposed for medical ultrasound imaging. The approach uses a set of adaptive weights instead of traditional non-adaptive weights, thus suppressing the interference and noise signal of echo data. In order to verify the validity of the proposed approach, Field II is applied to obtain the echo data of synthetic aperture (SA) for 13 scattering points and circular cysts. The performance of GSC is compared with SA using boxcar weights and Hamming weights, and is quantified by the full width at half maximum (FWHM) and peak signal-to-noise ratio (PSNR). Imaging of scattering point utilizing SA, SA (hamming), GSC provides FWHMs of 1.13411, 1.68910, 0.36195 mm and PSNRs of 60.65, 57.51, 66.72 dB, respectively. The simulation results of circular cyst also show that GSC can perform better lateral resolution than non-adaptive beamformers. Finally, an experiment is conducted on the basis of actual echo data of an ultrasound system, the imaging result after SA, SA (hamming), GSC provides PWHMs of 2.55778, 3.66776, 1.01346 mm at z = 75.6 mm, and 2.65430, 3.76428, 1.27889 mm at z = 77.3 mm, respectively.
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页码:229 / 236
页数:7
相关论文
共 52 条
[1]  
Tasinkevych Y.(2012)undefined Ultrasonics 52 333-342
[2]  
Trots I.(2006)undefined Ultrasonics 44 e5-e15
[3]  
Nowicki A.(2015)undefined Acta Phys. Sin. 64 238701-1418
[4]  
Jensen J. A.(1969)undefined Proc. IEEE 57 1408-1879
[5]  
Nikolov S. I.(2009)undefined IEEE Trans. Ultrason. Ferroelectr. Freq. Control 56 1868-325
[6]  
Gammelmark K. L.(2009)undefined IEEE Trans. Ultrason. Ferroelectr. Freq. Control 56 314-1613
[7]  
Pedersen M. H.(2007)undefined IEEE Trans. Ultrason. Ferroelectr. Freq. Control 54 1606-587
[8]  
Wang P.(2014)undefined Acoust. Phys. 60 570-243
[9]  
Cheng N.(2016)undefined Acoust. Phys. 62 235-473
[10]  
Gong Z.-H.(2013)undefined Acoust. Phys. 59 464-208