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首页> 外文期刊>Ultrasonic Imaging: An International Journal >Artifact Reduction of Ultrasound Nakagami Imaging by Combining Multifocus Image Reconstruction and the Noise-Assisted Correlation Algorithm
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Artifact Reduction of Ultrasound Nakagami Imaging by Combining Multifocus Image Reconstruction and the Noise-Assisted Correlation Algorithm

机译:结合多焦点图像重建和噪声辅助相关算法,减少超声Nakagami成像的伪影

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摘要

Several studies have investigated Nakagami imaging to complement the B-scan in tissue characterization. The noise-induced artifact and the parameter ambiguity effect can affect performance of Nakagami imaging in the detection of variations in scatterer concentration. This study combined multifocus image reconstruction and the noise-assisted correlation algorithm (NCA) into the algorithm of Nakagami imaging to suppress the artifacts. A single-element imaging system equipped with a 5 MHz transducer was used to perform the brightness/depth (B/D) scanning of agar phantoms with scatterer concentrations ranging from 2 to 32 scatterers/mm(3). Experiments were also carried out on a mass with some strong point reflectors in a breast phantom using a commercial scanner with a 7.5 MHz linear array transducer operated at multifocus mode. The multifocus radiofrequency (RF) signals after the NCA process were used for Nakagami imaging. In the experiments on agar phantoms, an increasing scatterer concentration from 2 to 32 scatterers/mm(3) led to backscattered statistics ranging from pre-Rayleigh to Rayleigh distributions, corresponding to the increase in the Nakagami parameter measured in the focal zone from 0.1 to 0.8. However, the artifacts in the far field resulted in the Nakagami parameters of various scatterer concentrations to be close to 1 (Rayleigh distribution), making Nakagami imaging difficult to characterize scatterers. In the same scatterer concentration range, multifocus Nakagami imaging with the NCA simultaneously suppressed two types of artifacts, making the Nakagami parameter increase from 0.1 to 0.8 in the focal zone and from 0.18 to 0.7 in the far field, respectively. In the breast phantom experiments, the backscattered statistics of the mass corresponded to a high degree of pre-Rayleigh distribution. The Nakagami parameter of the mass before and after artifact reduction was 0.7 and 0.37, respectively. The results demonstrated that the proposed method for artifact reduction allows a sensitive and effective scatterer characterization by Nakagami imaging.
机译:几项研究已经对Nakagami成像进行了研究,以补充B扫描的组织特征。噪声引起的伪像和参数歧义效应会影响Nakagami成像在散射浓度变化检测中的性能。该研究将多焦点图像重建和噪声辅助相关算法(NCA)结合到Nakagami成像算法中以抑制伪像。配备5 MHz换能器的单元素成像系统用于执行琼脂模型的亮度/深度(B / D)扫描,散射体浓度范围为2到32个散射体/ mm(3)。还使用带有在多焦点模式下运行的7.5 MHz线性阵列换能器的商用扫描仪,对带有一些幻影的强幻点反射器在乳腺模型中进行了实验。 NCA处理后的多焦点射频(RF)信号用于Nakagami成像。在琼脂模型上的实验中,散射体浓度从2散射体/ mm增加到32散射体/ mm(3)导致反向散射统计数据从瑞利分布到瑞利分布,对应于在焦点区域中测量的中上参数从0.1增加到0.8。但是,远场中的伪像导致各种散射体浓度的Nakagami参数接近1(瑞利分布),这使得Nakagami成像难以表征散射体。在相同的散射体浓度范围内,使用NCA的多焦点Nakagami成像可同时抑制两种伪影,使Nakagami参数在聚焦区分别从0.1增加到0.8,在远场从0.18增加到0.7。在乳房模型实验中,质量的反向散射统计数据对应于高度的瑞利分布。减少伪影之前和之后的质量的中上参数分别为0.7和0.37。结果表明,所提出的减少伪影的方法通过Nakagami成像可以实现灵敏有效的散射特征。

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