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首页> 外文期刊>IEEE Transactions on Ultrasonics, Ferroelectrics, and Frequency Control >Optimization-Based Speckle Tracking Algorithm for Left Ventricle Strain Estimation: A Feasibility Study
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Optimization-Based Speckle Tracking Algorithm for Left Ventricle Strain Estimation: A Feasibility Study

机译:基于优化的斑点跟踪算法在左心室应变估计中的可行性研究

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摘要

Speckle tracking echocardiography (STE) is a widespread method for calculating myocardial strains and estimating left ventricle function. Since echocardiographic clips are corrupted by speckle decorrelation noise, resulting in irregular, nonphysiological tissue displacement fields, smoothing is performed on the displacement data, affecting the strain results. Thus, strain results may depend on the specific implementations of 2-D STE, as well as other systems’ characteristics of the various vendors. A novel algorithm (called K-SAD) is introduced, which integrates the physiological constraint of smoothness of the displacement field into an optimization process. Simulated B-mode clips, modeling healthy and abnormal cases, were processed by K-SAD. Peak global and subendocardial longitudinal strains, as well as regional strains, were calculated. In addition, 410 healthy subjects were also processed. The results of K-SAD are compared with those of one of the leading commercial product. K-SAD provides global mid-wall strain values, as well as subendocardial and regional strain values, all in good agreement with the ground-truth-simulated phantom data. K-SAD peak global longitudinal systolic strain values for 410 healthy subjects are quite similar for the different regions: − 17.02 ± 4.02%, − 19.00 ± 3.45%, and − 19.72 ± 5.06% at the basal, mid, and apical regions, respectively. Improved performance under noisy conditions was demonstrated by comparing a subgroup of 40 subjects with the best image quality with the remaining 370 cohort: K-SAD provides statistically similar global and regional results for the two cohorts. Our study indicates that the sensitivity of strain values to speckle noise, caused by the post block-matching weighted smoothing, can be significantly reduced and accuracy enhanced by employing an integrated one-stage, physiologically constrained optimization process.
机译:斑点跟踪超声心动图(STE)是一种用于计算心肌张力并估计左心室功能的广泛方法。由于超声心动图片段因斑点去相关噪声而损坏,导致出现不规则的非生理性组织位移场,因此对位移数据进行平滑处理会影响应变结果。因此,应变结果可能取决于2-D STE的特定实现方式以及各个供应商的其他系统特性。引入了一种新的算法(称为K-SAD),该算法将位移场平滑度的生理约束整合到了优化过程中。由K-SAD处理模拟的B型剪辑,对健康和异常病例进行建模。计算峰值全局和心内膜下纵向应变,以及区域应变。此外,还对410名健康受试者进行了处理。将K-SAD的结果与领先的商业产品之一的结果进行了比较。 K-SAD提供了整体中壁应变值,以及心内膜​​下和区域应变值,所有这些都与地面真实模拟的幻象数据非常吻合。 410名健康受试者的K-SAD峰值总纵向收缩压峰值在不同区域非常相似:分别在基底,中部和顶端区域分别为− 17.02±4.02%,− 19.00±3.45%和− 19.72±5.06% 。通过将40个具有最佳图像质量的受试者亚组与其余370个队列进行比较,证明了在嘈杂条件下的性能得到了改善:K-SAD为两个队列提供了统计上相似的全局和区域结果。我们的研究表明,通过采用集成的一阶段,受生理限制的优化过程,可以显着降低由块匹配后加权平滑引起的应变值对斑点噪声的敏感性,并提高准确性。

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