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Improved parameter estimates based on the homodyned K distribution

机译:基于齐次K分布的改进参数估计

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摘要

Quantitative techniques based on ultrasound backscatter are promising tools for ultrasonic tissue characterization. There is a need for fast and accurate processing strategies to obtain consistent estimates. An improved parameter estimation algorithm for the homodyned K distribution was developed based on SNR, skewness, and kurtosis of fractional- order moments. From the homodyned K distribution, estimates of the number of scatterers per resolution cell (;C; parameter) and estimates of the ratio of coherent to incoherent backscatter signal energy (k parameter) were obtained. Furthermore, angular compounding was used to reduce estimate variance while maintaining spatial resolution of subsequent parameter images. Estimate bias and variance from Monte Carlo simulations were used to quantify the improvement using the new estimation algorithm compared with existing techniques. Improvements due to angular compounding were quantified by the decrease in estimate variance in both simulations and measurements from tissue-mimicking phantoms and by the increase in target contrast. Finally, the new algorithm was used to derive estimates from 2 kinds of mouse mammary tumors for tissue characterization. The new estimation algorithm yielded estimates with lower bias and variance than existing techniques. For a typical pair of parameters (;C; = 5 and k = 1), the bias and variance were reduced 67% and 16%, respectively, for the ;C; parameter estimates and 79% and 37%, respectively, for the k parameter estimates. The use of angular compounding further reduced the estimate variance, e.g., the variance of estimates for the ;C; parameter from measurements was reduced by a factor of approximately 90 when using 120 angles of view. Finally, statistically significant differences were observed in parameter estimates from 2 kinds of mouse mammary tumors using the new algorithm. These improvements suggest estimating parameters from the backscattered envelope can enha-nnce the diagnostic capabilities of ultrasonic imaging.
机译:基于超声反向散射的定量技术是用于超声组织表征的有前途的工具。需要快速且准确的处理策略以获得一致的估计。基于分数阶矩的信噪比,偏度和峰度,开发了一种改进的参数估计算法,用于同质K分布。从均匀的K分布中,可以获得每个分辨率单元的散射体数量(; C;参数)的估计以及相干与非相干反向散射信号能量之比的估计(k参数)。此外,角度混合用于减少估计方差,同时保持后续参数图像的空间分辨率。与现有技术相比,使用新的估计算法,将来自蒙特卡洛模拟的估计偏差和方差用于量化改进。在模拟和组织模仿体模的测量中,估计方差的减少以及目标对比度的增加,可以量化因角度复合而产生的改进。最后,使用新算法从2种小鼠乳腺肿瘤中获得估计值,以进行组织表征。与现有技术相比,新的估计算法产生的估计具有较低的偏差和方差。对于典型的一对参数(; C; = 5和k = 1),; C;的偏差和方差分别减少了67%和16%。参数估计值,对于k个参数估计值分别为79%和37%。角度复合的使用进一步减小了估计方差,例如; C;的估计方差。使用120个视角时,测量中的参数降低了约90倍。最后,使用新算法,在两种小鼠乳腺肿瘤的参数估计中观察到统计学上的显着差异。这些改进表明,从后向散射包络估计参数可以增强超声成像的诊断能力。

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