Yao L X, Zagzebski J A, Madsen E L
Department of Medical Physics, University of Wisconsin, Madison 53706.
Ultrasound Med Biol. 1991;17(2):187-94. doi: 10.1016/0301-5629(91)90126-h.
Uncertainties in measured attenuation and backscatter coefficients due to statistical fluctuations in echo signal data from a randomly scattering medium are estimated. The uncertainties are computed for the special case in which a reference phantom is employed to account for transducer and instrumentation factors when measuring attenuation and backscatter coefficients. The resultant uncertainty in the attenuation is inversely proportional to the 3/2 power of the depth range. The error in the backscatter coefficient arises both from the local fluctuation in the data and from the uncertainty in the attenuation estimate. The first of these is inversely proportional to the square root of the number of independent data points, while the second results in a contribution that is depth dependent. Predicted errors were tested by scanning tissue mimicking phantoms and estimating attenuation and backscatter coefficients for subsets of the digitized echo data. Standard deviations of the experimental results were in agreement with those predicted.
估计了由于来自随机散射介质的回波信号数据中的统计波动而导致的测量衰减系数和背向散射系数的不确定性。对于在测量衰减系数和背向散射系数时采用参考体模来考虑换能器和仪器因素的特殊情况,计算了不确定性。衰减结果中的不确定性与深度范围的3/2次方成反比。背向散射系数的误差既来自数据中的局部波动,也来自衰减估计中的不确定性。其中第一个与独立数据点数量的平方根成反比,而第二个导致的贡献与深度有关。通过扫描仿组织体模并估计数字化回波数据子集的衰减系数和背向散射系数,对预测误差进行了测试。实验结果的标准差与预测结果一致。