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Ultrasound scatterer size estimation technique based on a 3D acoustic impedance map from histologic sections

机译:基于组织学切片的3D声阻抗图的超声散射体尺寸估计技术

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Identifying the scatterers and obtaining accurate estimates of ultrasonic scatterer sizes are beneficial adjuncts to characterize (diagnose) disease from ultrasonic backscatterer measurements. A new scatterer size estimation technique has been developed that is based on a 3D acoustic impedance map. Ultrasonic scatterer estimation techniques rely extensively on form factor functions to obtain estimates, and 3D impedance maps can be used to derive independently form factors. The 3D acoustic impedance map is derived from a 3D histological data set of tissue, and is independent of ultrasonically acquired data. A rat fibroadenoma and a mouse 4T1 mouse mammary tumor (MMT) were fixed (10% neutral-buffered formalin), embedded in paraffin, serially sectioned at 10 /spl mu/m and 5 /spl mu/m respectively, and stained with H&E for histologic evaluation. Each section was digitally photographed through the light microscope. Tissue structures in each section were assigned distinct acoustic impedance values. The images from serial sections were aligned to yield two 3D impedance data set. A Gaussian form factor was used to estimate scatterer size and acoustic concentration. The scatterer size estimates were compared to previous values that were obtained from ultrasonic backscatterer measurements (also using a Gaussian form factor). For both 3D impedance maps, the relative difference between the size estimates were below 10%. The optimization scheme was also conducted on two simulated medium and led to relative errors below 1% for the scatterer size. This approach demonstrates that the use of 3D impedance maps has significant potential for improving parametric imaging by evaluating form factor functions.
机译:识别散射体并获得超声散射体大小的准确估计值是从超声反向散射体测量中表征(诊断)疾病的有益辅助手段。已经开发了一种基于3D声阻抗图的新散射体尺寸估算技术。超声散射估计技术广泛依赖于形状因数函数来获取估计值,并且3D阻抗图可用于独立推导形状因数。 3D声阻抗图来自组织的3D组织学数据集,并且独立于超声获取的数据。将大鼠纤维腺瘤和小鼠4T1小鼠乳腺肿瘤(MMT)固定(10%中性缓冲福尔马林),包埋在石蜡中,分别以10 / spl mu / m和5 / spl mu / m的顺序切片,并用H&E染色用于组织学评估。通过光学显微镜对每个部分进行数码照相。在每个部分中的组织结构被分配了不同的声阻抗值。将来自串行部分的图像对齐以产生两个3D阻抗数据集。高斯形状因数用于估计散射体大小和声波浓度。将散射体尺寸估计值与从超声反向散射体测量(也使用高斯形状因数)获得的先前值进行比较。对于两个3D阻抗图,大小估计之间的相对差都低于10%。优化方案也在两种模拟介质上进行,导致散射体尺寸的相对误差低于1%。这种方法表明,通过评估形状因数函数,使用3D阻抗图具有改善参数成像的巨大潜力。

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