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Noninvasive Characterization of Locally Advanced Breast Cancer Using Textural Analysis of Quantitative Ultrasound Parametric Images

机译:使用定量超声参数图像的纹理分析对局部晚期乳腺癌进行非侵入性表征

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PURPOSE: The identification of tumor pathologic characteristics is an important part of breast cancer diagnosis, prognosis, and treatment planning but currently requires biopsy as its standard. Here, we investigated a noninvasive quantitative ultrasound method for the characterization of breast tumors in terms of their histologic grade, which can be used with clinical diagnostic ultrasound data. METHODS: Tumors of 57 locally advanced breast cancer patients were analyzed as part of this study. Seven quantitative ultrasound parameters were determined from each tumor region from the radiofrequency data, including mid-band fit, spectral slope, 0-MHz intercept, scatterer spacing, attenuation coefficient estimate, average scatterer diameter, and average acoustic concentration. Parametric maps were generated corresponding to the region of interest, from which four textural features, including contrast, energy, homogeneity, and correlation, were determined as further tumor characterization parameters. Data were examined on the basis of tumor subtypes based on histologic grade (grade I versus grade II to III). RESULTS: Linear discriminant analysis of the means of the parametric maps resulted in classification accuracy of 79%. On the other hand, the linear combination of the texture features of the parametric maps resulted in classification accuracy of 82%. Finally, when both the means and textures of the parametric maps were combined, the best classification accuracy was obtained (86%). CONCLUSIONS: Textural characteristics of quantitative ultrasound spectral parametric maps provided discriminant information about different types of breast tumors. The use of texture features significantly improved the results of ultrasonic tumor characterization compared to conventional mean values. Thus, this study suggests that texture-based quantitative ultrasound analysis of in vivo breast tumors can provide complementary diagnostic information about tumor histologic characteristics.
机译:目的:肿瘤病理特征的识别是乳腺癌诊断,预后和治疗计划的重要组成部分,但目前需要以活检为标准。在这里,我们研究了一种无创定量超声方法,可根据其组织学等级来表征乳腺肿瘤,可与临床诊断超声数据一起使用。方法:本研究分析了57例局部晚期乳腺癌患者的肿瘤。从射频数据确定了每个肿瘤区域的七个定量超声参数,包括中频带拟合,频谱斜率,0 MHz截距,散射体间距,衰减系数估计值,平均散射体直径和平均声音浓度。生成与感兴趣区域相对应的参数图,从中确定包括对比度,能量,同质性和相关性在内的四个纹理特征作为进一步的肿瘤表征参数。根据基于组织学等级(I级与II至III级)的肿瘤亚型检查数据。结果:对参数图的均值进行线性判别分析,得出分类精度为79%。另一方面,参数图的纹理特征的线性组合导致分类精度为82%。最后,将参数图的均值和纹理组合在一起时,可获得最佳分类精度(86%)。结论:定量超声光谱参数图的纹理特征提供了关于不同类型乳腺肿瘤的判别信息。与常规平均值相比,纹理特征的使用显着改善了超声肿瘤表征的结果。因此,这项研究表明体内乳腺肿瘤的基于纹理的定量超声分析可以提供有关肿瘤组织学特征的补充诊断信息。

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