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首页> 外文期刊>Medical Physics >Multiparametric 3D in vivo ultrasound vibroelastography imaging of prostate cancer: Preliminary results
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Multiparametric 3D in vivo ultrasound vibroelastography imaging of prostate cancer: Preliminary results

机译:前列腺癌的多参数3D体内超声心动描记术成像:初步结果

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Purpose: Ultrasound-based solutions for diagnosis and prognosis of prostate cancer are highly desirable. The authors have devised a method for detecting prostate cancer using a vibroelastography (VE) system developed in our group and a tissue classification approach based on texture analysis of VE images.Methods: The VE method applies wide-band mechanical vibrations to the tissue. Here, the authors report on the use of this system for cancer detection and show that the texture of VE images characterized by the first and the second order statistics of the pixel intensities form a promising set of features for tissue typing to detect prostate cancer. The system was used to image patients prior to radical surgery. The removed specimens were sectioned and studied by an experienced histopathol-ogist. The authors registered the whole-mount histology sections to the ultrasound images using an automatic registration algorithm. This enabled the quantitative evaluation of the performance of the authors' imaging method in cancer detection in an unbiased manner. The authors used support vector machine (SVM) classification to measure the cancer detection performance of the VE method. Regions of tissue of size 5x5 mm, labeled as cancer and noncancer based on automatic registration to histology slides, were classified using SVM.Results: The authors report an area under ROC of 0.81 ± 0.10 in cancer detection on 1066 tissue regions from 203 images. All cancer tumors in all zones were included in this analysis and were classified versus the noncancer tissue in the peripheral zone. This outcome was obtained in leave-one-patient-out validation.Conclusions: The developed 3D prostate vibroelastography system and the proposed multi-parametric approach based on statistical texture parameters from the VE images result in a promising cancer detection method.
机译:目的:非常需要用于诊断和预后的基于超声的解决方案。作者设计了一种使用我们小组开发的振动弹性成像(VE)系统检测前列腺癌的方法,并且基于VE图像的纹理分析,采用了一种组织分类方法。方法:VE方法将宽带机械振动应用于组织。在此,作者报告了该系统在癌症检测中的使用情况,并表明以像素强度的一阶和二阶统计为特征的VE图像的纹理形成了用于组织分型以检测前列腺癌的有希望的特征。该系统用于在根治性手术之前对患者进行成像。由经验丰富的组织病理学家对切除的标本进行切片和研究。作者使用自动套准算法将整个组织学切片注册到超声图像上。这使得能够以无偏见的方式定量评估作者的成像方法在癌症检测中的性能。作者使用支持向量机(SVM)分类来测量VE方法的癌症检测性能。使用SVM对基于组织学切片自动注册的5x5 mm大小的组织区域进行分类,标记为癌和非癌。结果:作者从203张图像中报告,在1066个组织区域进行癌检测时,ROC面积为0.81±0.10。所有区域中的所有癌症肿瘤均包括在该分析中,并与周围区域中的非癌组织进行了分类。结论:开发的3D前列腺弹性弹性成像系统和基于VE图像的统计纹理参数的多参数方法提出了一种有前途的癌症检测方法。

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