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Multimodal classification of prostate tissue: a feasibility study on combining multiparametric MRI and ultrasound

机译:前列腺组织的多模式分类:将多参数MRI与超声相结合的可行性研究

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The common practice for biopsy guidance is through transrectal ultrasound, with the fusion of ultrasound and MRI-based targets when available. However, ultrasound is only used as a guidance modality in MR-targeted ultrasound-guided biopsy, even though previous work has shown the potential utility of ultrasound, particularly ultrasound vibro-elastography, as a tissue typing approach. We argue that multiparametric ultrasound, which includes B-mode and vibro-elastography images, could contain information that is not captured using multiparametric MRI (mpMRI) and therefore play a role in refining the biopsy and treatment strategies. In this work, we combine mpMRI with multiparametric ultrasound features from registered tissue areas to examine the potential improvement in cancer detection. All the images were acquired prior to radical prostatectomy and cancer detection was validated based on 36 whole mount histology slides. We calculated a set of 24 texture features from vibro-elastography and B-mode images, and five features from mpMRI. Then we used recursive feature elimination (RFE) and sparse regression through LASSO to find an optimal set of features to be used for tissue classification. We show that the set of these selected features increases the area under ROC curve from 0.87 with mpMRI alone to 0.94 with the selected mpMRI and multiparametric ultrasound features, when used with support vector machine classification on features extracted from peripheral zone. For features extracted from the whole-gland, the area under the curve was 0.75 and 0.82 for mpMRI and mpMRI along with ultrasound, respectively. These preliminary results provide evidence that ultrasound and ultrasound vibro-elastography could be used as modalities for improved cancer detection in combination with MRI.
机译:活检指导的常规做法是通过直肠超声,并在可行时融合超声和基于MRI的靶标。但是,即使以前的工作显示了超声(尤其是超声振动弹力图)作为组织分型方法的潜在用途,超声也仅在MR靶向超声引导的活检中用作引导方式。我们认为,多参数超声(包括B型和超声弹性成像)可能包含无法通过多参数MRI(mpMRI)捕获的信息,因此在完善活检和治疗策略中起着重要作用。在这项工作中,我们将mpMRI与来自已注册组织区域的多参数超声特征相结合,以检查癌症检测的潜在改善。所有图像均在前列腺癌根治术之前获取,并基于36个完整组织学切片对癌症检测进行了验证。我们从振动弹力图和B型图像中计算出24个纹理特征,从mpMRI中计算出5个特征。然后,我们使用递归特征消除(RFE)和通过LASSO进行稀疏回归来找到用于组织分类的最佳特征集。我们显示,当与支持向量机对从外围区域提取的特征进行分类一起使用时,这些选定特征的集合将ROC曲线下的面积从单独使用mpMRI的0.87增加到使用选定mpMRI和多参数超声特征的0.94。对于从全腺中提取的特征,mpMRI和mpMRI以及超声的曲线下面积分别为0.75和0.82。这些初步结果提供了证据,即超声和超声振动弹力描记可以与MRI结合用作改善癌症检测的方法。

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