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New developments in tissue-type imaging (TTI) for guiding prostate biopsies and for planning and monitoring treatment of prostate cancer

机译:组织类型成像(TTI)的新进展,用于指导前列腺穿刺活检以及规划和监测前列腺癌的治疗

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Our research is aimed at ultrasonically characterizing cancerous prostate tissue so that we can imaging it effectively and thereby provide improved means of detecting, treating, and monitoring prostate cancer. We base our characterization methods on spectrum analysis of RF echo signals combined with clinical variables such as prostate-specific antigen (PSA). These parameters are classified using artificial neural networks (ANNs), and classification efficacy is measured using relative-operating-characteristic (ROC) methods. These methods produced ROC-curve areas of 0.80 compared to 0.64 for conventional methods. We then used our optimal classifiers to generate lookup tables (LUTs) that translate spectral parameters and clinical variables to pixel values in tissue-type images (TTIs). TTIs show cancerous regions in 2D or 3D, and may prove to be particularly useful clinically in combination with other ultrasonic and non-ultrasonic methods, e.g., magnetic-resonance methods.
机译:我们的研究旨在超声表征癌症前列腺组织,使我们能够有效地成像,从而提供改进的检测,治疗和监测前列腺癌的手段。我们基于RF回声信号的频谱分析与临床变量(如前列腺特异性抗原(PSA)的谱分析为基础。这些参数使用人工神经网络(ANN)进行分类,并且使用相对操作特征(ROC)方法测量分类效果。这些方法产生0.80的Roc曲线区域,而常规方法为0.64。然后,我们使用了最佳分类器来生成将光谱参数和临床变量转换为组织型图像(TTI)的像素值的查找表(LUT)。 TTI显示2D或3D的癌症区域,并且可以在临床上与其他超声波和非超声方法组合特别有用,例如磁共振方法。

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