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Evaluating Texture-Based Prostate Cancer Classification on Multi- Parametric Magnetic Resonance Imaging and Prostate Specific Membrane Antigen Positron Emission Tomography

机译:在多参数磁共振成像和前列腺特异性膜抗原正电子发射断层扫描上评估基于纹理的前列腺癌分类

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In-vivo imaging of the prostate has shown to be useful for prostate cancer (PCa) localization especially during biopsy procedures. Multi-parametric MRI (mp-MRI) is gaining rapid popularity amongst clinicians but is complex and difficult to interpret by even expert radiologists. Prostate specific membrane antigen positron emission tomography (PSMA PET) is emerging as a new tool for PCa detection and has shown promising results towards lesion identification. Both imaging procedures suffer from intra- and inter- observer variability in PCa detection. Computer-aided diagnosis (CAD) systems have been developed as a solution to mitigate observer variability and have shown to boost diagnostic accuracy. There are currently no studies published that assessed the benefit of incorporating PSMA PET imaging and mp-MRI into a CAD system for PCa detection. We compared the accuracy of CAD models trained and tested on features from mp-MRI+PSMA PET, mp-MRI and PSMA PET by training on 1-10 features chosen from three feature selection methods for 10 different classifiers for each of the three experiments. We found that models trained on mp-MRI provided lower overall error and greater specificity, and models trained on mp-MRI+PSMA PET and PSMA PET provided greater sensitivity to lesions in the central gland, which is a known area of difficulty for mp-MRI. Further validation using a larger dataset is required to prove the added benefit of PSMA PET imaging as a second modality to PCa CAD systems. Once fully validated, these results will demonstrate the added benefit of incorporating PSMA PET imaging into CAD models towards PCa detection.
机译:前列腺的体内成像已显示对于前列腺癌(PCa)定位特别有用,尤其是在活检过程中。多参数MRI(mp-MRI)在临床医生中迅速普及,但是它非常复杂,甚至放射线专家也难以解释。前列腺特异性膜抗原正电子发射断层扫描(PSMA PET)作为PCa检测的新工具正在兴起,并且在病变识别方面显示出令人鼓舞的结果。两种成像过程在PCa检测中都存在观察者内部和观察者之间的差异。已开发出计算机辅助诊断(CAD)系统作为减轻观察者变异性的解决方案,并已证明可以提高诊断准确性。目前,尚无任何研究评估将PSMA PET成像和mp-MRI纳入用于PCa检测的CAD系统的益处。我们通过对从mp-MRI + PSMA PET,mp-MRI和PSMA PET中的特征进行训练和测试的CAD模型的准确性进行比较,方法是对从三个特征选择方法中选择的1-10个特征进行训练,以针对三个实验中的每一个进行10种不同的分类。我们发现,在mp-MRI上训练的模型提供了更低的总体误差和更高的特异性,在mp-MRI + PSMA PET和PSMA PET上训练的模型对中央腺体的病变提供了更高的敏感性,这是mp-MRI已知的困难领域核磁共振成像。需要使用更大的数据集进行进一步验证,以证明PSMA PET成像作为PCa CAD系统的第二种方式所带来的额外好处。一旦得到充分验证,这些结果将证明将PSMA PET成像结合到CAD模型中以进行PCa检测的额外好处。

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