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CROSS-DEVICE AUTOMATED PROSTATE CANCER LOCALIZATION WITH MULTIPARAMETRIC MRI

机译:跨装置自动化前列腺癌本地化与多射金MRI

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Automated cancer localization with supervised techniques plays an important role in guiding biopsy, surgery and treatment. It is crucial to have an accurate training dataset for supervised techniques. Since different devices with e.g. different protocols and/or field strengths cause different intensity profiles, each device/protocol must have an accompanying training dataset which is very costly to obtain. In this paper, we propose a novel method that has the ability to design classifiers obtained from one imaging protocol and/or MRI device to be used on a dataset from another protocol and/or imaging device. As an example problem we consider prostate cancer localization with multiparametric MRI. We show that simple normalization techniques such as z-score are not sufficient to allow for cross-device automated cancer localization. On the other hand, the methods we have originally developed based on relative intensity allows us to successfully use a classifier obtained from one device to be applied on a test patient imaged with another device.
机译:具有监督技术的自动癌症本地化在引导活检,手术和治疗中起着重要作用。对于具有监督技术的准确培训数据集至关重要。由于具有例如e.g的不同设备。不同的协议和/或场强导致不同的强度配置文件,每个设备/协议必须具有伴随的训练数据集,其非常昂贵。在本文中,我们提出了一种新的方法,该方法具有设计从一个成像协议和/或MRI设备获得的分类器以从另一协议和/或成像装置使用的数据集。作为一个示例问题,我们认为具有多射金MRI的前列腺癌定位。我们表明,诸如Z分数的简单归一化技术不足以允许跨装置自动癌症定位。另一方面,我们最初基于相对强度开发的方法允许我们成功地使用从一个设备获得的分类器来应用于与另一设备成像的测试患者。

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