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Feature-based Response Prediction to Immunotherapy of late-stage Melanoma Patients Using PET/MR Imaging

机译:利用PET / MR成像对晚期黑素瘤患者免疫疗法的基于特征的响应预测

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The treatment of malignant melanoma with immunotherapy is a promising approach to treat advanced stages of the disease. However, the treatment can cause serious side effects and not every patient responds to it. This means, crucial time may be wasted on an ineffective treatment. Assessment of the possible therapy response is hence an important research issue. The research presented in this study focuses on the investigation of the potential of medical imaging and machine learning to solve this task. To this end, we extracted image features from multi-modal images and trained a classifier to differentiate non-responsive patients from responsive ones.
机译:用免疫疗法治疗恶性黑素瘤是治疗疾病的晚期阶段的有希望的方法。然而,治疗可能会导致严重的副作用,而不是每个患者都会对其进行响应。这意味着,在无效的治疗中可能浪费关键时间。因此,评估可能的治疗响应是重要的研究问题。本研究中提出的研究重点是调查医学成像和机器学习解决这项任务的潜力。为此,我们从多模态图像中提取了图像特征,并培训了分类器以区分非响应患者免受响应的患者。

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