首页> 外国专利> PREDICTING IMMUNOTHERAPY RESPONSE IN NON-SMALL CELL LUNG CANCER WITH SERIAL QUANTITATIVE VESSEL TORTUOSITY

PREDICTING IMMUNOTHERAPY RESPONSE IN NON-SMALL CELL LUNG CANCER WITH SERIAL QUANTITATIVE VESSEL TORTUOSITY

机译:预测具有定量血管曲折性的非小细胞肺癌的免疫治疗反应

摘要

One embodiment includes an image acquisition circuit that accesses a pre-treatment and a post-treatment image of a region of tissue demonstrating non-small cell lung cancer (NSCLC), a segmentation and registration circuit that annotates the tumor represented in the images, and that registers the pre-treatment image with the post-treatment image; a feature extraction circuit that selects a set of pre-treatment and a set of post-treatment quantitative vessel tortuosity (QVT) features from the registered image; a delta-QVT circuit that generates a set of delta-QVT features by computing a difference between the set of post-treatment QVT features and the set of pre-treatment QVT features; and a classification circuit that generates a probability that the region of tissue will respond to immunotherapy based on the difference, and that classifies the region of tissue as a responder or non-responder. Embodiments may generate an immunotherapy treatment plan based on the classification.
机译:一个实施例包括:图像获取电路,其访问显示非小细胞肺癌(NSCLC)的组织区域的治疗前图像和治疗后图像;分割和配准电路,其对图像中所代表的肿瘤进行注释;以及将治疗前图像与治疗后图像配准;特征提取电路,其从配准图像中选择一组预处理和一组后处理定量血管弯曲度(QVT)特征;通过计算一组后处理QVT特征与该组预处理QVT特征之间的差来产生一组增量QVT特征的增量QVT电路;以及分类电路,该分类电路基于所述差异产生组织区域将对免疫疗法作出响应的可能性,并且将组织区域分类为响应者或非响应者。实施方案可基于分类产生免疫疗法治疗计划。

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