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Analysis of DCE-MRI for Early Prediction of Breast Cancer Therapy Response

机译:DCE-MRI对乳腺癌治疗反应的早期预测分析

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Positive response to neoadjuvant chemotherapy (NACT) has been correlated to better long-term outcomes in breast cancer treatment. Early prediction of response to NACT can help modify the regimen for non-responding patients, sparing them of potential toxicities of ineffective therapies. It has been observed that tumor functions such as vascularization and vascular permeability change even before noticeable changes occur in the tumor size in response to the treatment. Therefore, it is essential to have reliable imaging based features to measure these changes. Texture analysis on parametric maps from dynamic contrast-enhanced magnetic resonance imaging (DCE-MRI) has shown to be a good predictor of breast cancer response to NACT at an early stage. But hand crafted texture features might not be able to capture the rich spatio-temporal information in the parametric maps. In this work, we studied the ability of convolutional neural networks in predicting the response to NACT at an early stage.
机译:对新辅助化疗(NACT)的积极反应已与乳腺癌治疗中更好的长期预后相关。对NACT反应的早期预测可以帮助修改无反应患者的治疗方案,使他们避免无效疗法的潜在毒性。已经观察到,甚至在响应于治疗而在肿瘤大小发生明显变化之前,诸如血管化和血管通透性之类的肿瘤功能也发生了变化。因此,必须具有可靠的基于影像的特征来测量这些变化。动态对比增强磁共振成像(DCE-MRI)在参数图上进行纹理分析已被证明是乳腺癌对NACT早期反应的良好预测指标。但是,手工制作的纹理特征可能无法捕获参数映射中丰富的时空信息。在这项工作中,我们研究了卷积神经网络在早期阶段预测NACT响应的能力。

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