Prognostic Model and Influencing Factors for Breast Cancer Patients

Qing Zhang
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引用次数: 0

Abstract

Breast cancer is a common disease that affects women's life and health. Survival analysis of breast cancer patients can help doctors and patients understand the prognosis of patients and provide guidance for clinical treatment. In this study, experiments were conducted based on SEER breast cancer patient data, and feature selection was performed first, followed by the construction of prognostic models using four survival analysis methods. the C-Index, BS, and IBS indexes of the RSF model were 0.8535, 0.0853, and 0.0512, respectively, which had the best predictive effect in the prognostic model for breast cancer patients. Based on the SHAP method to analyze the important factors affecting the prognosis of breast cancer patients, the results showed that tumor stage, TNM stage, grade and age have a great impact on the prognosis of breast cancer patients.
乳腺癌患者预后模型及影响因素分析
乳腺癌是影响妇女生命健康的常见病。乳腺癌患者的生存分析可以帮助医生和患者了解患者的预后,为临床治疗提供指导。本研究基于SEER乳腺癌患者数据进行实验,首先进行特征选择,然后采用四种生存分析方法构建预后模型。RSF模型的C-Index、BS和IBS指数分别为0.8535、0.0853和0.0512,是预测乳腺癌患者预后效果最好的模型。基于SHAP方法分析影响乳腺癌患者预后的重要因素,结果显示肿瘤分期、TNM分期、分级和年龄对乳腺癌患者的预后影响较大。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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