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DING Yan, HAN Meng-xue, LIU Yue-ping. AI-assisted Prediction of Lymph Node Metastasis of Breast Cancer: Current and Prospective Research[J]. Journal of Sichuan University (Medical Sciences), 2021, 52(2): 162-165. DOI: 10.12182/20210360102
Citation: DING Yan, HAN Meng-xue, LIU Yue-ping. AI-assisted Prediction of Lymph Node Metastasis of Breast Cancer: Current and Prospective Research[J]. Journal of Sichuan University (Medical Sciences), 2021, 52(2): 162-165. DOI: 10.12182/20210360102

AI-assisted Prediction of Lymph Node Metastasis of Breast Cancer: Current and Prospective Research

  • One of the most important application of artificial intelligence (AI) in pathology is prediction, using morphological features, of patient prognosis and response to specific treatments. As one of the most common kinds of malignancies in the world and the crucial important cause of death due to malignant tumor among women, breast cancer has become the center of attention in clinical services. Axillary lymph node metastasis is an important prognostic factor in breast cancer. The accuracy of the assessment of axillary lymph node metastasis bears heavily on clinical diagnosis and treatment. At present, based on the principle of non-invasive procedures, many studies have been done to develop models that can be used to predict sentinel lymph node metastasis of breast cancer. However, different clinical and pathological parameters are used in these predictive models. How to analyze the clinical and pathological data of breast cancer patients in a more comprehensive way and how to establish a prediction model with better precision have become the future direction of development. In this paper, we describe the research progress of AI in pathology and the current status of its use in breast cancer research. We have conducted in-depth reflection and looked into the future of ways to predict effectively breast cancer lymph node metastasis and to establish more accurate and effective deep-learning algorithm based on AI assistance so as to continuously improve the diagnosis and treatment of breast cancer.
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