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Research progress on predictive models for malnutrition in cancer patients

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机构: [1]Clinical Medical College, Chengdu Medical College, Chengdu, China. [2]Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Chengdu Medical College, Chengdu, China. [3]Key Laboratory of Geriatic Respiratory Diseases of Sichuan Higher Education Institute, Chengdu, China. [4]Department of Oncology, The First Affiliated Hospital of Chengdu Medical College, Chengdu, China. [5]The Second School of Clinical Medicine, Southern Medical University, Guangzhou, China.
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关键词: cancer patients nutrition status prediction models machine learning nomogram

摘要:
Disease-related malnutrition is a prevalent issue among cancer patients, affecting approximately 40-80% of those undergoing treatment. This condition is associated with numerous adverse outcomes, including extended hospitalization, increased morbidity and mortality, delayed wound healing, compromised muscle function and reduced overall quality of life. Moreover, malnutrition significantly impedes patients' tolerance of various cancer therapies, such as surgery, chemotherapy, and radiotherapy, resulting in increased adverse effects, treatment delays, postoperative complications, and higher referral rates. At present, numerous countries and regions have developed objective assessment models to predict the risk of malnutrition in cancer patients. As advanced technologies like artificial intelligence emerge, new modeling techniques offer potential advantages in accuracy over traditional methods. This article aims to provide an exhaustive overview of recently developed models for predicting malnutrition risk in cancer patients, offering valuable guidance for healthcare professionals during clinical decision-making and serving as a reference for the development of more efficient risk prediction models in the future.Copyright © 2024 Zheng, Wang, Luo, Duan and Feng.

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出版当年[2023]版:
大类 | 2 区 农林科学
小类 | 3 区 营养学
最新[2023]版:
大类 | 2 区 农林科学
小类 | 3 区 营养学
第一作者:
第一作者机构: [1]Clinical Medical College, Chengdu Medical College, Chengdu, China. [2]Department of Respiratory and Critical Care Medicine, The First Affiliated Hospital of Chengdu Medical College, Chengdu, China. [3]Key Laboratory of Geriatic Respiratory Diseases of Sichuan Higher Education Institute, Chengdu, China.
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通讯作者:
通讯机构: [1]Clinical Medical College, Chengdu Medical College, Chengdu, China. [4]Department of Oncology, The First Affiliated Hospital of Chengdu Medical College, Chengdu, China.
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