Prediction of outpatient rehabilitation patient preferences and optimization of graded diagnosis and treatment based on XGBoost machine learning algorithm

被引:0
|
作者
Fan, Xuehui [1 ]
Ye, Ruixue [1 ]
Gao, Yan [1 ]
Xue, Kaiwen [1 ]
Zhang, Zeyu [1 ]
Xu, Jing [1 ]
Zhao, Jingpu [1 ]
Feng, Jun [2 ]
Wang, Yulong [1 ]
机构
[1] Shenzhen Univ, Affiliated Hosp 1, Peoples Hosp Shenzhen 2, Dept Rehabil Med, Shenzhen, Guangdong, Peoples R China
[2] Linping Hosp Integrated Tradit Chinese & Western M, Hangzhou, Zhejiang, Peoples R China
来源
关键词
XGBoost; machine learning algorithm; rehabilitation patient; graded diagnosis and treatment; treatment preferences; HEALTH-CARE; CLASSIFICATION; CHALLENGES; MORTALITY; COVERAGE; CHINA;
D O I
10.3389/frai.2024.1473837
中图分类号
TP18 [人工智能理论];
学科分类号
081104 ; 0812 ; 0835 ; 1405 ;
摘要
Background The Department of Rehabilitation Medicine is key to improving patients' quality of life. Driven by chronic diseases and an aging population, there is a need to enhance the efficiency and resource allocation of outpatient facilities. This study aims to analyze the treatment preferences of outpatient rehabilitation patients by using data and a grading tool to establish predictive models. The goal is to improve patient visit efficiency and optimize resource allocation through these predictive models.Methods Data were collected from 38 Chinese institutions, including 4,244 patients visiting outpatient rehabilitation clinics. Data processing was conducted using Python software. The pandas library was used for data cleaning and preprocessing, involving 68 categorical and 12 continuous variables. The steps included handling missing values, data normalization, and encoding conversion. The data were divided into 80% training and 20% test sets using the Scikit-learn library to ensure model independence and prevent overfitting. Performance comparisons among XGBoost, random forest, and logistic regression were conducted using metrics, including accuracy and receiver operating characteristic (ROC) curves. The imbalanced learning library's SMOTE technique was used to address the sample imbalance during model training. The model was optimized using a confusion matrix and feature importance analysis, and partial dependence plots (PDP) were used to analyze the key influencing factors.Results XGBoost achieved the highest overall accuracy of 80.21% with high precision and recall in Category 1. random forest showed a similar overall accuracy. Logistic Regression had a significantly lower accuracy, indicating difficulties with nonlinear data. The key influencing factors identified include distance to medical institutions, arrival time, length of hospital stay, and specific diseases, such as cardiovascular, pulmonary, oncological, and orthopedic conditions. The tiered diagnosis and treatment tool effectively helped doctors assess patients' conditions and recommend suitable medical institutions based on rehabilitation grading.Conclusion This study confirmed that ensemble learning methods, particularly XGBoost, outperform single models in classification tasks involving complex datasets. Addressing class imbalance and enhancing feature engineering can further improve model performance. Understanding patient preferences and the factors influencing medical institution selection can guide healthcare policies to optimize resource allocation, improve service quality, and enhance patient satisfaction. Tiered diagnosis and treatment tools play a crucial role in helping doctors evaluate patient conditions and make informed recommendations for appropriate medical care.
引用
收藏
页数:18
相关论文
共 50 条
  • [31] Remote diagnosis of diabetics patient through speech engine and fuzzy based machine learning algorithm
    Shankar, G. Siva
    Manikandan, K.
    INTERNATIONAL JOURNAL OF SPEECH TECHNOLOGY, 2020, 23 (04) : 789 - 798
  • [32] A hybrid machine learning optimization algorithm for multivariable pore pressure prediction
    Deng, Song
    Pan, Hao-Yu
    Wang, Hai-Ge
    Xu, Shou-Kun
    Yan, Xiao-Peng
    Li, Chao-Wei
    Peng, Ming -Guo
    Peng, Hao-Ping
    Shi, Lin
    Cui, Meng
    Zhao, Fei
    PETROLEUM SCIENCE, 2024, 21 (01) : 535 - 550
  • [33] A hybrid machine learning optimization algorithm for multivariable pore pressure prediction
    Song Deng
    HaoYu Pan
    HaiGe Wang
    ShouKun Xu
    XiaoPeng Yan
    ChaoWei Li
    MingGuo Peng
    HaoPing Peng
    Lin Shi
    Meng Cui
    Fei Zhao
    Petroleum Science, 2024, (01) : 535 - 550
  • [34] Remote diagnosis of diabetics patient through speech engine and fuzzy based machine learning algorithm
    G. Siva Shankar
    K. Manikandan
    International Journal of Speech Technology, 2020, 23 : 789 - 798
  • [35] Liquefaction prediction with robust machine learning algorithms (SVM, RF, and XGBoost) supported by genetic algorithm-based feature selection and parameter optimization from the perspective of data processing
    Demir, Selcuk
    Sahin, Emrehan Kutlug
    ENVIRONMENTAL EARTH SCIENCES, 2022, 81 (18)
  • [36] Optimization Method of Deep Learning Algorithm Based on Extreme Learning Machine
    Lu, Bo
    Duan, Xiaodong
    Li, Zhijie
    2015 INTERNATIONAL CONFERENCE ON COMPUTATIONAL SCIENCE AND ENGINEERING APPLICATIONS (CSEA 2015), 2015, : 238 - 243
  • [37] Research on Rehabilitation Effect Prediction for Patients with SCI Based on Machine Learning
    Yang, Fei
    Guo, Xin
    WORLD NEUROSURGERY, 2022, 158 : E662 - E674
  • [38] Logistics requirement prediction based on annealing dynamical learning optimization algorithm-based support vector machine
    Zhang, Y. (zhang0yu@yeah.net), 2012, Advanced Institute of Convergence Information Technology (04):
  • [39] Liquefaction prediction with robust machine learning algorithms (SVM, RF, and XGBoost) supported by genetic algorithm-based feature selection and parameter optimization from the perspective of data processing
    Selçuk Demir
    Emrehan Kutluğ Şahin
    Environmental Earth Sciences, 2022, 81
  • [40] KbhbXG: A Machine learning architecture based on XGBoost for prediction of lysine β-Hydroxybutyrylation (Kbhb) modification sites
    Chen, Leqi
    Liu, Liwen
    Su, Haiyan
    Xu, Yan
    METHODS, 2024, 227 : 27 - 34