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A novel score for predicting falls in community-dwelling older people: a derivation and validation study

Ming Zhou,Gongzi Zhang,Na Wang,Tianshu Zhao, Yangxiaoxue Liu,Yuhan Geng, Jiali Zhang, Ning Wang,Nan Peng,Liping Huang

BMC Geriatrics(2024)

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摘要
Early detection of patients at risk of falling is crucial. This study was designed to develop and internally validate a novel risk score to classify patients at risk of falls. A total of 334 older people from a fall clinic in a medical center were selected. Least absolute shrinkage and selection operator (LASSO) regression was used to minimize the potential concatenation of variables measured from the same patient and the overfitting of variables. A logistic regression model for 1-year fall prediction was developed for the entire dataset using newly identified relevant variables. Model performance was evaluated using the bootstrap method, which included measures of overall predictive performance, discrimination, and calibration. To streamline the assessment process, a scoring system for predicting 1-year fall risk was created. We developed a new model for predicting 1-year falls, which included the FRQ-Q1, FRQ-Q3, and single-leg standing time (left foot). After internal validation, the model showed good discrimination (C statistic, 0.803 [95
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关键词
Accidental falls,Older adults,Risk assessment,Fall prediction
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