首页> 外文期刊>Journal of stroke and cerebrovascular diseases: The official journal of National Stroke Association >A Method of Calculating Functional Independence Measure at Discharge from Functional Independence Measure Effectiveness Predicted by Multiple Regression Analysis Has a High Degree of Predictive Accuracy
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A Method of Calculating Functional Independence Measure at Discharge from Functional Independence Measure Effectiveness Predicted by Multiple Regression Analysis Has a High Degree of Predictive Accuracy

机译:从多元回归分析预测的功能独立度量效应的排出计算功能独立度量的方法具有高度的预测精度

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Background: Multiple linear regression analysis is often used to predict the outcome of stroke rehabilitation. However, the predictive accuracy may not be satisfactory. The objective of this study was to elucidate the predictive accuracy of a method of calculating motor Functional Independence Measure (mFIM) at discharge from mFIM effectiveness predicted by multiple regression analysis. Methods: The subjects were 505 patients with stroke who were hospitalized in a convalescent rehabilitation hospital. The formula "mFIM at discharge = mFIM effectiveness x (91 points - mFIM at admission) + mFIM at admission" was used. By including the predicted mFIM effectiveness obtained through multiple regression analysis in this formula, we obtained the predicted mFIM at discharge (A). We also used multiple regression analysis to directly predict mFIM at discharge (B). The correlation between the predicted and the measured values of mFIM at discharge was compared between A and B. Result: The correlation coefficients were.916 for A and.878 for B. Conclusion: Calculating mFIM at discharge from mFIM effectiveness predicted by multiple regression analysis had a higher degree of predictive accuracy of mFIM at discharge than that directly predicted.
机译:背景:常用的多元线性回归分析通常用于预测中风康复的结果。但是,预测准确性可能不令人满意。本研究的目的是阐明在通过多元回归分析预测的MFIM效果中计算电动功能独立度量(MFIM)的方法的预测准确性。方法:受试者是505例中风患者,患者在康复康复医院住院。使用公式“在进入时放电时的MFIM = MFIM效应X(入院中的91点 - MFIM)。通过在该公式中通过多元回归分析获得预测的MFIM效果,我们在放电时获得了预测的MFIM。我们还使用多元回归分析直接预测放电(B)的MFIM。在A和B之间比较了预测和测量值之间的相关性和测量值。结果:对于B的A和878,相关系数为916.结论:计算MFIM从多元回归分析预测的MFIM效果的放电。在放电时具有比直接预测的更高的MFIM预测精度。

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