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基于邻居的全膝关节置换术后身体功能预测。

Neighbors-based prediction of physical function after total knee arthroplasty.

机构信息

Department of Biostatistics and Informatics, Colorado School of Public Health, University of Colorado, Aurora, CO, USA.

Netherlands Organization for Applied Scientific Research TNO, Leiden, The Netherlands.

出版信息

Sci Rep. 2021 Aug 18;11(1):16719. doi: 10.1038/s41598-021-94838-6.

Abstract

The purpose of this study was to develop and test personalized predictions for functional recovery after Total Knee Arthroplasty (TKA) surgery, using a novel neighbors-based prediction approach. We used data from 397 patients with TKA to develop the prediction methodology and then tested the predictions in a temporally distinct sample of 202 patients. The Timed Up and Go (TUG) Test was used to assess physical function. Neighbors-based predictions were generated by estimating an index patient's prognosis from the observed recovery data of previous similar patients (a.k.a., the index patient's "matches"). Matches were determined by an adaptation of predictive mean matching. Matching characteristics included preoperative TUG time, age, sex and Body Mass Index. The optimal number of matches was determined to be m = 35, based on low bias (- 0.005 standard deviations), accurate coverage (50% of the realized observations within the 50% prediction interval), and acceptable precision (the average width of the 50% prediction interval was 2.33 s). Predictions were well-calibrated in out-of-sample testing. These predictions have the potential to inform care decisions both prior to and following TKA surgery.

摘要

本研究旨在开发并测试基于邻域的个体化预测方法,以预测全膝关节置换术(Total Knee Arthroplasty,TKA)后的功能恢复情况。我们使用了 397 例 TKA 患者的数据来开发预测方法,然后在 202 例时间上不同的患者样本中对预测进行了测试。采用计时起立行走测试(Timed Up and Go,TUG)来评估身体功能。邻域预测是通过从先前类似患者的观察恢复数据中估计索引患者的预后来生成的(即,索引患者的“匹配者”)。匹配者通过预测均值匹配的改编来确定。匹配特征包括术前 TUG 时间、年龄、性别和体重指数。基于低偏差(-0.005 个标准差)、准确的覆盖范围(50%的实际观测值在 50%预测区间内)和可接受的精度(50%预测区间的平均宽度为 2.33 秒),确定最佳匹配数量为 m=35。在样本外测试中,预测具有良好的校准能力。这些预测有潜力在 TKA 手术前后为护理决策提供信息。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/fdb8/8373960/7c45de377cd3/41598_2021_94838_Fig1_HTML.jpg

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