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Development of an algorithm to predict comfort of wheelchair fit based onclinical measures

机译:基于此的轮椅适应舒适度预测算法的开发临床措施

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摘要

[Purpose] The purpose of this study was to develop an algorithm to predict the comfort of a subject seated in a wheelchair, based on common clinical measurements and without depending on verbal communication. [Subjects] Twenty healthy males (mean age: 21.5 ± 2 years; height: 171 ± 4.3 cm; weight: 56 ± 12.3 kg) participated in this study. [Methods] Each experimental session lasted for 60 min. The clinical measurements were obtained under 4 conditions (good posture, with and without a cushion; bad posture, with and without a cushion). Multiple regression analysis was performed to determine the relationship between a visual analogue scale and exercise physiology parameters (respiratory and metabolism), autonomic nervous parameters (heart rate, blood pressure, and salivary amylase level), and 3D-coordinate posture parameters (good or bad posture). [Results] For the equation (algorithm) to predict the visual analogue scale score, the adjusted multiple correlation coefficient was 0.72, the residual standard deviation was 1.2, and the prediction error was 12%. [Conclusion] The algorithm developed in this study could predict the comfort of healthy male seated in a wheelchair with 72% accuracy.
机译:[目的]本研究的目的是开发一种算法,以基于常见的临床测量结果且不依赖于言语交流来预测坐在轮椅上的受试者的舒适度。 【受试者】20例健康男性(平均年龄:21.5±2岁;身高:171±4.3 cm;体重:56±12.3 kg)参加了这项研究。 [方法]每次实验持续60分钟。临床测量是在4种情况下获得的(好姿势,有和没有垫子;姿势不好,有和没有垫子)。进行了多元回归分析,以确定视觉模拟量表与运动生理参数(呼吸和代谢),自主神经参数(心率,血压和唾液淀粉酶水平)和3D坐标姿势参数(好坏)之间的关系。姿势)。 [结果]对于预测视觉模拟量表得分的方程式(算法),调整后的多重相关系数为0.72,残差标准偏差为1.2,预测误差为12%。 [结论]本研究开发的算法可以预测坐在轮椅上的健康男性的舒适度,准确度为72%。

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