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Optimizing Energy Expenditure Detection in Human Metabolic Chambers

机译:优化人体代谢腔室的能量消耗检测

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摘要

Whole-room indirect calorimeters are capable of measuring human metabolic rate in conditions representative of quasi-free-living state through measurement of oxygen consumption (VO2) and carbon dioxide production (VCO2). However, the relatively large room size required for patient comfort creates low signal-to-noise ratio for the VO2 and VCO2 signals. We proposed a wavelet-based approach to efficiently remove noise while retaining important dynamic changes in the VO2 and VCO2. We used correlated noise modeled from gas-infusion experiments superimposed on theoretical VO2 sequences to test the accuracy of a wavelet based processing method. The wavelet filtering is demonstrated to improve the accuracy and sensitivity of minute-to-minute changes in VO2, while maintaining stability during steady-state periods. The wavelet method is shown to have a lower mean absolute error and reduced total error when compared to standard methods of processing calorimeter signals.
机译:整个房间的间接量热仪能够通过测量氧气消耗量(VO2)和二氧化碳产生量(VCO2),在代表准生活状态的条件下测量人体代谢率。但是,患者舒适度所需的相对较大的房间尺寸会导致VO2和VCO2信号的信噪比较低。我们提出了一种基于小波的方法,可以有效去除噪声,同时保留VO2和VCO2的重要动态变化。我们使用从气体注入实验建模的相关噪声叠加在理论VO2序列上来测试基于小波的处理方法的准确性。小波滤波被证明可以提高VO2的每分钟变化的准确性和灵敏度,同时在稳态期间保持稳定。与处理热量计信号的标准方法相比,小波方法显示出更低的平均绝对误差和更低的总误差。

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