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A Pilot Study on Continuous Breaststroke Phase Recognition with Fast Training Based on Lower-Limb Inertial Signals

机译:基于下肢惯性信号的快速训练连续蛙泳阶段识别的初步研究

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In this study, we proposed a continuous stroke phase recognition method with lower-limb inertial signals. The aim of the method was to decrease the time needed and to relieve the burdensome manual configurations in the tasks of human underwater motion recognition. The method automatically segmented the data of a period of time into stroke cycles and three sub-phases (propulsion, glide and recovery). K-nearest neighbor algorithm (k-NN) was used as the classifier to train the segmented data and classify the new data on each sample interval. To validate the proposed recognition method, three elite swimmers were recruited. We also designed an wearable sensing system for human underwater motion sensing with inertial measurement units (IMUs). With only data of 5 stroke cycles for training, the recognizer produced accurate recognition results. The average precision across the phases and the subjects was 93.7% and the average recall was 92.6%. We also investigated the time difference of the key stroke events (stroke phase transitions) between the recognized decisions and the reference ones. The average time difference was 66.2 ms, which accounted for the 4.2% of a single stroke phase. The results of the pilot study proved the feasibility of the new method for human aquatic locomotion assistance tasks. Future efforts will be paid in this new direction for more promising results.
机译:在这项研究中,我们提出了一种具有下肢惯性信号的连续冲程相位识别方法。该方法的目的是减少所需的时间并减轻人类水下运动识别任务中繁琐的手动配置。该方法将一段时间内的数据自动细分为冲程周期和三个子阶段(推进,滑行和恢复)。使用K近邻算法(k-NN)作为分类器来训练分段数据并在每个样本间隔上对新数据进行分类。为了验证所提出的识别方法,招募了三名精英游泳者。我们还设计了一种带有惯性测量单元(IMU)的用于人体水下运动感应的可穿戴感应系统。仅使用5个冲程周期的数据进行训练,识别器便产生了准确的识别结果。各阶段和受试者的平均准确度为93.7%,平均召回率为92.6%。我们还研究了识别出的决策和参考决策之间的关键笔画事件(笔画相变)的时间差。平均时间差为66.2毫秒,占单个冲程阶段的4.2%。初步研究的结果证明了该新方法对人类水上运动辅助任务的可行性。为了获得更可喜的结果,我们将朝这个新方向付出进一步的努力。

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