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首页> 外文期刊>Journal of Rehabilitation and Assistive Technologies Engineering >Detection of the intention to grasp during reach movements:
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Detection of the intention to grasp during reach movements:

机译:检测伸手动作中要抓住的意图:

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IntroductionSoft-robotic gloves have been developed to enhance grip to support stroke patients during daily life tasks. Studies showed that users perform tasks faster without the glove as compared to with the glove. It was investigated whether it is possible to detect grasp intention earlier than using force sensors to enhance the performance of the glove.MethodsThis was studied by distinguishing reach-to-grasp movements from reach movements without the intention to grasp, using minimal inertial sensing and machine learning. Both single-user and multi-user support vector machine classifiers were investigated. Data were gathered during an experiment with healthy subjects, in which they were asked to perform grasp and reach movements.ResultsExperimental results show a mean accuracy of 98.2% for single-user and of 91.4% for multi-user classification, both using only two sensors: one on the hand and one on the middle finger. Furthermore, it was found that using only 40% of the trial length, an accuracy of 85....
机译:简介已开发出软机器人手套以增强抓地力,以在日常工作中支持中风患者。研究表明,与戴手套相比,没有戴手套的用户执行任务的速度更快。研究了是否有可能比使用力传感器来增强手套的性能更早地检测到抓握意图的方法。方法是通过使用最小惯性感测和机器来区分触手可及的动作和无意握的无意动作来进行研究。学习。研究了单用户和多用户支持向量机分类器。在健康受试者的实验过程中收集了数据,要求他们进行抓握并达到运动。结果实验结果表明,单用户平均准确度为98.2%,多用户分类平均准确度为91.4%,均使用两个传感器:一只在手上,另一只在中指。此外,发现仅使用试验长度的40%,准确度为85...。

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