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Brunnstrom stage automatic evaluation for stroke patients using extreme learning machine

机译:使用极限学习机对脑卒中患者进行Brunnstrom阶段自动评估

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摘要

Brunnstrom stage is widely used to evaluate the movement function of stroke patients during rehabilitation by physicians. In this paper, a new method, which is based on extreme learning machine (ELM) and the Internet technology, is proposed to realize intelligent Brunnstrom stages evaluation for upper limb movement function of stroke patients. Preliminary experiment has been conducted with movement data collected from 23 stroke patients and 4 healthy people. The experiment results show that, compared with the experienced physicians evaluation results, the accuracy of the established ELM model can reach 92.1%, which means the proposed method is helpful for physicians to remotely evaluate those stroke patients who finish rehabilitation exercises at home or community, and is helpful to solving the problem of the lack of medical resource and the high cost of inpatient rehabilitation.
机译:Brunnstrom阶段被医生广泛用于评估中风患者在康复期间的运动功能。本文提出了一种基于极限学习机(ELM)和Internet技术的新方法,以实现对脑卒中患者上肢运动功能的智能Brunnstrom阶段评估。初步实验已从23名中风患者和4名健康人收集的运动数据中进行。实验结果表明,与经验丰富的医师评价结果相比,所建立的ELM模型的准确性可以达到92.1%,说明该方法对医师远程评价在家中或社区完成康复锻炼的脑卒中患者有帮助。有助于解决医疗资源不足和住院康复费用高的问题。

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