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NeuMORE: Ontology in stroke recovery

机译:Neumore:中风恢复的本体论

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Hemiparesis is the most common impairment after stroke, and the initial severity of hemiparesis had been the strongest predictor of neuromotor functional recovery level. However, the intervention response of stroke survivors does not always correlate with their initial level of impairment, which implies the existence of other factors that may significantly affect stroke survivors' recovery process. It is critical to consider these factors in a principled, comprehensive way so that physical rehabilitation (PR) researchers may predict which stroke survivors will respond best to therapy and, as a result, to determine if a particular type of therapy is a more optimal match. Currently, such prediction is primarily a manual process and remains a challenging task to PR researchers and clinicians. Based upon a domain-specific ontology, NeuMORE, we propose a computing framework that aims to facilitate knowledge acquisition from existing sources via semantics-enhanced data mining (SEDM) techniques. It will assist PR researchers and clinicians in better predicting stroke survivors' neuromotor functional recovery level, and will help physical therapists customize most effective intervention therapy plans for individual stroke survivors.
机译:偏瘫是卒中后最常见的损伤,偏瘫的初始严重程度是神经大通功能恢复水平最强的预测因子。然而,中风幸存者的干预响应并不总是与他们初始损伤水平相关,这意味着存在可能会显着影响中风幸存者的恢复过程的其他因素。以原则状的方式考虑这些因素是至关重要的,以便物理康复(PR)研究人员预测哪些中风幸存者将响应最佳治疗,结果是确定特定类型的治疗是否更加最佳。目前,这种预测主要是手动过程,仍然是PR研究人员和临床医生的具有挑战性的任务。基于Neumore的特定于域的本体,我们提出了一种计算框架,该计算框架旨在通过语义增强的数据挖掘(SEDM)技术从现有来源中促进知识获取。它将协助PR研究人员和临床医生更好地预测中风幸存者的神经大通功能恢复水平,并有助于物理治疗师定制个体中风幸存者的最有效的干预治疗计划。

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