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Gait Abnormality Detection in People with Cerebral Palsy Using an Uncertainty-Based State-Space Model

机译:基于不确定度的状态空间模型对脑瘫患者的步态异常检测

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摘要

Assessment and quantification of feature uncertainty in modeling gait pattern is crucial in clinical decision making. Automatic diagnostic systems for Cerebral Palsy gait often ignored the uncertainty factor while recognizing the gait pattern. In addition, they also suffer from limited clinical interpretability. This study establishes a low-cost data acquisition set up and proposes a state-space model where the temporal evolution of gait pattern was recognized by analyzing the feature uncertainty using Dempster-Shafer theory of evidence. An attempt was also made to quantify the degree of abnormality by proposing gait deviation indexes. Results indicate that our proposed model outperformed state-of-the-art with an overall 87.5% of detection accuracy (sensitivity 80.00%, and specificity 100%). In a gait cycle of a Cerebral Palsy patient, first double limb support and left single limb support were observed to be affected mainly. Incorporation of feature uncertainty in quantifying the degree of abnormality is demonstrated to be promising. Larger value of feature uncertainty was observed for the patients having higher degree of abnormality. Sub-phase wise assessment of gait pattern improves the interpretability of the results which is crucial in clinical decision making.
机译:步态模式建模中特征不确定性的评估和量化对于临床决策至关重要。脑瘫步态的自动诊断系统在识别步态模式时通常会忽略不确定性因素。另外,它们还遭受有限的临床解释性。这项研究建立了一个低成本的数据采集装置,并提出了一种状态空间模型,其中通过使用Dempster-Shafer证据理论分析特征不确定性来识别步态模式的时间演变。还尝试通过提出步态偏离指数来量化异常程度。结果表明,我们提出的模型的性能优于最新技术,总体检测精度为87.5%(灵敏度为80.00%,特异性为100%)。在脑瘫患者的步态周期中,观察到第一双肢支持和左单肢支持主要受到影响。事实证明,将特征不确定性纳入量化异常程度是有希望的。对于异常程度较高的患者,观察到较大的特征不确定性值。步态模式的亚阶段明智评估可提高结果的可解释性,这对于临床决策至关重要。

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