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Prediction of diabetic foot ulceration using spatial and temporal dynamic plantar pressure

机译:利用时空动态足底压力预测糖尿病足溃疡

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Diabetes Mellitus is a serious global health concern affecting about 415 million or 8.8% of adults worldwide. Among other complications of the disease, diabetic foot ulceration (DFU) is one of the most serious, possibly leading to amputation. This study presents the design, implementation and testing of a method for predicting DFU based on dynamic pressure distribution. We recorded the dynamic plantar pressure measurements during normal gait for 56 diabetic patients with and without diabetic peripheral neuropathy and 28 control non-diabetic subjects. Defining newly extracted features, employing machine learning techniques and applying Support Vector Machine classifier, achieved a classification accuracy and precision of more than 94.6% and 95.2% respectively. These promising results show the potential of the proposed method for predicting DFU allowing for early treatment and the possibility of providing diabetic patients with proper off-loading footwear to redistribute plantar pressure.
机译:糖尿病是一个严重的全球性健康问题,影响了全球约4.15亿成年人或8.8%的成年人。在该疾病的其他并发症中,糖尿病足溃疡(DFU)是最严重的并发症之一,可能导致截肢。本研究介绍了一种基于动态压力分布的DFU预测方法的设计,实现和测试。我们记录了56名有和没有糖尿病周围神经病变的糖尿病患者和28名对照非糖尿病患者在正常步态中的动态足底压力测量结果。使用机器学习技术和支持向量机分类器对新提取的特征进行定义,分别实现了94.6%和95.2%以上的分类准确率和精确度。这些有希望的结果表明,所提出的预测DFU的方法具有潜力,可以进行早期治疗,并且有可能为糖尿病患者提供适当的减负鞋,以重新分配足底压力。

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