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Detecting Simulated Sprained Ankle Plantar Pressure Pattern Using Artificial Neural Network

机译:用人工神经网络检测模拟扭伤的脚踝跖形压力模式

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Ankle sprains are one of the most common injuries during sport activities. Gait impairment is a significant problem in ankle sprained cases, leading to decreased activity and limitations in function. The importance of early assessment of sprained ankle is clear. The goal of this early assessment is to start early treatment that can limit the necessary time of rest for the patient. Limiting the rest time is very important specially for an injured athlete who wants to decrease the time lost in practice. The aim of the current study was first, to simulate the pressure distribution under the normal foot and an ankle sprained foot, and second, using artificial neural networks for classifying the normal and the simulated sprained ankle plantar pressure patterns.
机译:踝关节扭伤是运动活动中最常见的伤害之一。步态损伤是踝关节扭伤的案例中的重大问题,导致功能下降和局限性。早期评估扭伤踝关节的重要性很清楚。这一早期评估的目标是开始早期治疗,以限制患者的休息时间。限制休息时间非常重要,特别是对于想要减少在实践中丢失的时间的受伤运动员。首先,目前研究的目的是模拟正常脚下下的压力分布和脚踝扭伤的脚,而第二,使用人工神经网络来分类正常和模拟扭伤的踝部跖跖。

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