A back-propagation neural network model for prediction of loss of balance

Wenjian Wang, Amit Bhattacharya
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引用次数: 1

Abstract

Two neural network models were developed for the prediction of postural sway response due to exposure to risk factors including environmental lighting, job-tasks, standing surface firmness, surface oiliness, work load, peripheral vision conditions, age and gender. Variables used to measure the loss of balance were index of proximity to stability boundary and sway length. Tests showed that job-task is the main risk factor that changes the output while there is some impact by age or gender on the outcome of the model. The results from these models can be used to find risk factors that have great impact on loss of balance and therefore can help in designing intervention programs.
基于反向传播神经网络的失平衡预测模型
建立了两个神经网络模型,用于预测暴露于环境照明、工作任务、站立表面硬度、表面油性、工作负荷、周边视觉条件、年龄和性别等危险因素下的姿势摇摆反应。用于测量平衡损失的变量是接近稳定边界指数和摇摆长度。检验表明,工作任务是影响产出的主要风险因素,年龄和性别对模型结果有一定影响。这些模型的结果可以用来发现对平衡丧失有重大影响的风险因素,从而可以帮助设计干预方案。
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