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COMPUTERIZED SYSTEM AND METHOD FOR ESTIMATING LEVELS OF OBESITY IN AN INSURED POPULATION

机译:估计受灾人口肥胖水平的计算机系统和方法

摘要

A computerized system and method for estimating levels of obesity in an insured population using claims data. The model uses health risk assessment data comprising age, height, and weight information as well as information about health conditions and health behaviors for a member population. Claims data is used to train a two-stage model on the member population. The first stage comprises a support vector machine, a rule-based module, and a generalized linear model that estimates the probability of obesity. The second stage comprises a regression neural network that operates on the output of the first stage and a subset of the input feature vector. Cost and utilizations in these areas, along with overall health measures as well as demographics and social factors, are inputs to a set of pattern recognition engines that perform regression. The output is the estimated body mass index of the member.
机译:一种使用索赔数据估算受保人群肥胖水平的计算机化系统和方法。该模型使用的健康风险评估数据包括年龄,身高和体重信息,以及有关成员人群健康状况和健康行为的信息。索赔数据用于在成员群体上训练两阶段模型。第一阶段包括支持向量机,基于规则的模块和估计肥胖症可能性的广义线性模型。第二阶段包括对第一阶段的输出和输入特征向量的子集进行操作的回归神经网络。这些领域的成本和利用率,以及整体健康措施以及人口统计和社会因素,都是执行回归的一组模式识别引擎的输入。输出是该成员的估计体重指数。

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