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Toward a probabilistic model of eating behavior for patients with type 1 diabetes

机译:建立1型糖尿病患者饮食行为的概率模型

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There is significant motivation for eating behavior profiles in general medical research and in type 1 diabetes mellitus (T1DM) research. We hypothesize that accurate meal behavior profiles can be developed by using meal diary information. We use 42 total days of real patient data to construct a meal profile for each of 12 patients. For each patient, we compile eating behavior into a meal profile for each day consisting of meal regimes (three for a typical patient). Within each regime, we associate a probability distribution which indicates the probability of eating for consecutive 15-minute intervals throughout the day. We also estimate the probability that no meal will arrive in a given regime, and an estimated carbohydrate intake amount for each expected meal. The algorithm shows promising results in predicting meal times, but estimates of regime carbohydrate intakes and the number of regimes per day need significant improvement. We expect a substantial increase in algorithm performance given more data with which to develop profiles.
机译:在一般医学研究和1型糖尿病(T1DM)研究中,饮食行为特征具有明显的动机。我们假设可以通过使用膳食日记信息来建立准确的膳食行为特征。我们使用总共42天的真实患者数据来为12位患者中的每位患者构建膳食概况。对于每位患者,我们将每天的进餐行为汇总为由进餐方式组成的进餐概况(对于典型患者为三位)。在每个方案中,我们关联一个概率分布,该分布表示一天中连续15分钟间隔进食的概率。我们还估计了在给定制度下没有膳食到达的可能性,以及每个预期膳食的估计碳水化合物摄入量。该算法在预测用餐时间方面显示出令人鼓舞的结果,但是对方案碳水化合物摄入量和每天方案数量的估计需要显着改善。鉴于有更多数据可用于开发配置文件,我们预计算法性能会大大提高。

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