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首页> 外文期刊>IEEE Transactions on Control Systems Technology >System Identification Approaches for Energy Intake Estimation: Enhancing Interventions for Managing Gestational Weight Gain
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System Identification Approaches for Energy Intake Estimation: Enhancing Interventions for Managing Gestational Weight Gain

机译:能量摄取估计的系统识别方法:增强管理妊娠重量增益的干预措施

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摘要

Excessive maternal weight gain during pregnancy represents a major public health concern that calls for novel and effective gestational weight management interventions. In Healthy Mom Zone (HMZ), an on-going intervention study, energy intake (EI) underreporting has been found to be an important consideration that interferes with accurate weight control assessment and the effective use of energy balance (EB) models in an intervention setting. In this paper, a series of estimation approaches that addresses measurement noise and measurement losses are developed to better understand the extent of EI underreporting. These include back-calculating EI from an EB model developed for gestational weight gain prediction, a Kalman filtering-based approach to recursively estimate EI from intermittent measurements in real time, and an approach based on semiphysical identification principles which features the capability of adjusting future self-reported EI by parameterizing the extent of underreporting. The three approaches are illustrated by evaluating with participant data obtained through the HMZ intervention study, with the results demonstrating the potential of these methods to promote the success of weight control. The pros and cons of the presented approaches are discussed to generate insights for users in the future applications.
机译:怀孕期间的过度产妇体重增加代表了一个主要的公共卫生关注,要求新颖和有效的妊娠重量管理干预措施。在健康的妈妈(HMZ)中,已经发现正在进行的干预研究,能源摄取(EI)潜行的潜在报告是一种重要的考虑因素,干扰了精确的体重控制评估和在干预中有效使用能量平衡(EB)模型环境。在本文中,开发了一系列解决测量噪声和测量损耗的估计方法,以更好地了解EI潜冲的程度。这些包括从开发的EB模型的反计算EI用于妊娠重量增益预测,基于卡尔曼滤波的方法实时从间歇测量递归地估计EI,以及一种基于半熟识别原理的方法,该方法具有调整未来自我的能力 - 通过参数化潜在报告的程度来进行ei。通过评估通过HMZ干预研究获得的参与者数据来说明三种方法,结果表明这些方法的潜力促进了体重控制的成功。讨论了所提出的方法的利弊,为未来应用中的用户生成见解。

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