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基于应用程序的食物日记中观察到的卡路里补偿模式。

Calorie Compensation Patterns Observed in App-Based Food Diaries.

机构信息

Department of Electrical and Computer Engineering, Rice University, Houston, TX 77005, USA.

出版信息

Nutrients. 2023 Sep 16;15(18):4007. doi: 10.3390/nu15184007.

Abstract

Self-regulation of food intake is necessary for maintaining a healthy body weight. One of the characteristics of self-regulation is calorie compensation. Calorie compensation refers to adjusting the current meal's energy content based on the energy content of the previous meal(s). Preload test studies measure a single instance of compensation in a controlled setting. The measurement of calorie compensation in free-living conditions has largely remained unexplored. This paper proposes a methodology that leverages extensive app-based observational food diary data to measure an individual's calorie compensation profile in free-living conditions. Instead of a single compensation index followed in preload-test studies, we present the compensation profile as a distribution of days a user exhibits under-compensation, overcompensation, non-compensation, and precise compensation. We applied our methodology to the public food diary data of 1622 MyFitnessPal users. We empirically established that four weeks of food diaries were sufficient to characterize a user's compensation profile accurately. We observed that meal compensation was more likely than day compensation. Dinner compensation had a higher likelihood than lunch compensation. Precise compensation was the least likely. Users were more likely to overcompensate for missing calories than for additional calories. The consequences of poor compensatory behavior were reflected in their adherence to their daily calorie goal. Our methodology could be applied to food diaries to discover behavioral phenotypes of poor compensatory behavior toward forming an early behavioral marker for weight gain.

摘要

自我控制食物摄入对于维持健康体重是必要的。自我控制的一个特点是卡路里补偿。卡路里补偿是指根据前一餐(或几餐)的能量含量来调整当前餐的能量含量。预负荷测试研究在受控环境中测量单次补偿。在自由生活条件下对卡路里补偿的测量在很大程度上仍未得到探索。本文提出了一种利用广泛基于应用程序的观测性食物日记数据在自由生活条件下测量个体卡路里补偿情况的方法。我们提出的补偿情况作为用户表现出欠补偿、过补偿、非补偿和精确补偿的天数分布,而不是预负荷测试研究中遵循的单一补偿指数。我们将我们的方法应用于 1622 名 MyFitnessPal 用户的公共食物日记数据。我们通过经验证明,四周的食物日记足以准确描述用户的补偿情况。我们观察到,餐补偿比日补偿更常见。晚餐补偿比午餐补偿更常见。精确补偿是最不可能的。用户更有可能因错过卡路里而过度补偿,而不是因额外摄入卡路里而过度补偿。不良补偿行为的后果反映在他们对每日卡路里目标的遵守程度上。我们的方法可以应用于食物日记,以发现不良补偿行为的行为表型,从而为体重增加形成早期行为标记。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/3892/10536014/62e5783919a2/nutrients-15-04007-g001.jpg

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