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Image-Based Food Classification and Volume Estimation for Dietary Assessment: A Review

Frank P.-W. Lo, Yingnan Sun, Jianing Qiu, Benny Lo

2020IEEE Journal of Biomedical and Health Informatics148 citationsDOIOpen Access PDF

Abstract

A daily dietary assessment method named 24-hour dietary recall has commonly been used in nutritional epidemiology studies to capture detailed information of the food eaten by the participants to help understand their dietary behaviour. However, in this self-reporting technique, the food types and the portion size reported highly depends on users' subjective judgement which may lead to a biased and inaccurate dietary analysis result. As a result, a variety of visual-based dietary assessment approaches have been proposed recently. While these methods show promises in tackling issues in nutritional epidemiology studies, several challenges and forthcoming opportunities, as detailed in this study, still exist. This study provides an overview of computing algorithms, mathematical models and methodologies used in the field of image-based dietary assessment. It also provides a comprehensive comparison of the state of the art approaches in food recognition and volume/weight estimation in terms of their processing speed, model accuracy, efficiency and constraints. It will be followed by a discussion on deep learning method and its efficacy in dietary assessment. After a comprehensive exploration, we found that integrated dietary assessment systems combining with different approaches could be the potential solution to tackling the challenges in accurate dietary intake assessment.

Topics & Concepts

Nutritional epidemiologyComputer scienceField (mathematics)EstimationJudgementMachine learningArtificial intelligenceData scienceMedicineEpidemiologyMathematicsPathologyEngineeringPolitical scienceSystems engineeringLawPure mathematicsNutritional Studies and DietAdvanced Chemical Sensor Technologies
Image-Based Food Classification and Volume Estimation for Dietary Assessment: A Review | Litcius