Single-View Food Portion Estimation Based on Geometric Models

S. Fang, Chang Liu, F. Zhu, E. Delp, C. Boushey
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引用次数: 54

Abstract

In this paper we present a food portion estimation technique based on a single-view food image used for the estimation of the amount of energy (in kilocalories) consumed at a meal. Unlike previous methods we have developed, the new technique is capable of estimating food portion without manual tuning of parameters. Although single-view 3D scene reconstruction is in general an ill-posed problem, the use of geometric models such as the shape of a container can help to partially recover 3D parameters of food items in the scene. Based on the estimated 3D parameters of each food item and a reference object in the scene, the volume of each food item in the image can be determined. The weight of each food can then be estimated using the density of the food item. We were able to achieve an error of less than 6% for energy estimation of an image of a meal assuming accurate segmentation and food classification.
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基于几何模型的单视图食物分量估计
在本文中,我们提出了一种基于单视图食物图像的食物分量估计技术,用于估计一顿饭消耗的能量(以千卡为单位)。与我们以前开发的方法不同,新技术能够在不手动调整参数的情况下估计食物的比例。虽然单视图3D场景重建通常是一个病态问题,但使用几何模型(如容器的形状)可以帮助部分恢复场景中食物的3D参数。根据预估的每一种食物的三维参数和场景中的一个参考物体,可以确定图像中每一种食物的体积。然后可以利用食物的密度来估计每种食物的重量。假设准确的分割和食物分类,我们能够实现膳食图像能量估计的误差小于6%。
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