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Visual feature modeling and refinement with application in dietary assessment.

机译:视觉特征建模和完善及其在膳食评估中的应用。

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摘要

There has been rapid emergence of technologies for improving our lives and health. However, the technologies for real-time monitoring of diet are still in their infancy. In this thesis we describe an imaging based tool to assess diet. Meal images taken before and after eating allow for the automatic estimation of consumed foods using image processing and analysis methods. In this thesis we have investigated features for efficient visual characterization of food items, including color, texture and local descriptors. Emphasis is given to textural features by describing three unique texture descriptors for both texture classification and retrieval that can be used to characterize food items. We describe a classification system for food identification that can be extended to other object classification tasks. Multiple feature spaces are independently classified and corresponding decisions are fused together according to a set of rules to achieve a final decision. Potential misclassifications are corrected by using contextual information, such as object interaction, and information from the confusion matrix on the validation dataset. We evaluated our models based on food datasets from controlled and natural eating events and on publicly available object recognition benchmark datasets.;A database architecture is described for capturing and indexing information from our food imaging system. This database system has been complemented with a web interface that allows researchers to monitor patients in real-time, and interact with the dietary data in unique ways. This system provide tools for nutritionists and the health research community that can be used for further data mining to extract diet pattern of individuals and/or social groups.
机译:改善我们的生活和健康的技术迅速出现。但是,用于饮食实时监控的技术仍处于起步阶段。在这篇论文中,我们描述了一种基于图像的饮食评估工具。进餐前后的进餐图像可以使用图像处理和分析方法自动估算食用食物。在本文中,我们研究了食品的有效视觉特征,包括颜色,质地和局部描述符。通过描述三个用于纹理分类和检索的独特纹理描述符(可以用来表征食品)来强调纹理特征。我们描述了一种用于食品识别的分类系统,该系统可以扩展到其他对象分类任务。多个特征空间被独立分类,并且根据一组规则将相应的决策融合在一起以实现最终决策。通过使用上下文信息(例如对象交互作用)以及来自验证数据集上混淆矩阵的信息来纠正潜在的错误分类。我们基于受控和自然饮食事件中的食物数据集以及可公开获得的物体识别基准数据集对模型进行了评估;描述了一种数据库体系结构,用于捕获和索引来自食物成像系统的信息。该数据库系统已经补充了一个网络界面,使研究人员可以实时监控患者,并以独特的方式与饮食数据进行交互。该系统为营养学家和健康研究社区提供工具,可用于进一步的数据挖掘以提取个人和/或社会群体的饮食模式。

著录项

  • 作者

    Bosch Ruiz, Marc.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Electronics and Electrical.
  • 学位 Ph.D.
  • 年度 2012
  • 页码 199 p.
  • 总页数 199
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

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