论文标题

个人食品模型

Personal Food Model

论文作者

Rostami, Ali, Pandey, Vaibhav, Nag, Nitish, Wang, Vesper, Jain, Ramesh

论文摘要

食物是生命的核心。食物为我们为身体提供了能量和基础基础,也是欢乐和新体验的主要来源。整体经济的很大一部分与粮食有关。不同社区使用计算方法的孤岛来解决食品科学,分销,加工和消费。在本文中,我们对食品计算采用以人为中心的多媒体和多模式的观点,并展示了多媒体和食物计算是如何协同和互补的。 享受食物是一种真正的多媒体体验,涉及视觉,味道,气味甚至声音,可以使用多媒体食品记录仪捕获。可以使用可用可穿戴设备的多模式数据流来捕获对食物的生物响应。这种方法的核心是个人食品模型。个人食品模型是个人食品相关特征的数字化表示。它旨在在食品推荐系统中使用,以提供与饮食相关的建议,以改善用户的生活质量。为了对每个人的食物相关特征进行建模,必须使用优先的个人食品模型来捕捉与食物相关的享受,并使用其生物学个人食品模型对食物的生物学反应。受3维颜色模型的功能启发,我们引入了一个6维的味觉空间,用于捕获烹饪特征和个人喜好。我们使用事件挖掘方法将食物与其他生活和生物事件联系起来,以建立一个预测模型,该模型也可以在新兴的食物推荐系统中有效使用。

Food is central to life. Food provides us with energy and foundational building blocks for our body and is also a major source of joy and new experiences. A significant part of the overall economy is related to food. Food science, distribution, processing, and consumption have been addressed by different communities using silos of computational approaches. In this paper, we adopt a person-centric multimedia and multimodal perspective on food computing and show how multimedia and food computing are synergistic and complementary. Enjoying food is a truly multimedia experience involving sight, taste, smell, and even sound, that can be captured using a multimedia food logger. The biological response to food can be captured using multimodal data streams using available wearable devices. Central to this approach is the Personal Food Model. Personal Food Model is the digitized representation of the food-related characteristics of an individual. It is designed to be used in food recommendation systems to provide eating-related recommendations that improve the user's quality of life. To model the food-related characteristics of each person, it is essential to capture their food-related enjoyment using a Preferential Personal Food Model and their biological response to food using their Biological Personal Food Model. Inspired by the power of 3-dimensional color models for visual processing, we introduce a 6-dimensional taste-space for capturing culinary characteristics as well as personal preferences. We use event mining approaches to relate food with other life and biological events to build a predictive model that could also be used effectively in emerging food recommendation systems.

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