Leveraging Context to Support Automated Food Recognition in Restaurants

October 07, 2015 ยท Declared Dead ยท ๐Ÿ› 2015 IEEE Winter Conference on Applications of Computer Vision

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Authors Vinay Bettadapura, Edison Thomaz, Aman Parnami, Gregory Abowd, Irfan Essa arXiv ID 1510.02078 Category cs.CV: Computer Vision Citations 112 Venue 2015 IEEE Winter Conference on Applications of Computer Vision Last Checked 3 months ago
Abstract
The pervasiveness of mobile cameras has resulted in a dramatic increase in food photos, which are pictures reflecting what people eat. In this paper, we study how taking pictures of what we eat in restaurants can be used for the purpose of automating food journaling. We propose to leverage the context of where the picture was taken, with additional information about the restaurant, available online, coupled with state-of-the-art computer vision techniques to recognize the food being consumed. To this end, we demonstrate image-based recognition of foods eaten in restaurants by training a classifier with images from restaurant's online menu databases. We evaluate the performance of our system in unconstrained, real-world settings with food images taken in 10 restaurants across 5 different types of food (American, Indian, Italian, Mexican and Thai).
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