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RecipeBowl: A Cooking Recommender for Ingredients and Recipes Using Set Transformer

Authors
Kim, KeonwooPark, DonghyeonSpranger, MichaelMaruyama, KanaKang, Jaewoo
Issue Date
2021
Publisher
IEEE-INST ELECTRICAL ELECTRONICS ENGINEERS INC
Keywords
Task analysis; Predictive models; Breast; Transformers; Dairy products; Training; Sugar; Food ingredient combination; food ingredient recommendation; food ingredient relations; recipe context learning; recipe recommendation; set representation learning
Citation
IEEE ACCESS, v.9, pp.143623 - 143633
Indexed
SCIE
SCOPUS
Journal Title
IEEE ACCESS
Volume
9
Start Page
143623
End Page
143633
URI
https://scholar.korea.ac.kr/handle/2021.sw.korea/138681
DOI
10.1109/ACCESS.2021.3120265
ISSN
2169-3536
Abstract
Countless possibilities of recipe combinations challenge us to determine which additional ingredient goes well with others. In this work, we propose RecipeBowl which is a cooking recommendation system that takes a set of ingredients and cooking tags as input and suggests possible ingredient and recipe choices. We formulate a recipe completion task to train RecipeBowl on our constructed dataset where the model predicts a target ingredient previously eliminated from the original recipe. The RecipeBowl consists of a set encoder and a 2-way decoder for prediction. For the set encoder, we utilize the Set Transformer that builds meaningful set representations. Overall, our model builds a set representation of an leave-one-out recipe and maps it to the ingredient and recipe embedding space. Experimental results demonstrate the effectiveness of our approach. Furthermore, analysis on model predictions and interpretations show interesting insights related to cooking knowledge.
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