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Papers/Inverse Cooking: Recipe Generation from Food Images

Inverse Cooking: Recipe Generation from Food Images

Amaia Salvador, Michal Drozdzal, Xavier Giro-i-Nieto, Adriana Romero

2018-12-14CVPR 2019 6RetrievalRecipe Generation
PaperPDFCodeCodeCodeCode

Abstract

People enjoy food photography because they appreciate food. Behind each meal there is a story described in a complex recipe and, unfortunately, by simply looking at a food image we do not have access to its preparation process. Therefore, in this paper we introduce an inverse cooking system that recreates cooking recipes given food images. Our system predicts ingredients as sets by means of a novel architecture, modeling their dependencies without imposing any order, and then generates cooking instructions by attending to both image and its inferred ingredients simultaneously. We extensively evaluate the whole system on the large-scale Recipe1M dataset and show that (1) we improve performance w.r.t. previous baselines for ingredient prediction; (2) we are able to obtain high quality recipes by leveraging both image and ingredients; (3) our system is able to produce more compelling recipes than retrieval-based approaches according to human judgment. We make code and models publicly available.

Results

TaskDatasetMetricValueModel
Recipe GenerationRecipe1MF148.61Set Transformer
Recipe GenerationRecipe1MMean IoU32.11Set Transformer

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