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Cross-Modal Retrieval in the Cooking Context: Learning Semantic Text-Image Embeddings

About

Designing powerful tools that support cooking activities has rapidly gained popularity due to the massive amounts of available data, as well as recent advances in machine learning that are capable of analyzing them. In this paper, we propose a cross-modal retrieval model aligning visual and textual data (like pictures of dishes and their recipes) in a shared representation space. We describe an effective learning scheme, capable of tackling large-scale problems, and validate it on the Recipe1M dataset containing nearly 1 million picture-recipe pairs. We show the effectiveness of our approach regarding previous state-of-the-art models and present qualitative results over computational cooking use cases.

Micael Carvalho, R\'emi Cad\`ene, David Picard, Laure Soulier, Nicolas Thome, Matthieu Cord• 2018

Related benchmarks

TaskDatasetResultRank
Image-to-recipe retrievalRecipe1M 10k setup (test)
Recall@114.9
125
Recipe-to-image retrievalRecipe1M 10k setup (test)
R@114.9
120
Image-to-recipe retrievalRecipe1M 1k setup (test)
Recall@140.2
116
Recipe-to-image retrievalRecipe1M 1k setup (test)
Recall@140.2
110
Image-to-recipe retrievalRecipe1M 1.0 (test)
Median Rank2
35
Recipe-to-image retrievalRecipe1M 1.0 (test)
MedR1
30
Cross-modal Retrieval (Image-to-Recipe)Recipe1M v1 (1k)
MedR2
28
Image-to-Textual Recipe RetrievalRecipe1M 1k items setup 1.0
MedR1
25
Textual Recipe-to-Image RetrievalRecipe1M 1k items setup 1.0
MedR1
24
Cross-modal Retrieval (Recipe-to-Image)Recipe1M v1 (1k)
Median Rank2
13
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