Papers › Producing augmentation-invariant embeddings from real-life imagery

Producing augmentation-invariant embeddings from real-life imagery

6 Dec 2021arXiv:2112.03415archive 2025-07-28

Sergio Manuel Papadakis, Sanjay Addicam

This article presents an efficient way to produce feature-rich, high-dimensionality embedding spaces from real-life images. The features produced are designed to be independent from augmentations used in real-life cases which appear on social media. Our approach uses convolutional neural networks (CNN) to produce an embedding space. An ArcFace head was used to train the model by employing automatically produced augmentations. Additionally, we present a way to make an ensemble out of different embeddings containing the same semantic information, a way to normalize the resulting embedding using an external dataset, and a novel way to perform quick training of these models with a high number of classes in the ArcFace head. Using this approach we achieved the 2nd place in the 2021 Facebook AI Image Similarity Challenge: Descriptor Track.

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cos_decay socom20/facebook-image-similarity-challenge-2021/modules/Facebook_model_AFMultiGPU_v22.py official repository unverified MIT (permissive) · 7b73002230abc9ea · report
flip socom20/facebook-image-similarity-challenge-2021/modules/Facebook_AFMultiGPU_model_v23_sy_v6.py official repository unverified MIT (permissive) · 97d3926abdb281c0 · report
l2_norm socom20/facebook-image-similarity-challenge-2021/modules/Facebook_AFMultiGPU_model_v23_sy_v6.py official repository unverified MIT (permissive) · 6eb906f418ecceca · report
seed_everything socom20/facebook-image-similarity-challenge-2021/modules/Facebook_AFMultiGPU_model_v23_sy_v6.py official repository unverified MIT (permissive) · 3c996e923769005a · report

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