Papers › Linking Image and Text with 2-Way Nets

Linking Image and Text with 2-Way Nets

29 Aug 2016CVPR 2017 7arXiv:1608.07973archive 2025-07-28

Aviv Eisenschtat, Lior Wolf

Linking two data sources is a basic building block in numerous computer vision problems. Canonical Correlation Analysis (CCA) achieves this by utilizing a linear optimizer in order to maximize the correlation between the two views. Recent work makes use of non-linear models, including deep learning techniques, that optimize the CCA loss in some feature space. In this paper, we introduce a novel, bi-directional neural network architecture for the task of matching vectors from two data sources. Our approach employs two tied neural network channels that project the two views into a common, maximally correlated space using the Euclidean loss. We show a direct link between the correlation-based loss and Euclidean loss, enabling the use of Euclidean loss for correlation maximization. To overcome common Euclidean regression optimization problems, we modify well-known techniques to our problem, including batch normalization and dropout. We show state of the art results on a number of computer vision matching tasks including MNIST image matching and sentence-image matching on the Flickr8k, Flickr30k and COCO datasets.

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Code

aviveise/2WayNet officialmentioned in paper report

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Tasks

Sentence

Results from the paper archive 2025-07-28

TaskDatasetModelMetricValueRank at snapshotLeaderboardReport
Image Retrieval Flickr30K 1K test 2WayNet (VGG) R@1 36.0 #13 of 18 Archive leaderboard report

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Methods

Batch Normalization

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