Papers › Image Captioning: Transforming Objects into Words

Image Captioning: Transforming Objects into Words

14 Jun 2019NeurIPS 2019 12arXiv:1906.05963archive 2025-07-28

Simao Herdade, Armin Kappeler, Kofi Boakye, Joao Soares

Image captioning models typically follow an encoder-decoder architecture which uses abstract image feature vectors as input to the encoder. One of the most successful algorithms uses feature vectors extracted from the region proposals obtained from an object detector. In this work we introduce the Object Relation Transformer, that builds upon this approach by explicitly incorporating information about the spatial relationship between input detected objects through geometric attention. Quantitative and qualitative results demonstrate the importance of such geometric attention for image captioning, leading to improvements on all common captioning metrics on the MS-COCO dataset.

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yahoo/object_relation_transformer officialmentioned in papermentioned on GitHubpytorchMIT report
Japanese-Image-Captioning/ORT-for-Japanese mentioned on GitHubpytorchMIT report
hieunghia-pat/uit-objectaoa mentioned on GitHub report

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1ran · violated contract
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pack_wrapper yahoo/object_relation_transformer/models/AttModel.py official repository ran · our draft was wrong MIT (permissive) · d2379d710eedc4ae · report
pad_unsort_packed_sequence yahoo/object_relation_transformer/models/AttModel.py official repository ran · our draft was wrong MIT (permissive) · bfac58a04b6835f5 · report
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resnet50 yahoo/object_relation_transformer/misc/resnet.py official repository unverified MIT (permissive) · fade30a7dab7a039 · report
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attention identical code first harvested elsewhere ran · our draft was wrong licence of this copy not recorded · 20bb0ff4a2d77a03 · report
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Tasks

DecoderImage CaptioningObject

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Methods

Absolute Position EncodingsAdamAttentionBPEDense ConnectionsDropoutLabel SmoothingLayer NormalizationLinear LayerMulti-Head AttentionPosition-Wise Feed-Forward LayerReLUResidual ConnectionSoftmaxTransformer

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