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Home / Proceedings / Proceedings of the AAAI Conference on Artificial Intelligence, 34

Learning Attentive Pairwise Interaction for Fine-Grained Classification

February 1, 2023

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Abstract:

Fine-grained classification is a challenging problem, due to subtle differences among highly-confused categories. Most approaches address this difficulty by learning discriminative representation of individual input image. On the other hand, humans can effectively identify contrastive clues by comparing image pairs. Inspired by this fact, this paper proposes a simple but effective Attentive Pairwise Interaction Network (API-Net), which can progressively recognize a pair of fine-grained images by interaction. Specifically, API-Net first learns a mutual feature vector to capture semantic differences in the input pair. It then compares this mutual vector with individual vectors to generate gates for each input image. These distinct gate vectors inherit mutual context on semantic differences, which allow API-Net to attentively capture contrastive clues by pairwise interaction between two images. Additionally, we train API-Net in an end-to-end manner with a score ranking regularization, which can further generalize API-Net by taking feature priorities into account. We conduct extensive experiments on five popular benchmarks in fine-grained classification. API-Net outperforms the recent SOTA methods, i.e., CUB-200-2011 (90.0%), Aircraft (93.9%), Stanford Cars (95.3%), Stanford Dogs (90.3%), and NABirds (88.1%).

Published Date: 2020-06-02

Registration: ISSN 2374-3468 (Online) ISSN 2159-5399 (Print) ISBN 978-1-57735-835-0 (10 issue set)

Copyright: Published by AAAI Press, Palo Alto, California USA Copyright © 2020, Association for the Advancement of Artificial Intelligence All Rights Reserved

Authors

Peiqin Zhuang

Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences


Yali Wang

Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences


Yu Qiao

Shenzhen Institutes of Advanced Technology, Chinese Academy of Sciences


DOI:

10.1609/aaai.v34i07.7016


Topics: AAAI

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HOW TO CITE:

Peiqin Zhuang||Yali Wang||Yu Qiao Learning Attentive Pairwise Interaction for Fine-Grained Classification Proceedings of the AAAI Conference on Artificial Intelligence, 34 (2020) 13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao Learning Attentive Pairwise Interaction for Fine-Grained Classification AAAI 2020, 13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao (2020). Learning Attentive Pairwise Interaction for Fine-Grained Classification. Proceedings of the AAAI Conference on Artificial Intelligence, 34, 13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao. Learning Attentive Pairwise Interaction for Fine-Grained Classification. Proceedings of the AAAI Conference on Artificial Intelligence, 34 2020 p.13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao. 2020. Learning Attentive Pairwise Interaction for Fine-Grained Classification. "Proceedings of the AAAI Conference on Artificial Intelligence, 34". 13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao. (2020) "Learning Attentive Pairwise Interaction for Fine-Grained Classification", Proceedings of the AAAI Conference on Artificial Intelligence, 34, p.13130-13137

Peiqin Zhuang||Yali Wang||Yu Qiao, "Learning Attentive Pairwise Interaction for Fine-Grained Classification", AAAI, p.13130-13137, 2020.

Peiqin Zhuang||Yali Wang||Yu Qiao. "Learning Attentive Pairwise Interaction for Fine-Grained Classification". Proceedings of the AAAI Conference on Artificial Intelligence, 34, 2020, p.13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao. "Learning Attentive Pairwise Interaction for Fine-Grained Classification". Proceedings of the AAAI Conference on Artificial Intelligence, 34, (2020): 13130-13137.

Peiqin Zhuang||Yali Wang||Yu Qiao. Learning Attentive Pairwise Interaction for Fine-Grained Classification. AAAI[Internet]. 2020[cited 2023]; 13130-13137.


ISSN: 2374-3468


Published by AAAI Press, Palo Alto, California USA
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