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Perceptual AI Lab's (Prof. Chanho Eom) paper accepted in ESWA (JCR Top 7%, IF: 7.5)

관리자 │ 2024-09-20

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Our paper of Perceptual AI Lab (PAI Lab) is accepted to Expert Systems With Applications (ESWA) 2025, JCR Top 7% Journal [LINK]


Title: 

Cerberus: Attribute-based person re-identification using semantic IDs


Authors:

Chanho Eom, Geon Lee, Kyunghwan Cho, Hyeonseok Jung, Moonsub Jin and Bumsub Ham


Abstract: 

We introduce a new framework, dubbed Cerberus, for attribute-based person re-identification (reID). Our approach leverages person attribute labels to learn local and global person representations that encode specific traits, such as gender and clothing style. To achieve this, we define semantic IDs (SIDs) by combining attribute labels, and use a semantic guidance loss to align the person representations with the prototypical features of corresponding SIDs, encouraging the representations to encode the relevant semantics. Simultaneously, we enforce the representations of the same person to be embedded closely, enabling recognizing subtle differences in appearance to discriminate persons sharing the same attribute labels. To increase the generalization ability on unseen data, we also propose a regularization method that takes advantage of the relationships between SID prototypes. Our framework performs individual comparisons of local and global person representations between query and gallery images for attribute-based reID. By exploiting the SID prototypes aligned with the corresponding representations, it can also perform person attribute recognition (PAR) and attribute-based person search (APS) without bells and whistles. Experimental results on standard benchmarks on attribute- based person reID, Market-1501 and DukeMTMC, demonstrate the superiority of our model compared to the state of the art.



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