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dc.contributor.authorSu, Zhan
dc.contributor.authorYu, Ruiyun
dc.contributor.authorZou, Shihao
dc.contributor.authorGuo, Bingyang
dc.contributor.authorCheng, Li
dc.date2025-03-01
dc.date.accessioned2026-03-11T09:40:02Z
dc.date.available2026-03-11T09:40:02Z
dc.identifier.citationZ. Su, R. Yu, S. Zou, B. Guo, L. Cheng. Spatial-Aware Multi-Level Parsing Network for Human-Object Interaction, International Journal of Interactive Multimedia and Artificial Intelligence, vol. 9, no. 2, pp. 39-48, 2025, http://dx.doi.org/10.9781/ijimai.2023.06.004es_ES
dc.identifier.urihttps://reunir.unir.net/handle/123456789/19229
dc.description.abstractHuman-Object Interaction (HOI) detection focuses on human-centered visual relationship detection, which is a challenging task due to the complexity and diversity of image content. Unlike most recent HOI detection works that only rely on paired instance-level information in the union range, our proposed Spatial-aware Multilevel Parsing Network (SMPNet) uses a multi-level information detection strategy, including instance-level visual features of detected human-object pair, part-level related features of the human body, and scene-level features extracted by the graph neural network. After fusing the three levels of features, the HOI relationship is predicted. We validate our method on two public datasets, V-COCO and HICO-DET. Compared with prior works, our proposed method achieves the state-of-the-art results on both datasets in terms of mAProle, which demonstrates the effectiveness of our proposed multi-level information detection strategyes_ES
dc.language.isoenges_ES
dc.publisherUNIRes_ES
dc.relation.urihttps://www.ijimai.org/index.php/ijimai/article/view/257es_ES
dc.rightsopenAccesses_ES
dc.subjectComputer visiones_ES
dc.subjectDeep Learninges_ES
dc.subjectGated Graph Neural Networkes_ES
dc.subjectHOIes_ES
dc.subjectImage Classificationes_ES
dc.titleSpatial-Aware Multi-Level Parsing Network for Human-Object Interactiones_ES
dc.typearticlees_ES
reunir.tag~IJIMAIes_ES
dc.identifier.doihttp://dx.doi.org/10.9781/ijimai.2023.06.004


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