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DRG: Dual Relation Graph for Human-Object Interaction Detection

About

We tackle the challenging problem of human-object interaction (HOI) detection. Existing methods either recognize the interaction of each human-object pair in isolation or perform joint inference based on complex appearance-based features. In this paper, we leverage an abstract spatial-semantic representation to describe each human-object pair and aggregate the contextual information of the scene via a dual relation graph (one human-centric and one object-centric). Our proposed dual relation graph effectively captures discriminative cues from the scene to resolve ambiguity from local predictions. Our model is conceptually simple and leads to favorable results compared to the state-of-the-art HOI detection algorithms on two large-scale benchmark datasets.

Chen Gao, Jiarui Xu, Yuliang Zou, Jia-Bin Huang• 2020

Related benchmarks

TaskDatasetResultRank
Human-Object Interaction DetectionHICO-DET (test)
mAP (full)27.98
493
Human-Object Interaction DetectionV-COCO (test)
AP (Role, Scenario 1)51.4
270
Human-Object Interaction DetectionHICO-DET
mAP (Full)27.98
233
Human-Object Interaction DetectionHICO-DET Known Object (test)
mAP (Full)27.98
112
Human-Object Interaction DetectionV-COCO 1.0 (test)
AP_role (#1)51
76
Human-Object Interaction DetectionV-COCO
AP^1 Role51
65
Human-Object Interaction DetectionV-COCO
Box mAP (Scenario 1)51
32
HOI DetectionHICO-DET v1.0 (test)
mAP (Default, Full)24.53
29
HOI DetectionHICO-DET Default
Full HOI mAP24.53
11
HOI DetectionHICO-DET Known Object
Full Score27.98
10
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