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Improving and Evaluating Hand-Object Interaction Detection

About

Understanding hands and the objects they interact with, both directly and through tools, is a key step for tasks ranging from action perception to 3D reconstruction and robotics. Our paper provides several contributions to the Hand-Object Interaction (HOI) understanding literature: (1) HOI-DETR, a new framework that introduces hand-object and object-object interactions to the Co-DETR architecture to produce a state-of-the-art method; (2) a comprehensive HOI evaluation suite of 4 diverse datasets, including a video benchmark derived from the HD-EPIC dataset and fresh annotations that improve the Hands23 benchmark and (3) a trained checkpoint that significantly improves the state of the art across Hands23, HOIST, FineBio, and HD-EPIC, including mAP gains of over 20 percentage points on Hands23 and FineBio. Our ablations confirm the contributions of each model component.

Ahmad Darkhalil, Dima Damen, David Fouhey• 2026

Related benchmarks

TaskDatasetResultRank
Hand DetectionCOCO Whole
AP5075
7
Hand DetectionOxford-Hands
AP5074
7
Hand DetectionWHIM
AP5078.1
7
1st Object DetectionHOIST
AP5076.6
3
Hand DetectionHands23
AP5093.1
3
Hand DetectionFineBio
AP5086.6
3
Hand DetectionEgoHands
AP5098.5
3
Hand-Object Interaction DetectionHD-EPIC-HOI
Frame AP72.6
3
Hand-Object Interaction DetectionHands23 original (val)
Overall AP5082.3
3
Hand-Object Interaction DetectionHands23 refined (val)
Overall AP5086.1
3
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Other info

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