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BED-SAM2: Boundary-Enhanced-Depth SAM2 via Monocular Geometric Priors
May 24, 2026 ยท Grace Period ยท ๐ CVPR 2026 Workshop
Authors
Tyler Rust, Dara McNally, Kyle O'Donnell, Colin Kelly, Chandra Kambhamettu
arXiv ID
2605.24893
Category
cs.CV: Computer Vision
Citations
0
Venue
CVPR 2026 Workshop
Abstract
Building upon the SAM2 vision foundation model for downstream segmentation, this study introduces Boundary Enhanced Depth (BED)-SAM2. The SAM2 Hiera encoder architecture is modified to directly encode monocular depth information from RGB images, thereby providing geometric cues that enhance object boundary delineation and facilitate the extraction of camouflaged object shapes. BED-SAM2 demonstrates competitive state-of-the-art performance across multiple salient and camouflaged object detection tasks with as few as five training epochs.
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