2021
DOI: 10.48550/arxiv.2103.17123
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Camouflaged Instance Segmentation In-The-Wild: Dataset, Method, and Benchmark Suite

Trung-Nghia Le,
Yubo Cao,
Tan-Cong Nguyen
et al.

Abstract: This paper pushes the envelope on camouflaged regions to decompose them into meaningful components, namely, camouflaged instances. To promote the new task of camouflaged instance segmentation, we introduce a new large-scale dataset, namely CAMO++, by extending our preliminary CAMO dataset (camouflaged object segmentation) in terms of quantity and diversity. The new dataset substantially increases the number of images with hierarchical pixel-wise ground-truths. We also provide a benchmark suite for the task of … Show more

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Cited by 2 publications
(2 citation statements)
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“…Camouflaged object detection. Recent work has sought to detect camouflaged objects using object detectors [15,29,54] and motion cues [8,28]. The focus of our work is generating camouflaged objects, rather than detecting them.…”
Section: Related Workmentioning
confidence: 99%
“…Camouflaged object detection. Recent work has sought to detect camouflaged objects using object detectors [15,29,54] and motion cues [8,28]. The focus of our work is generating camouflaged objects, rather than detecting them.…”
Section: Related Workmentioning
confidence: 99%
“…Year Object Type #Annotated Images Ground-Truth Type COCO [48] 2014 General object 200,000 Coarse mask CityScapes [11] 2016 Road object 25,000 Coarse&Fine mask WiderFace [77] 2016 Human face 32,200 Bounding box SESIV [37] 2019 Salient object 5,700 Fine mask ADV [38] 2020 Accident object 10,000 Fine mask CAMO++ [36] 2021 Camouflaged object 5,500 Fine mask OpenForensics 2021 Forged face 115,325 Fine mask identities without repeatedly training the AEs. We achieve this by transforming GAN-based high-quality synthesized faces into original poses.…”
Section: Datasetmentioning
confidence: 99%