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Layered Embeddings for Amodal Instance Segmentation

2020-02-14 22:00:45
Yanfeng Liu, Eric Psota, Lance Pérez

Abstract

The proposed method extends upon the representational output of semantic instance segmentation by explicitly including both visible and occluded parts. A fully convolutional network is trained to produce consistent pixel-level embedding across two layers such that, when clustered, the results convey the full spatial extent and depth ordering of each instance. Results demonstrate that the network can accurately estimate complete masks in the presence of occlusion and outperform leading top-down bounding-box approaches. Source code available at this https URL

Abstract (translated)

URL

https://arxiv.org/abs/2002.06264

PDF

https://arxiv.org/pdf/2002.06264.pdf


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