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CompFeat: Comprehensive Feature Aggregation for Video Instance Segmentation
December 07, 2020 ยท Entered Twilight ยท ๐ AAAI Conference on Artificial Intelligence
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Repo contents: README.md, figs
Authors
Yang Fu, Linjie Yang, Ding Liu, Thomas S. Huang, Humphrey Shi
arXiv ID
2012.03400
Category
cs.CV: Computer Vision
Citations
76
Venue
AAAI Conference on Artificial Intelligence
Repository
https://github.com/SHI-Labs/CompFeat-for-Video-Instance-Segmentation
โญ 19
Last Checked
2 months ago
Abstract
Video instance segmentation is a complex task in which we need to detect, segment, and track each object for any given video. Previous approaches only utilize single-frame features for the detection, segmentation, and tracking of objects and they suffer in the video scenario due to several distinct challenges such as motion blur and drastic appearance change. To eliminate ambiguities introduced by only using single-frame features, we propose a novel comprehensive feature aggregation approach (CompFeat) to refine features at both frame-level and object-level with temporal and spatial context information. The aggregation process is carefully designed with a new attention mechanism which significantly increases the discriminative power of the learned features. We further improve the tracking capability of our model through a siamese design by incorporating both feature similarities and spatial similarities. Experiments conducted on the YouTube-VIS dataset validate the effectiveness of proposed CompFeat. Our code will be available at https://github.com/SHI-Labs/CompFeat-for-Video-Instance-Segmentation.
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