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Realtime single-stage instance segmentation network based on anchors
DOI:10.1016/j.compeleceng.2021.107464.png)
摘要
En 中文
In this paper, we propose an instance segmentation method uses a single-stage detector. Compared to the two-stage method, the single-stage method is simpler and easier to train. Not rely on the traditional region proposal, it directly uses pixels, which reduces the complexity of the network and significantly increases the speed. Our segmentation method is based on anchor boxes, which performs multi-scale detection by setting anchors of different sizes on multi-scale feature maps. We add a new branch to the prediction head to generate prototype masks and mask coefficients, then linearly combine them to generate mask. In our experiments, the proposed model had better performance, we got 35.12 fps on a single NVIDIA GEFORCE GTX 2080 GPU, which proves that our method is simple, effective, and faster.
Keyword:
Instance segmentation
One-stage
Mask
Anchors
期刊
C
IF:
4.9
论文数:
6.7K
被引数:
1.3W
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