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MCFNet: Multi-scale Covariance Feature Fusion Network for Real-time Semantic Segmentation (2312.07207v1)

Published 12 Dec 2023 in cs.CV and stat.ML

Abstract: The low-level spatial detail information and high-level semantic abstract information are both essential to the semantic segmentation task. The features extracted by the deep network can obtain rich semantic information, while a lot of spatial information is lost. However, how to recover spatial detail information effectively and fuse it with high-level semantics has not been well addressed so far. In this paper, we propose a new architecture based on Bilateral Segmentation Network (BiseNet) called Multi-scale Covariance Feature Fusion Network (MCFNet). Specifically, this network introduces a new feature refinement module and a new feature fusion module. Furthermore, a gating unit named L-Gate is proposed to filter out invalid information and fuse multi-scale features. We evaluate our proposed model on Cityscapes, CamVid datasets and compare it with the state-of-the-art methods. Extensive experiments show that our method achieves competitive success. On Cityscapes, we achieve 75.5% mIOU with a speed of 151.3 FPS.

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Authors (5)
  1. Xiaojie Fang (3 papers)
  2. Xingguo Song (1 paper)
  3. Xiangyin Meng (1 paper)
  4. Xu Fang (22 papers)
  5. Sheng Jin (69 papers)

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