SparseMask: Differentiable Connectivity Learning for Dense Image Prediction
Huikai Wu, Junge Zhang, Kaiqi Huang
Abstract
In this paper, we aim at automatically searching an efficient network architecture for dense image prediction. Particularly, we follow the encoder-decoder style and focus on designing a connectivity structure for the decoder. To achieve that, we design a densely connected network with learnable connections, named Fully Dense Network, which contains a large set of possible final connectivity structures. We then employ gradient descent to search the optimal connectivity from the dense connections. The search process is guided by a novel loss function, which pushes the weight of each connection to be binary and the connections to be sparse. The discovered connectivity achieves competitive results on two segmentation datasets, while runs more than three times faster and requires less than half parameters compared to the state-of-the-art methods. An extensive experiment shows that the discovered connectivity is compatible with various backbones and generalizes well to other dense image prediction tasks. Code is available at https://github.com/wuhuikai/SparseMask .
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Cited by top-tier papers3
- Fantastic Weights and How to Find Them: Where to Prune in Dynamic Sparse TrainingAleksandra Nowak, Bram Grooten, Decebal Constantin Mocanu, Jacek TaborNeurIPS 2023 · 23 citations
- Pruning Parameterization with Bi-level Optimization for Efficient Semantic Segmentation on the EdgeChangdi Yang, Pu Zhao, Yanyu Li, Wei Niu et al.CVPR 2023
- DCNAS: Densely Connected Neural Architecture Search for Semantic Image SegmentationXiong Zhang, Hongmin Xu, Hong Mo, Jianchao Tan et al.CVPR 2021
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