• KSII Transactions on Internet and Information Systems
    Monthly Online Journal (eISSN: 1976-7277)

Saliency-Assisted Collaborative Learning Network for Road Scene Semantic Segmentation


Abstract

Semantic segmentation of road scene is the key technology of autonomous driving, and the improvement of convolutional neural network architecture promotes the improvement of model segmentation performance. The existing convolutional neural network has the simplification of learning knowledge and the complexity of the model. To address this issue, we proposed a road scene semantic segmentation algorithm based on multi-task collaborative learning. Firstly, a depthwise separable convolution atrous spatial pyramid pooling is proposed to reduce model complexity. Secondly, a collaborative learning framework is proposed involved with saliency detection, and the joint loss function is defined using homoscedastic uncertainty to meet the new learning model. Experiments are conducted on the road and nature scenes datasets. The proposed method achieves 70.94% and 64.90% mIoU on Cityscapes and PASCAL VOC 2012 datasets, respectively. Qualitatively, Compared to methods with excellent performance, the method proposed in this paper has significant advantages in the segmentation of fine targets and boundaries.


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Cite this article

[IEEE Style]
H. Sima, Y. Xu, M. Du, M. Gao, J. Wang, "Saliency-Assisted Collaborative Learning Network for Road Scene Semantic Segmentation," KSII Transactions on Internet and Information Systems, vol. 17, no. 3, pp. 861-880, 2023. DOI: 10.3837/tiis.2023.03.010.

[ACM Style]
Haifeng Sima, Yushuang Xu, Minmin Du, Meng Gao, and Jing Wang. 2023. Saliency-Assisted Collaborative Learning Network for Road Scene Semantic Segmentation. KSII Transactions on Internet and Information Systems, 17, 3, (2023), 861-880. DOI: 10.3837/tiis.2023.03.010.

[BibTeX Style]
@article{tiis:38509, title="Saliency-Assisted Collaborative Learning Network for Road Scene Semantic Segmentation", author="Haifeng Sima and Yushuang Xu and Minmin Du and Meng Gao and Jing Wang and ", journal="KSII Transactions on Internet and Information Systems", DOI={10.3837/tiis.2023.03.010}, volume={17}, number={3}, year="2023", month={March}, pages={861-880}}