Stripe pooling and densely connected DeepLabv3 plus efficient semantic segmentation

Jiafei Wang, Yanyan Liu, Guoning Li
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Abstract

Currently, DeepLab is unable to utilize multiscale feature information at multiple levels, and there are often problems such as blurred segmentation boundaries, unclear detail extraction, and incorrect segmentation.This article optimizes the DeepLabv3 plus model The backbone network has been converted to a lightweight MobileNetV2 network. In Atrous Spatial Pyramid Pooling (ASPP), stripe pooling has been used to replace global average pooling, and the original hole ratio combination of 6, 12, and 18 has been changed to 3, 7, 9, and 17. A branch with R=3 has been added, as well as the use of dense connections. The improved ASPP has the advantage of higher acceptability. The experiment shows that the average intersection ratio of the improved DeepLabv3 plus model on the dataset is 69.71%, and the average pixel accuracy is 79.45%. Compared with the original network model, the improved average intersection ratio is increased by 3.2%. Using the above improved methods has improved the performance of DeepLabv3 plus, enabling more detailed information to be obtained, and improving the resolution of the model.
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条纹池和密集连接的DeepLabv3加上高效的语义分割
目前,DeepLab无法在多个层次上利用多尺度特征信息,经常存在分割边界模糊、细节提取不清晰、分割错误等问题。本文对DeepLabv3 plus模型进行了优化,骨干网已转换为轻量级的MobileNetV2网络。在astrous Spatial Pyramid Pooling (ASPP)中,采用条纹池化代替全局平均池化,将原来的6、12、18的孔比组合改为3、7、9、17。添加了一个R=3的分支,以及密集连接的使用。改进后的ASPP具有可接受性高的优点。实验表明,改进的DeepLabv3 plus模型在数据集上的平均相交率为69.71%,平均像素精度为79.45%。与原网络模型相比,改进后的平均交叉口比提高了3.2%。使用上述改进方法,提高了DeepLabv3 plus的性能,可以获得更详细的信息,提高了模型的分辨率。
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