中国科学院机构知识库网格
Chinese Academy of Sciences Institutional Repositories Grid
Learning Dynamic Routing for Semantic Segmentation

文献类型:会议论文

作者Yanwei, Li1,2; Lin, Song3; Yukang, Chen1,2; Zeming, Li4; Xiangyu, Zhang4; Xingang, Wang1; Jian, Sun4; Chen, Yukang; Wang, Xingang; Li, Yanwei
出版日期2020
会议日期2020.6.14-2020.6.19
会议地点美国西雅图(改为线上)
英文摘要

Recently, numerous handcrafted and searched networks have been applied for semantic segmentation. However, previous works intend to handle inputs with various scales in pre-defined static architectures, such as FCN, U-Net, and DeepLab series. This paper studies a conceptually new method to alleviate the scale variance in semantic representation, named dynamic routing. The proposed framework generates data-dependent routes, adapting to the scale distribution of each image. To this end, a differentiable gating function, called soft conditional gate, is proposed to select scale transform paths on the fly. In addition, the computational cost can be further reduced in an end-to-end manner by giving budget constraints to the gating function. We further relax the network level routing space to support multi-path propagations and skip-connections in each forward, bringing substantial network capacity. To demonstrate the superiority of the dynamic property, we compare with several static architectures, which can be modeled as special cases in the routing space. Extensive experiments are conducted on Cityscapes and PASCAL VOC 2012 to illustrate the effectiveness of the dynamic framework. Code is available at https://github.com/yanwei-li/DynamicRouting.

会议录出版者IEEE
语种英语
源URL[http://ir.ia.ac.cn/handle/173211/39163]  
专题精密感知与控制研究中心_精密感知与控制
通讯作者Xingang, Wang; Wang, Xingang
作者单位1.Institute of Automation, Chinese Academy of Sciences
2.University of Chinese Academy of Sciences
3.Xi’an Jiaotong University
4.Megvii Technology
推荐引用方式
GB/T 7714
Yanwei, Li,Lin, Song,Yukang, Chen,et al. Learning Dynamic Routing for Semantic Segmentation[C]. 见:. 美国西雅图(改为线上). 2020.6.14-2020.6.19.

入库方式: OAI收割

来源:自动化研究所

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