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Context Encoding for Semantic Segmentation

Introduction

[ALGORITHM]

@InProceedings{Zhang_2018_CVPR,
author = {Zhang, Hang and Dana, Kristin and Shi, Jianping and Zhang, Zhongyue and Wang, Xiaogang and Tyagi, Ambrish and Agrawal, Amit},
title = {Context Encoding for Semantic Segmentation},
booktitle = {The IEEE Conference on Computer Vision and Pattern Recognition (CVPR)},
month = {June},
year = {2018}
}

Results and models

Cityscapes

Method Backbone Crop Size Lr schd Mem (GB) Inf time (fps) mIoU mIoU(ms+flip) download
encnet R-50-D8 512x1024 40000 8.6 4.58 75.67 77.08 model | log
encnet R-101-D8 512x1024 40000 12.1 2.66 75.81 77.21 model | log
encnet R-50-D8 769x769 40000 9.8 1.82 76.24 77.85 model | log
encnet R-101-D8 769x769 40000 13.7 1.26 74.25 76.25 model | log
encnet R-50-D8 512x1024 80000 - - 77.94 79.13 model | log
encnet R-101-D8 512x1024 80000 - - 78.55 79.47 model | log
encnet R-50-D8 769x769 80000 - - 77.44 78.72 model | log
encnet R-101-D8 769x769 80000 - - 76.10 76.97 model | log

ADE20K

Method Backbone Crop Size Lr schd Mem (GB) Inf time (fps) mIoU mIoU(ms+flip) download
encnet R-50-D8 512x512 80000 10.1 22.81 39.53 41.17 model | log
encnet R-101-D8 512x512 80000 13.6 14.87 42.11 43.61 model | log
encnet R-50-D8 512x512 160000 - - 40.10 41.71 model | log
encnet R-101-D8 512x512 160000 - - 42.61 44.01 model | log