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A newer version of the Gradio SDK is available:
5.6.0
Cityscapes Dataset
[DATASET]
@inproceedings{Cordts2016Cityscapes,
title={The Cityscapes Dataset for Semantic Urban Scene Understanding},
author={Cordts, Marius and Omran, Mohamed and Ramos, Sebastian and Rehfeld, Timo and Enzweiler, Markus and Benenson, Rodrigo and Franke, Uwe and Roth, Stefan and Schiele, Bernt},
booktitle={Proc. of the IEEE Conference on Computer Vision and Pattern Recognition (CVPR)},
year={2016}
}
Common settings
- All baselines were trained using 8 GPU with a batch size of 8 (1 images per GPU) using the linear scaling rule to scale the learning rate.
- All models were trained on
cityscapes_train
, and tested oncityscapes_val
. - 1x training schedule indicates 64 epochs which corresponds to slightly less than the 24k iterations reported in the original schedule from the Mask R-CNN paper
- COCO pre-trained weights are used to initialize.
- A conversion script is provided to convert Cityscapes into COCO format. Please refer to install.md for details.
CityscapesDataset
implemented three evaluation methods.bbox
andsegm
are standard COCO bbox/mask AP.cityscapes
is the cityscapes dataset official evaluation, which may be slightly higher than COCO.
Faster R-CNN
Backbone | Style | Lr schd | Scale | Mem (GB) | Inf time (fps) | box AP | Config | Download |
---|---|---|---|---|---|---|---|---|
R-50-FPN | pytorch | 1x | 800-1024 | 5.2 | - | 40.3 | config | model | log |