DJW c16313bb6a 第一次提交 9 kuukautta sitten
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README.md c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50-caffe_fpn_rpn-2conv_4conv1fc_syncbn-all_amp-lsj-100e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50-caffe_fpn_rpn-2conv_4conv1fc_syncbn-all_lsj-100e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50-caffe_fpn_rpn-2conv_4conv1fc_syncbn-all_lsj-400e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50_fpn_rpn-2conv_4conv1fc_syncbn-all_amp-lsj-100e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50_fpn_rpn-2conv_4conv1fc_syncbn-all_lsj-100e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
mask-rcnn_r50_fpn_rpn-2conv_4conv1fc_syncbn-all_lsj-50e_coco.py c16313bb6a 第一次提交 9 kuukautta sitten
metafile.yml c16313bb6a 第一次提交 9 kuukautta sitten

README.md

Strong Baselines

We train Mask R-CNN with large-scale jitter and longer schedule as strong baselines. The modifications follow those in Detectron2.

Results and Models

Backbone Style Lr schd Mem (GB) Inf time (fps) box AP mask AP Config Download
R-50-FPN pytorch 50e config [model](<>) | [log](<>)
R-50-FPN pytorch 100e config [model](<>) | [log](<>)
R-50-FPN caffe 100e 44.7 40.4 config [model](<>) | [log](<>)
R-50-FPN caffe 400e config [model](<>) | [log](<>)

Notice

When using large-scale jittering, there are sometimes empty proposals in the box and mask heads during training. This requires MMSyncBN that allows empty tensors. Therefore, please use mmcv-full>=1.3.14 to train models supported in this directory.