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Benchmark and Model Zoo

Results on DOTA v1.0

Backbone mAP Angle lr schd Mem (GB) Inf Time (fps) Aug Batch Size Configs Download
ResNet50 (1024,1024,200) 59.44 oc 1x 3.45 15.9 - 2 rotated_reppoints_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 64.55 oc 1x 3.38 14.8 - 2 rotated_retinanet_hbb_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 66.45 oc 1x 3.53 15.7 - 2 sasm_reppoints_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 68.42 le90 1x 3.38 16.2 - 2 rotated_retinanet_obb_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 69.49 le135 1x 4.05 10.5 - 2 g_reppoints_r50_fpn_1x_dota_le135 model | log
ResNet50 (1024,1024,200) 69.55 oc 1x 3.39 14.8 - 2 rotated_retinanet_hbb_gwd_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 69.60 le90 1x 3.38 14.8 - 2 rotated_retinanet_hbb_kfiou_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 69.63 le135 1x 3.45 15.7 - 2 cfa_r50_fpn_1x_dota_le135 model | log
ResNet50 (1024,1024,200) 69.76 oc 1x 3.39 15.1 - 2 rotated_retinanet_hbb_kfiou_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 69.77 le135 1x 3.38 15.1 - 2 rotated_retinanet_hbb_kfiou_r50_fpn_1x_dota_le135 model | log
ResNet50 (1024,1024,200) 69.79 le135 1x 3.38 16.6 - 2 rotated_retinanet_obb_r50_fpn_1x_dota_le135 model | log
ResNet50 (1024,1024,200) 69.80 oc 1x 3.54 12.1 - 2 r3det_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 69.94 oc 1x 3.39 14.9 - 2 rotated_retinanet_hbb_kld_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 70.18 oc 1x 3.23 15.1 - 2 r3det_tiny_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 71.83 oc 1x 3.54 12.2 - 2 r3det_kld_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 72.68 oc 1x 3.62 12.2 - 2 r3det_kfiou_ln_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 72.76 oc 1x 3.44 13.6 - 2 r3det_tiny_kld_r50_fpn_1x_dota_oc model | log
ResNet50 (1024,1024,200) 73.23 le90 1x 8.45 15.6 - 2 gliding_vertex_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 73.40 le90 1x 8.46 16.0 - 2 rotated_faster_rcnn_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 73.45 oc 40e 3.45 15.7 - 2 cfa_r50_fpn_40e_dota_oc model | log
ResNet50 (1024,1024,200) 73.91 le135 1x 3.14 15.3 - 2 s2anet_r50_fpn_1x_dota_le135 model | log
ResNet50 (1024,1024,200) 75.69 le90 1x 8.46 15.3 - 2 oriented_rcnn_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 76.08 le90 1x 8.67 13.5 - 2 roi_trans_r50_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 76.50 le90 1x 16.7 MS+RR 2 rotated_retinanet_obb_r50_fpn_1x_dota_ms_rr_le90 model | log
ReResNet50 (1024,1024,200) 76.68 le90 1x 9.32 4.0 - 2 redet_re50_refpn_1x_dota_le90 model | log
Swin-tiny (1024,1024,200) 77.51 le90 1x 10.6 - 2 roi_trans_swin_tiny_fpn_1x_dota_le90 model | log
ResNet50 (1024,1024,200) 79.66 le90 1x 13.7 MS+RR 2 roi_trans_r50_fpn_1x_dota_ms_le90 model | log
ReResNet50 (1024,1024,200) 79.87 le90 1x 4.0 MS+RR 2 redet_re50_refpn_1x_dota_ms_rr_le90 model | log
  • MS means multiple scale image split.
  • RR means random rotation.

The above models are trained with 1 * 1080Ti and inferred with 1 * 2080Ti.