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cfgs_res50_dota1.5_rsdet_8p_v2.py
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cfgs_res50_dota1.5_rsdet_8p_v2.py
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# -*- coding: utf-8 -*-
from __future__ import division, print_function, absolute_import
import numpy as np
from alpharotate.utils.pretrain_zoo import PretrainModelZoo
from configs._base_.models.retinanet_r50_fpn import *
from configs._base_.datasets.dota_detection import *
from configs._base_.schedules.schedule_1x import *
# schedule
BATCH_SIZE = 1
GPU_GROUP = "0,1,2"
NUM_GPU = len(GPU_GROUP.strip().split(','))
LR = 1e-3
SAVE_WEIGHTS_INTE = 32000 * 2
DECAY_STEP = np.array(DECAY_EPOCH, np.int32) * SAVE_WEIGHTS_INTE
MAX_ITERATION = SAVE_WEIGHTS_INTE * MAX_EPOCH
WARM_SETP = int(WARM_EPOCH * SAVE_WEIGHTS_INTE)
# dataset
DATASET_NAME = 'DOTA1.5'
CLASS_NUM = 16
# model
# backbone
pretrain_zoo = PretrainModelZoo()
PRETRAINED_CKPT = pretrain_zoo.pretrain_weight_path(NET_NAME, ROOT_PATH)
TRAINED_CKPT = os.path.join(ROOT_PATH, 'output/trained_weights')
# loss
CLS_WEIGHT = 1.0
REG_WEIGHT = 1.0
# post-processing
VIS_SCORE = 0.8
VERSION = 'RetinaNet_DOTA1.5_RSDet_2x_20210417'
"""
RSDet-8p
FLOPs: 677908676; Trainable params: 33196536
This is your evaluation result for task 1:
mAP: 0.6141596863067104
ap of each class:
plane:0.7926315950676603,
baseball-diamond:0.7967054895751493,
bridge:0.4160636156278779,
ground-track-field:0.6703192155607761,
small-vehicle:0.48422370847514784,
large-vehicle:0.5340846752056462,
ship:0.7355031533688142,
tennis-court:0.8930360680372161,
basketball-court:0.7508410392054757,
storage-tank:0.6341013296442767,
soccer-ball-field:0.5065672918094257,
roundabout:0.6849936131749105,
harbor:0.6196292257865295,
swimming-pool:0.6427293050694697,
helicopter:0.5507740648604437,
container-crane:0.11435159043854697
The submitted information is :
Description: RetinaNet_DOTA1.5_RSDet_2x_20210417_108.8w
Username: SJTU-Det
Institute: SJTU
Emailadress: yangxue-2019-sjtu@sjtu.edu.cn
TeamMembers: yangxue
"""