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ppyoloe_crn_l_36e_bdd100kdet.yml
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ppyoloe_crn_l_36e_bdd100kdet.yml
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_BASE_: [
'../datasets/coco_detection.yml',
'../runtime.yml',
'../ppyoloe/_base_/optimizer_300e.yml',
'../ppyoloe/_base_/ppyoloe_crn.yml',
'../ppyoloe/_base_/ppyoloe_reader.yml',
]
log_iter: 100
snapshot_epoch: 4
weights: output/ppyoloe_crn_l_36e_bdd100kdet/model_final
pretrain_weights: https://paddledet.bj.bcebos.com/models/ppyoloe_crn_l_300e_coco.pdparams
depth_mult: 1.0
width_mult: 1.0
num_classes: 10
TrainDataset:
!COCODataSet
image_dir: images/100k/train
anno_path: labels/det_20/det_train_cocofmt.json
dataset_dir: dataset/bdd100k
data_fields: ['image', 'gt_bbox', 'gt_class', 'is_crowd']
EvalDataset:
!COCODataSet
image_dir: images/100k/val
anno_path: labels/det_20/det_val_cocofmt.json
dataset_dir: dataset/bdd100k
TestDataset:
!ImageFolder
anno_path: labels/det_20/det_val_cocofmt.json
dataset_dir: dataset/bdd100k
TrainReader:
batch_size: 8
epoch: 36
LearningRate:
base_lr: 0.001
schedulers:
- !CosineDecay
max_epochs: 43
- !LinearWarmup
start_factor: 0.
epochs: 1
PPYOLOEHead:
static_assigner_epoch: -1
nms:
name: MultiClassNMS
nms_top_k: 1000
keep_top_k: 100
score_threshold: 0.01
nms_threshold: 0.6