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- weights: output/ppyoloe_crn_m_300e_renche_1024/model_final
- pretrain_weights: https://paddledet.bj.bcebos.com/models/ppyoloe_crn_m_300e_coco.pdparams
- depth_mult: 0.67
- width_mult: 0.75
- worker_num: 4
- eval_height: &eval_height 1024
- eval_width: &eval_width 1024
- eval_size: &eval_size [*eval_height, *eval_width]
- metric: COCO
- num_classes: 22
- TrainDataset:
- !COCODataSet
- image_dir: train_images
- anno_path: train.json
- dataset_dir: /paddle/dataset/renche
- data_fields: ['image', 'gt_bbox', 'gt_class', 'is_crowd']
- EvalDataset:
- !COCODataSet
- image_dir: train_images
- anno_path: test.json
- dataset_dir: /paddle/dataset/renche
- TestDataset:
- !ImageFolder
- anno_path: test.json
- dataset_dir: /paddle/dataset/renche
- epoch: 30
- LearningRate:
- base_lr: 0.0005
- schedulers:
- - !CosineDecay
- max_epochs: 36
- - !LinearWarmup
- start_factor: 0.
- epochs: 3
- TrainReader:
- sample_transforms:
- - Decode: {}
- - RandomFlip: {}
- batch_transforms:
- - BatchRandomResize: {target_size: [960, 992, 1024, 1056, 1088], random_size: True, random_interp: True, keep_ratio: False}
- - NormalizeImage: {mean: [0.485, 0.456, 0.406], std: [0.229, 0.224, 0.225], is_scale: True}
- - Permute: {}
- - PadGT: {}
- batch_size: 4
- shuffle: true
- drop_last: true
- use_shared_memory: true
- collate_batch: true
- EvalReader:
- sample_transforms:
- - Decode: {}
- - Resize: {target_size: *eval_size, keep_ratio: False, interp: 2}
- - NormalizeImage: {mean: [0.485, 0.456, 0.406], std: [0.229, 0.224, 0.225], is_scale: True}
- - Permute: {}
- batch_size: 2
- TestReader:
- inputs_def:
- image_shape: [3, *eval_height, *eval_width]
- sample_transforms:
- - Decode: {}
- - Resize: {target_size: *eval_size, keep_ratio: False, interp: 2}
- - NormalizeImage: {mean: [0.485, 0.456, 0.406], std: [0.229, 0.224, 0.225], is_scale: True}
- - Permute: {}
- batch_size: 1
- use_gpu: true
- use_xpu: false
- log_iter: 100
- save_dir: output
- snapshot_epoch: 5
- print_flops: false
- # Exporting the model
- export:
- post_process: True # Whether post-processing is included in the network when export model.
- nms: True # Whether NMS is included in the network when export model.
- benchmark: False # It is used to testing model performance, if set `True`, post-process and NMS will not be exported.
- OptimizerBuilder:
- optimizer:
- momentum: 0.9
- type: Momentum
- regularizer:
- factor: 0.0005
- type: L2
- architecture: YOLOv3
- norm_type: sync_bn
- use_ema: true
- ema_decay: 0.9998
- YOLOv3:
- backbone: CSPResNet
- neck: CustomCSPPAN
- yolo_head: PPYOLOEHead
- post_process: ~
- CSPResNet:
- layers: [3, 6, 6, 3]
- channels: [64, 128, 256, 512, 1024]
- return_idx: [1, 2, 3]
- use_large_stem: True
- CustomCSPPAN:
- out_channels: [768, 384, 192]
- stage_num: 1
- block_num: 3
- act: 'swish'
- spp: true
- PPYOLOEHead:
- fpn_strides: [32, 16, 8]
- grid_cell_scale: 5.0
- grid_cell_offset: 0.5
- static_assigner_epoch: 100
- use_varifocal_loss: True
- loss_weight: {class: 1.0, iou: 2.5, dfl: 0.5}
- static_assigner:
- name: ATSSAssigner
- topk: 9
- assigner:
- name: TaskAlignedAssigner
- topk: 13
- alpha: 1.0
- beta: 6.0
- nms:
- name: MultiClassNMS
- nms_top_k: 1000
- keep_top_k: 100
- score_threshold: 0.01
- nms_threshold: 0.6
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