yolov3_r50vd_dcn_obj365_pretrained_coco.yml 3.8 KB
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architecture: YOLOv3
use_gpu: true
max_iters: 55000
log_smooth_window: 20
save_dir: output
snapshot_iter: 10000
metric: COCO
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pretrain_weights: https://paddlemodels.bj.bcebos.com/object_detection/ResNet50_vd_obj365_pretrained.tar
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weights: output/yolov3_r50vd_dcn_obj365_pretrained_coco/model_final
num_classes: 80
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use_fine_grained_loss: false
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YOLOv3:
  backbone: ResNet
  yolo_head: YOLOv3Head

ResNet:
  norm_type: sync_bn
  freeze_at: 0
  freeze_norm: false
  norm_decay: 0.
  depth: 50
  feature_maps: [3, 4, 5]
  variant: d
  dcn_v2_stages: [5]

YOLOv3Head:
  anchor_masks: [[6, 7, 8], [3, 4, 5], [0, 1, 2]]
  anchors: [[10, 13], [16, 30], [33, 23],
            [30, 61], [62, 45], [59, 119],
            [116, 90], [156, 198], [373, 326]]
  norm_decay: 0.
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  yolo_loss: YOLOv3Loss
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  nms:
    background_label: -1
    keep_top_k: 100
    nms_threshold: 0.45
    nms_top_k: 1000
    normalized: false
    score_threshold: 0.01

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YOLOv3Loss:
  batch_size: 8
  ignore_thresh: 0.7
  label_smooth: false

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LearningRate:
  base_lr: 0.001
  schedulers:
  - !PiecewiseDecay
    gamma: 0.1
    milestones:
    - 40000
    - 50000
  - !LinearWarmup
    start_factor: 0.
    steps: 4000

OptimizerBuilder:
  optimizer:
    momentum: 0.9
    type: Momentum
  regularizer:
    factor: 0.0005
    type: L2

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TrainReader:
  inputs_def:
    fields: ['image', 'gt_bbox', 'gt_class', 'gt_score']
    num_max_boxes: 50
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  dataset:
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    !COCODataSet
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    image_dir: train2017
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    anno_path: annotations/instances_train2017.json
    dataset_dir: dataset/coco
    with_background: false
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  sample_transforms:
    - !DecodeImage
      to_rgb: True
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    - !RandomCrop {}
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    - !RandomFlipImage
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      is_normalized: false
    - !NormalizeBox {}
    - !PadBox
      num_max_boxes: 50
    - !BboxXYXY2XYWH {}
  batch_transforms:
    - !RandomShape
      sizes: [320, 352, 384, 416, 448, 480, 512, 544, 576, 608]
      random_inter: True
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    - !NormalizeImage
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      mean: [0.485, 0.456, 0.406]
      std: [0.229, 0.224, 0.225]
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      is_scale: False
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      is_channel_first: false
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    - !Permute
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      to_bgr: false
      channel_first: True
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    # Gt2YoloTarget is only used when use_fine_grained_loss set as true,
    # this operator will be deleted automatically if use_fine_grained_loss
    # is set as false
    - !Gt2YoloTarget
      anchor_masks: [[6, 7, 8], [3, 4, 5], [0, 1, 2]]
      anchors: [[10, 13], [16, 30], [33, 23],
                [30, 61], [62, 45], [59, 119],
                [116, 90], [156, 198], [373, 326]]
      downsample_ratios: [32, 16, 8]
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  batch_size: 8
  shuffle: true
  drop_last: true
  worker_num: 8
  bufsize: 32
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  use_process: true

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EvalReader:
  inputs_def:
    image_shape: [3, 608, 608]
    fields: ['image', 'im_size', 'im_id']
    num_max_boxes: 50
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  dataset:
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    !COCODataSet
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    dataset_dir: dataset/coco
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    anno_path: annotations/instances_val2017.json
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    image_dir: val2017
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    with_background: false
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  sample_transforms:
    - !DecodeImage
      to_rgb: True
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      with_mixup: false
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    - !ResizeImage
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      interp: 2
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      target_size: 608
    - !NormalizeImage
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      mean: [0.485, 0.456, 0.406]
      std: [0.229, 0.224, 0.225]
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      is_scale: False
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      is_channel_first: false
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    - !Permute
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      to_bgr: false
      channel_first: True
  batch_size: 8
  drop_empty: false
  worker_num: 8
  bufsize: 32
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TestReader:
  inputs_def:
    image_shape: [3, 608, 608]
    fields: ['image', 'im_size', 'im_id']
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  dataset:
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    !ImageFolder
      anno_path: annotations/instances_val2017.json
      with_background: false
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  sample_transforms:
    - !DecodeImage
      to_rgb: True
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      with_mixup: false
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    - !ResizeImage
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      interp: 2
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      target_size: 608
    - !NormalizeImage
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      mean: [0.485, 0.456, 0.406]
      std: [0.229, 0.224, 0.225]
      is_scale: True
      is_channel_first: false
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    - !Permute
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      to_bgr: false
      channel_first: True
  batch_size: 1