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MODEL: |
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META_ARCHITECTURE: "RetinaNet" |
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BACKBONE: |
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NAME: "build_retinanet_resnet_fpn_backbone" |
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RESNETS: |
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OUT_FEATURES: ["res3", "res4", "res5"] |
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ANCHOR_GENERATOR: |
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SIZES: !!python/object/apply:eval ["[[x, x * 2**(1.0/3), x * 2**(2.0/3) ] for x in [32, 64, 128, 256, 512 ]]"] |
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FPN: |
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IN_FEATURES: ["res3", "res4", "res5"] |
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RETINANET: |
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IOU_THRESHOLDS: [0.4, 0.5] |
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IOU_LABELS: [0, -1, 1] |
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SMOOTH_L1_LOSS_BETA: 0.0 |
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DATASETS: |
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TRAIN: ("coco_2017_train",) |
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TEST: ("coco_2017_val",) |
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SOLVER: |
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IMS_PER_BATCH: 16 |
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BASE_LR: 0.01 |
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STEPS: (60000, 80000) |
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MAX_ITER: 90000 |
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INPUT: |
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MIN_SIZE_TRAIN: (640, 672, 704, 736, 768, 800) |
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VERSION: 2 |
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