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| # dataset settings | |
| dataset_type = 'DeepFashionDataset' | |
| data_root = 'data/DeepFashion/In-shop/' | |
| img_norm_cfg = dict( | |
| mean=[123.675, 116.28, 103.53], std=[58.395, 57.12, 57.375], to_rgb=True) | |
| train_pipeline = [ | |
| dict(type='LoadImageFromFile'), | |
| dict(type='LoadAnnotations', with_bbox=True, with_mask=True), | |
| dict(type='Resize', img_scale=(750, 1101), keep_ratio=True), | |
| dict(type='RandomFlip', flip_ratio=0.5), | |
| dict(type='Normalize', **img_norm_cfg), | |
| dict(type='Pad', size_divisor=32), | |
| dict(type='DefaultFormatBundle'), | |
| dict(type='Collect', keys=['img', 'gt_bboxes', 'gt_labels', 'gt_masks']), | |
| ] | |
| test_pipeline = [ | |
| dict(type='LoadImageFromFile'), | |
| dict( | |
| type='MultiScaleFlipAug', | |
| img_scale=(750, 1101), | |
| flip=False, | |
| transforms=[ | |
| dict(type='Resize', keep_ratio=True), | |
| dict(type='RandomFlip'), | |
| dict(type='Normalize', **img_norm_cfg), | |
| dict(type='Pad', size_divisor=32), | |
| dict(type='ImageToTensor', keys=['img']), | |
| dict(type='Collect', keys=['img']), | |
| ]) | |
| ] | |
| data = dict( | |
| imgs_per_gpu=2, | |
| workers_per_gpu=1, | |
| train=dict( | |
| type=dataset_type, | |
| ann_file=data_root + 'annotations/DeepFashion_segmentation_query.json', | |
| img_prefix=data_root + 'Img/', | |
| pipeline=train_pipeline, | |
| data_root=data_root), | |
| val=dict( | |
| type=dataset_type, | |
| ann_file=data_root + 'annotations/DeepFashion_segmentation_query.json', | |
| img_prefix=data_root + 'Img/', | |
| pipeline=test_pipeline, | |
| data_root=data_root), | |
| test=dict( | |
| type=dataset_type, | |
| ann_file=data_root + | |
| 'annotations/DeepFashion_segmentation_gallery.json', | |
| img_prefix=data_root + 'Img/', | |
| pipeline=test_pipeline, | |
| data_root=data_root)) | |
| evaluation = dict(interval=5, metric=['bbox', 'segm']) | |