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import os
import os.path as osp
import numpy as np
# from osx.common.utils.human_models import smpl_x
from humandata import HumanDataset
from config.config import cfg
class COCO_NA(HumanDataset):
def __init__(self, transform, data_split):
super(COCO_NA, self).__init__(transform, data_split)
self.img_dir = 'data/datasets/coco_2017'
self.annot_path = 'data/preprocessed_npz/multihuman_data/coco_wholebody_new_train_multi.npz'
self.annot_path_cache = 'data/preprocessed_npz/cache/coco_train_cache_080824.npz'
# osp.join(cfg.data_dir, 'cache', filename)
self.keypoints2d = 'keypoints2d_ori'
self.use_cache = getattr(cfg, 'use_cache', False)
self.cam_param = {}
# load data or cache
if self.use_cache and osp.isfile(self.annot_path_cache):
print(
f'[{self.__class__.__name__}] loading cache from {self.annot_path_cache}'
)
self.datalist = self.load_cache(self.annot_path_cache)
else:
if self.use_cache:
print(
f'[{self.__class__.__name__}] Cache not found, generating cache...'
)
self.datalist = self.load_data(train_sample_interval=getattr(
cfg, f'{self.__class__.__name__}_train_sample_interval', 1))
if self.use_cache:
self.save_cache(self.annot_path_cache, self.datalist)
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