Update check_requirements() exclude list (#2974)
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dbce1bc54c
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a833ee2a46
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@ -172,7 +172,7 @@ if __name__ == '__main__':
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parser.add_argument('--hide-conf', default=False, action='store_true', help='hide confidences')
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opt = parser.parse_args()
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print(opt)
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check_requirements(exclude=('pycocotools', 'thop'))
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check_requirements(exclude=('tensorboard', 'pycocotools', 'thop'))
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with torch.no_grad():
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if opt.update: # update all models (to fix SourceChangeWarning)
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@ -15,7 +15,7 @@ from utils.google_utils import attempt_download
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from utils.torch_utils import select_device
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dependencies = ['torch', 'yaml']
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check_requirements(Path(__file__).parent / 'requirements.txt', exclude=('pycocotools', 'thop'))
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check_requirements(Path(__file__).parent / 'requirements.txt', exclude=('tensorboard', 'pycocotools', 'thop'))
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def create(name, pretrained, channels, classes, autoshape, verbose):
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2
test.py
2
test.py
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@ -310,7 +310,7 @@ if __name__ == '__main__':
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opt.save_json |= opt.data.endswith('coco.yaml')
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opt.data = check_file(opt.data) # check file
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print(opt)
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check_requirements()
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check_requirements(exclude=('tensorboard', 'pycocotools', 'thop'))
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if opt.task in ('train', 'val', 'test'): # run normally
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test(opt.data,
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2
train.py
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train.py
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@ -497,7 +497,7 @@ if __name__ == '__main__':
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set_logging(opt.global_rank)
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if opt.global_rank in [-1, 0]:
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check_git_status()
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check_requirements()
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check_requirements(exclude=('pycocotools', 'thop'))
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# Resume
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wandb_run = check_wandb_resume(opt)
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@ -3,7 +3,6 @@
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import numpy as np
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import torch
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import yaml
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from scipy.cluster.vq import kmeans
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from tqdm import tqdm
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from utils.general import colorstr
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@ -76,6 +75,8 @@ def kmean_anchors(path='./data/coco128.yaml', n=9, img_size=640, thr=4.0, gen=10
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Usage:
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from utils.autoanchor import *; _ = kmean_anchors()
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"""
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from scipy.cluster.vq import kmeans
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thr = 1. / thr
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prefix = colorstr('autoanchor: ')
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@ -16,7 +16,6 @@ import seaborn as sns
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import torch
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import yaml
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from PIL import Image, ImageDraw, ImageFont
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from scipy.signal import butter, filtfilt
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from utils.general import xywh2xyxy, xyxy2xywh
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from utils.metrics import fitness
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@ -54,6 +53,8 @@ def hist2d(x, y, n=100):
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def butter_lowpass_filtfilt(data, cutoff=1500, fs=50000, order=5):
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from scipy.signal import butter, filtfilt
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# https://stackoverflow.com/questions/28536191/how-to-filter-smooth-with-scipy-numpy
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def butter_lowpass(cutoff, fs, order):
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nyq = 0.5 * fs
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