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update
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@ -28,16 +28,19 @@ from ultralytics.yolo.utils import LOGGER, ROOT, TQDM_BAR_FORMAT
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from ultralytics.yolo.utils.checks import print_args
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from ultralytics.yolo.utils.checks import print_args
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from ultralytics.yolo.utils.files import increment_path, save_yaml
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from ultralytics.yolo.utils.files import increment_path, save_yaml
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from ultralytics.yolo.utils.modeling import get_model
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from ultralytics.yolo.utils.modeling import get_model
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from ultralytics.yolo.utils.torch_utils import ModelEMA, de_parallel, one_cycle
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from ultralytics.yolo.utils.torch_utils import ModelEMA, de_parallel, one_cycle, init_seeds
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DEFAULT_CONFIG = ROOT / "yolo/utils/configs/default.yaml"
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DEFAULT_CONFIG = ROOT / "yolo/utils/configs/default.yaml"
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RANK = int(os.getenv('RANK', -1))
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class BaseTrainer:
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class BaseTrainer:
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def __init__(self, config=DEFAULT_CONFIG, overrides={}):
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def __init__(self, config=DEFAULT_CONFIG, overrides={}):
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self.console = LOGGER
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self.args = self._get_config(config, overrides)
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self.args = self._get_config(config, overrides)
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init_seeds(self.args.seed + 1 + RANK, deterministic=True)
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self.console = LOGGER
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self.validator = None
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self.validator = None
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self.model = None
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self.model = None
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self.callbacks = defaultdict(list)
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self.callbacks = defaultdict(list)
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@ -41,7 +41,6 @@ class BaseValidator:
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else: # TODO: handle this when detectMultiBackend is supported
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else: # TODO: handle this when detectMultiBackend is supported
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assert model is not None, "Either trainer or model is needed for validation"
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assert model is not None, "Either trainer or model is needed for validation"
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# model = DetectMultiBacked(model)
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# model = DetectMultiBacked(model)
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# TODO: implement init_model_attributes()
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model.eval()
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model.eval()
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dt = Profile(), Profile(), Profile(), Profile()
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dt = Profile(), Profile(), Profile(), Profile()
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@ -2,10 +2,12 @@ import math
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import os
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import os
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import platform
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import platform
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import time
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import time
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import random
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from contextlib import contextmanager
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from contextlib import contextmanager
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from copy import deepcopy
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from copy import deepcopy
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from pathlib import Path
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from pathlib import Path
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import numpy as np
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import thop
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import thop
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import torch
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import torch
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import torch.distributed as dist
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import torch.distributed as dist
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@ -198,6 +200,20 @@ def one_cycle(y1=0.0, y2=1.0, steps=100):
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# lambda function for sinusoidal ramp from y1 to y2 https://arxiv.org/pdf/1812.01187.pdf
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# lambda function for sinusoidal ramp from y1 to y2 https://arxiv.org/pdf/1812.01187.pdf
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return lambda x: ((1 - math.cos(x * math.pi / steps)) / 2) * (y2 - y1) + y1
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return lambda x: ((1 - math.cos(x * math.pi / steps)) / 2) * (y2 - y1) + y1
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def init_seeds(seed=0, deterministic=False):
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# Initialize random number generator (RNG) seeds https://pytorch.org/docs/stable/notes/randomness.html
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random.seed(seed)
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np.random.seed(seed)
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torch.manual_seed(seed)
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torch.cuda.manual_seed(seed)
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torch.cuda.manual_seed_all(seed) # for Multi-GPU, exception safe
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# torch.backends.cudnn.benchmark = True # AutoBatch problem https://github.com/ultralytics/yolov5/issues/9287
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if deterministic and check_version(torch.__version__, '1.12.0'): # https://github.com/ultralytics/yolov5/pull/8213
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torch.use_deterministic_algorithms(True)
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torch.backends.cudnn.deterministic = True
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os.environ['CUBLAS_WORKSPACE_CONFIG'] = ':4096:8'
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os.environ['PYTHONHASHSEED'] = str(seed)
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class ModelEMA:
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class ModelEMA:
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""" Updated Exponential Moving Average (EMA) from https://github.com/rwightman/pytorch-image-models
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""" Updated Exponential Moving Average (EMA) from https://github.com/rwightman/pytorch-image-models
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