W&B refactor, handle exceptions, CI example (#5618)
* handle exceptions| attempt CI * update * Pre-commit manual run * yaml one-liner * Update ci-testing.yml * Comment W&B CI Leave as example for future separate CI * Update ci-testing.yml Co-authored-by: Glenn Jocher <glenn.jocher@ultralytics.com>pull/5645/head
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@ -51,12 +51,15 @@ jobs:
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run: |
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python -m pip install --upgrade pip
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pip install -qr requirements.txt -f https://download.pytorch.org/whl/cpu/torch_stable.html
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pip install -q onnx tensorflow-cpu keras==2.6.0 # for export
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pip install -q onnx tensorflow-cpu keras==2.6.0 # wandb # extras
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python --version
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pip --version
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pip list
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shell: bash
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# - name: W&B login
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# run: wandb login 345011b3fb26dc8337fd9b20e53857c1d403f2aa
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- name: Download data
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run: |
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# curl -L -o tmp.zip https://github.com/ultralytics/yolov5/releases/download/v1.0/coco128.zip
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@ -2,11 +2,15 @@ import argparse
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from wandb_utils import WandbLogger
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from utils.general import LOGGER
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WANDB_ARTIFACT_PREFIX = 'wandb-artifact://'
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def create_dataset_artifact(opt):
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logger = WandbLogger(opt, None, job_type='Dataset Creation') # TODO: return value unused
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if not logger.wandb:
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LOGGER.info("install wandb using `pip install wandb` to log the dataset")
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if __name__ == '__main__':
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@ -17,7 +17,7 @@ if str(ROOT) not in sys.path:
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sys.path.append(str(ROOT)) # add ROOT to PATH
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from utils.datasets import LoadImagesAndLabels, img2label_paths
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from utils.general import check_dataset, check_file
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from utils.general import LOGGER, check_dataset, check_file
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try:
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import wandb
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@ -203,7 +203,7 @@ class WandbLogger():
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config_path = self.log_dataset_artifact(opt.data,
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opt.single_cls,
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'YOLOv5' if opt.project == 'runs/train' else Path(opt.project).stem)
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print("Created dataset config file ", config_path)
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LOGGER.info(f"Created dataset config file {config_path}")
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with open(config_path, errors='ignore') as f:
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wandb_data_dict = yaml.safe_load(f)
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return wandb_data_dict
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@ -316,7 +316,7 @@ class WandbLogger():
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model_artifact.add_file(str(path / 'last.pt'), name='last.pt')
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wandb.log_artifact(model_artifact,
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aliases=['latest', 'last', 'epoch ' + str(self.current_epoch), 'best' if best_model else ''])
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print("Saving model artifact on epoch ", epoch + 1)
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LOGGER.info(f"Saving model artifact on epoch {epoch + 1}")
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def log_dataset_artifact(self, data_file, single_cls, project, overwrite_config=False):
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"""
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@ -368,7 +368,7 @@ class WandbLogger():
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Useful for - referencing artifacts for evaluation.
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"""
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self.val_table_path_map = {}
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print("Mapping dataset")
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LOGGER.info("Mapping dataset")
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for i, data in enumerate(tqdm(self.val_table.data)):
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self.val_table_path_map[data[3]] = data[0]
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@ -488,7 +488,13 @@ class WandbLogger():
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with all_logging_disabled():
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if self.bbox_media_panel_images:
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self.log_dict["BoundingBoxDebugger"] = self.bbox_media_panel_images
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wandb.log(self.log_dict)
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try:
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wandb.log(self.log_dict)
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except BaseException as e:
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LOGGER.info(f"An error occurred in wandb logger. The training will proceed without interruption. More info\n{e}")
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self.wandb_run.finish()
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self.wandb_run = None
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self.log_dict = {}
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self.bbox_media_panel_images = []
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if self.result_artifact:
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