yolo中断训练
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@ -31,6 +31,7 @@ from pathlib import Path
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bp = Blueprint('AlgorithmController', __name__)
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ifKillDict = {}
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def start_train_algorithm():
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"""
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@ -147,6 +148,42 @@ def algorithm_process_value_websocket():
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return wrapTheFunction
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def algorithm_kill_value_websocket():
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"""
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获取kill值, websocket发布
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"""
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def wrapTheFunction(func):
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@wraps(func)
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def wrapped_function(*args, **kwargs):
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data = func(*args, **kwargs)
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id = data["id"]
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data_res = {'code': 1, "type": 'kill', 'msg': 'success', 'data': data}
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manager.send_message_proj_json(message=data_res, id=id)
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return data
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return wrapped_function
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return wrapTheFunction
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def algorithm_error_value_websocket():
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"""
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获取error值, websocket发布
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"""
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def wrapTheFunction(func):
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@wraps(func)
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def wrapped_function(*args, **kwargs):
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data = func(*args, **kwargs)
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id = data["id"]
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data_res = {'code': 2, "type": 'error', 'msg': 'fail', 'data': data}
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manager.send_message_proj_json(message=data_res, id=id)
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return data
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return wrapped_function
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return wrapTheFunction
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def obtain_train_param():
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"""
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@ -164,7 +201,6 @@ def obtain_train_param():
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return wrapTheFunction
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def obtain_test_param():
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"""
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获取验证参数
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@ -215,6 +251,16 @@ def obtain_download_pt_param():
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return wrapTheFunction
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@bp.route('/change_ifKillDIct', methods=['get'])
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def change_ifKillDIct():
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"""
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修改全局变量
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"""
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id = request.args.get('id')
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type = request.args.get('type')
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global ifKillDict
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ifKillDict[id] = False
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return output_wrapped(0, 'success')
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# @start_train_algorithm()
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# def start(param: str):
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@ -241,6 +287,13 @@ from app.schemas.TrainResult import DetectProcessValueDice, DetectReport
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from app import file_tool
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def error_return(id: str):
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"""
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算法出错,返回
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"""
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data_res = {'code': 2, "type": 'error', 'msg': 'fail', 'data': None}
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manager.send_message_proj_json(message=data_res, id=id)
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# 启动训练
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@start_train_algorithm()
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def train_R0DY(params_str, id):
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@ -255,8 +308,10 @@ def train_R0DY(params_str, id):
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epoches = params.get('epochnum').value
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batch_size = params.get('batch_size').value
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device = params.get('device').value
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try:
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train_start(weights, savemodel, epoches, img_size, batch_size, device, data_list, id)
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except:
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error_return(id=id)
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# 启动验证程序
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@ -61,6 +61,8 @@ from app.yolov5.utils.torch_utils import (EarlyStopping, ModelEMA, de_parallel,
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smart_resume, torch_distributed_zero_first)
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from app.schemas.TrainResult import Report, ProcessValueList
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from app.controller.AlgorithmController import algorithm_process_value_websocket
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from app.controller.AlgorithmController import ifKillDict
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from app.utils.websocket_tool import manager
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LOCAL_RANK = int(os.getenv('LOCAL_RANK', -1)) # https://pytorch.org/docs/stable/elastic/run.html
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RANK = int(os.getenv('RANK', -1))
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WORLD_SIZE = int(os.getenv('WORLD_SIZE', 1))
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@ -304,6 +306,15 @@ def train(hyp, opt, device, data_list,id,callbacks): # hyp is path/to/hyp.yaml
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num_train_img=train_num,
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train_mod_savepath=best)
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def kill_return():
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"""
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算法中断,返回
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"""
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id = report.id
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data = report.dict()
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data_res = {'code': 1, "type": 'kill', 'msg': 'fail', 'data': data}
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manager.send_message_proj_json(message=data_res, id=id)
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@algorithm_process_value_websocket()
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def report_cellback(i, num_epochs, reportAccu):
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report.rate_of_progess = ((i + 1) / num_epochs) * 100
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@ -314,6 +325,11 @@ def train(hyp, opt, device, data_list,id,callbacks): # hyp is path/to/hyp.yaml
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###################结束#######################
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for epoch in range(start_epoch, epochs): # epoch ------------------------------------------------------------------
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#callbacks.run('on_train_epoch_start')
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global ifKillDict
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ifkill = ifKillDict['id']
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if ifkill:
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kill_return()
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break
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model.train()
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# Update image weights (optional, single-GPU only)
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