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@@ -1,393 +0,0 @@
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-import pymysql
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-import pandas as pd
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-import numpy as np
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-from sqlalchemy import create_engine
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-import matplotlib.pyplot as plt
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-import pytz
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-plt.rcParams['font.sans-serif'] = ['SimHei']
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-import utils.savedata
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-from utils import Arg
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-arg = Arg.Arg()
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-
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-def clear_data():
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- """
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- 删除所有csv
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- :return:
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- """
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- # 设置文件夹路径
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- import glob
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- import os
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- folder_path = arg.dataloc
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-
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- # 使用 glob 获取所有的 .csv 文件路径
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- csv_files = glob.glob(os.path.join(folder_path, '**/*.csv'), recursive=True)
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-
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- # 遍历所有 .csv 文件并删除
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- for file_path in csv_files:
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- os.remove(file_path)
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- print("清除所有scv文件")
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-
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-def create_database(database):
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- """
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- 创建数据库连接
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- :param database: 数据库地址
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- :return:
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- """
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- engine = create_engine(database)
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- return engine
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-
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-def exec_sql(sql,engine):
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- """
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- 从数据库获取数据
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- :param sql: sql语句
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- :param engine: 数据库对象
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- :return:
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- """
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- df = pd.read_sql_query(sql, engine)
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- return df
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-
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-def get_process_NWP(database):
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- """
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- 从数据库中获取NWP数据,并进行简单处理
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- :param database:
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- :return:
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- """
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- # NPW数据
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- engine = create_database(database)
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- sql_NWP = "select C_PRE_TIME,C_T,C_RH,C_PRESSURE,C_WD10,C_WD30,C_WD50,C_WD70,C_WD80,C_WD90,C_WD100,C_WD170,C_WS10,C_WS30,C_WS50,C_WS70,C_WS80,C_WS90,C_WS100,C_WS170 from t_nwp"
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- NWP = exec_sql(sql_NWP, engine)
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-
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- #删除后三位
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- NWP['C_PRE_TIME'] = NWP['C_PRE_TIME'].astype(str)
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- NWP['C_PRE_TIME'] = NWP['C_PRE_TIME'].str[:-3]
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-
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- # 将 'timestamp' 列转换为日期时间格式
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- NWP['C_PRE_TIME'] = NWP['C_PRE_TIME'].astype(float)
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- NWP['C_PRE_TIME'] = pd.to_datetime(NWP['C_PRE_TIME'], unit='s')
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-
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- # 将日期时间转换为本地时区
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- NWP['C_PRE_TIME'] = NWP['C_PRE_TIME'].dt.tz_localize(pytz.utc).dt.tz_convert('Asia/Shanghai')
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-
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- # 格式化日期时间为年月日时分秒
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- NWP['C_PRE_TIME'] = NWP['C_PRE_TIME'].dt.strftime('%Y-%m-%d %H:%M:%S')
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-
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- NWP = NWP.rename(columns={'C_PRE_TIME': 'C_TIME'})
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-
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- utils.savedata.saveData("NWP.csv",NWP)
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- return NWP
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-
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-def get_process_turbine(database):
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- """
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- 从数据库中获取风头数据,并进行简单处理
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- :param database:
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- :return:
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- """
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-
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- # 获取NWP数据
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- NWP = utils.savedata.readData("NWP.csv")
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- NWP_date = NWP.iloc[:,0]
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- print(NWP_date)
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-
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- # 机头数据
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- engine = create_database(database)
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- for i in arg.turbineloc:
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- print("导出风机{}的数据".format(i))
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- sql_turbine = "select C_TIME,C_DATA1 as C_WS, C_DATA2 as C_WD, C_DATA3 as C_ACTIVE_POWER from t_wind_turbine_status_data WHERE C_EQUIPMENT_NO=" + str(i)
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- turbine = exec_sql(sql_turbine, engine)
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-
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- #直接导出所有数据
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- utils.savedata.saveData("turbine-all/turbine-{}.csv".format(i), turbine)
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-
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- #每15分钟导出一个数据
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- filtered_df = turbine[turbine['C_TIME'].isin(NWP_date)]
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- utils.savedata.saveData("turbine-15/turbine-{}.csv".format(i), filtered_df)
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-
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-def get_process_tower(database):
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- """
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- 获取测风塔数据
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- :param database:
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- :return:
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- """
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- engine = create_database(database)
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- print("现有测风塔:{}".format(arg.towerloc))
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- for i in arg.towerloc:
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- print("测风塔{}导出数据".format(i))
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- # 删除没用的列
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- drop_colmns = ["C_DATA1","C_DATA2","C_DATA3","C_DATA4","C_DATA5","C_DATA6","C_DATA7","C_DATA8","C_DATA9","C_DATA10","C_IS_GENERATED","C_ABNORMAL_CODE"]
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-
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- get_colmns = []
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- # 查询表的所有列名
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- result_set = exec_sql("SHOW COLUMNS FROM t_wind_tower_status_data", engine)
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- for name in result_set.iloc[:,0]:
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- if name not in drop_colmns:
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- get_colmns.append(name)
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-
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- all_columns_str = ", ".join([f'{col}' for col in get_colmns])
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-
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- tower_sql = "select " + all_columns_str + " from t_wind_tower_status_data where C_EQUIPMENT_NO="+str(i)
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- tower = exec_sql(tower_sql, engine)
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- utils.savedata.saveData("tower/tower-{}.csv".format(i), tower)
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-
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-def get_process_power(database):
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- """
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- 获取整体功率数据
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- :param database:
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- :return:
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- """
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- engine = create_database(database)
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- sql_power = "select C_TIME,C_REAL_VALUE from t_power_station_status_data"
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- power = exec_sql(sql_power, engine)
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- utils.savedata.saveData("power.csv", power)
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-
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-
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-def get_process_dq(database):
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- """
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- 获取短期预测结果
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- :param database:
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- :return:
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- """
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- engine = create_database(database)
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- sql_dq = "select C_FORECAST_TIME AS C_TIME, C_ABLE_VALUE from t_forecast_power_short_term_his"
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- dq = exec_sql(sql_dq, engine)
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- dq['C_TIME'] = pd.to_datetime(dq['C_TIME'], unit='ms')
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- utils.savedata.saveData("dq.csv", dq)
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-
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-def get_process_cdq(database):
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- """
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- 获取超短期预测结果
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- :param database:
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- :return:
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- """
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- engine = create_database(database)
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- sql_cdq = "select C_FORECAST_TIME AS C_TIME, C_ABLE_VALUE from t_forecast_power_ultra_short_term_his"
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- cdq = exec_sql(sql_cdq, engine)
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- cdq['C_TIME'] = cdq['C_TIME'].dt.strftime('%Y-%m-%d %H:%M:%S')
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- utils.savedata.saveData("cdq.csv", cdq)
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-
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-
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-def get_turbine_info(database):
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- """
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- 获取风机信息
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- :param database:
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- :return:
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- """
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- engine = create_engine(database)
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- sql_turbine = "select C_ID, C_LATITUDE as '纬度', C_LONGITUDE as '经度', C_HUB_HEIGHT as '轮毂高度' from t_wind_turbine_info"
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- turbine_info = exec_sql(sql_turbine, engine)
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- utils.savedata.saveData("风机信息.csv", turbine_info)
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-
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-def indep_process():
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- """
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- 进一步数据处理:时间统一处理等
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- :return:
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- """
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- # 测风塔数据处理
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- for i in arg.towerloc:
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- tower = utils.savedata.readData("/tower/tower-{}.csv".format(i))
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- # 判断每一列是否全是 -99
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- all_minus_99 = (tower == -99).all()
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-
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- # 获取全是 -99 的列的列名
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- cols_to_drop = all_minus_99[all_minus_99 == True].index.tolist()
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-
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- # 使用 drop() 方法删除列
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- tower = tower.drop(cols_to_drop, axis=1)
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- # MBD: 将一部分是-99的列删除,把-99替换为nan
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- tower_nan = tower.replace(-99, np.nan, inplace=False)
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- # nan 超过80% 删除
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- tower = tower.dropna(axis=1, thresh=len(tower_nan) * 0.8)
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- utils.savedata.saveData("/tower/tower-{}-process.csv".format(i), tower)
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-
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- # 测风塔时间统一
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- tower1 = utils.savedata.readData("/tower/tower-{}-process.csv".format(1))
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- # tower2 = utils.savedata.readData("/tower/tower-{}-process.csv".format(2))
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- # tower1 = tower1[tower1['C_TIME'].isin(tower2['C_TIME'])]
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- # tower2 = tower2[tower2['C_TIME'].isin(tower1['C_TIME'])]
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-
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- utils.savedata.saveData("/tower/tower-{}-process.csv".format(1), tower1)
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- # utils.savedata.saveData("/tower/tower-{}-process.csv".format(2), tower2)
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-
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- # 所有表时间统一
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- filenames = ["/NWP.csv","/power.csv", "/dq.csv", "/cdq.csv", '/tower/tower-1-process.csv']
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- dataframes = []
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- for i in arg.turbineloc:
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- filenames.append("/turbine-15/turbine-{}.csv".format(i))
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- for name in filenames:
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- dataframes.append(utils.savedata.readData(name))
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-
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- # 查找最大起始时间和最小结束时间
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- max_start_time = max(df['C_TIME'].min() for df in dataframes)
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- min_end_time = min(df['C_TIME'].max() for df in dataframes)
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-
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- print(max_start_time)
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- print(min_end_time)
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-
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- # 重新调整每个 DataFrame 的时间范围,只保留在 [max_start_time, min_end_time] 区间内的数据
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- for i, df in enumerate(dataframes):
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- df['C_TIME'] = pd.to_datetime(df['C_TIME']) # 确保时间列是 datetime 类型
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- df_filtered = df[(df['C_TIME'] >= max_start_time) & (df['C_TIME'] <= min_end_time)]
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-
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- # 将结果保存到新文件,文件名为原文件名加上 "_filtered" 后缀
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- utils.savedata.saveData(filenames[i],df_filtered)
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-
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-def NWP_indep_process():
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- """
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- 将NWP数据按照缺失值数量划分为N个不同数据集
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- :return:
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- """
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- # NWP数据进一步处理
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- NWP = utils.savedata.readData("NWP.csv")
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- df = pd.to_datetime(NWP['C_TIME'])
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- time_diff = df.diff()
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- time_diff_threshold = pd.Timedelta(minutes=15)
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- missing_values = df[time_diff > time_diff_threshold]
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- print("NWP数据缺失的数量为:{}".format(len(missing_values)))
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- print(missing_values)
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-
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- # 文件保存
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- utils.savedata.saveVar("NWP_miss.pickle", missing_values)
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- split_indices = []
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- for i in range(len(missing_values)):
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- if i == 0:
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- split_indices.append((0, missing_values.index[i]))
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- else:
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- split_indices.append((missing_values.index[i - 1], missing_values.index[i]))
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- split_indices.append((missing_values.index[-1], len(df))) # MBD: 分割少了一个点
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- split_datasets = [NWP.iloc[start:end,:] for start, end in split_indices]
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- for i, split_df in enumerate(split_datasets):
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- utils.savedata.saveData("Dataset_training/NWP/NWP_{}.csv".format(i),split_df)
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-
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- return split_datasets
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-
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-
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-# def power_indep_process():
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-# NWP = utils.savedata.readData("power.csv")
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-
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-def Data_split():
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- """
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- 这个函数没用上,可以不看
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- :return:
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- """
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- NWP = utils.savedata.readData("power_15min.csv")
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- df = pd.to_datetime(NWP['C_TIME'])
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- time_diff = df.diff()
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- time_diff_threshold = pd.Timedelta(minutes=15)
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- missing_values = df[time_diff > time_diff_threshold]
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- print("NWP数据缺失的数量为:{}".format(len(missing_values)))
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- print(missing_values)
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- NWP_miss = utils.savedata.readVar("NWP_miss.pickle")
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-
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- for t in missing_values.index:
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- a = t-1
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- b = t
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- time1 = NWP['C_TIME'][a]
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- time2 = NWP['C_TIME'][b]
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- df = pd.to_datetime([time1, time2])
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- # 计算时间差
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- time_diff = (df[1] - df[0]) / pd.Timedelta(minutes=15)
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- print(time_diff)
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-
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- time1 = "2022-10-27 14:00:00"
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- time2 = "2023-04-16 12:00:00"
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- df = pd.to_datetime([time1, time2])
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- # 计算时间差
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- time_diff = (df[1] - df[0]) / pd.Timedelta(minutes=15)
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- print(time_diff)
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-
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-def time_all_in():
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- """
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- 这个函数暂时没用上,这个函数的目的是给机头数据进行填充,找到时间缺失的位置,填充为-99
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- :return:
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- """
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- filenames = []
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- dataframes = []
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- for i in arg.turbineloc:
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- filenames.append("/turbine-15/turbine-{}.csv".format(i))
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- for name in filenames:
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- dataframes.append(utils.savedata.readData(name))
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-
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- for df in dataframes:
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- df['C_TIME'] = pd.to_datetime(df['C_TIME'])
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-
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- # 创建一个完整的时间序列索引,包括所有可能的时间点
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- start_time = df['C_TIME'].min()
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- end_time = df['C_TIME'].max()
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- full_time_range = pd.date_range(start_time, end_time, freq='15min')
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-
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- # 使用完整的时间序列索引创建一个空的 DataFrame
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- full_df = pd.DataFrame(index=full_time_range)
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- full_df.index.name = 'C_TIME'
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-
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- # 将原始数据与空的 DataFrame 合并
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- merged_df = full_df.merge(df, how='left', left_on='time', right_on='time')
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-
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- # 使用 -99 填充缺失值,除了时间列
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- merged_df.fillna(-99, inplace=True)
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- merged_df.reset_index(inplace=True)
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-
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-
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-
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-def data_process(database):
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- """
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- 数据导出+初步处理的总操控代码
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- :param database:
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- :return:
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- """
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- clear_data()
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- get_process_NWP(database)
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- get_process_turbine(database)
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- get_turbine_info(database)
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- get_process_tower(database)
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- get_process_power(database)
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- get_process_dq(database)
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- # get_process_cdq(database)
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- indep_process()
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- NWP_indep_process()
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- # Data_split()
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-
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-if __name__ == '__main__':
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-
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- import os
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- import glob
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- # 设置文件夹路径
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- folder_path = '../data'
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-
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- # 使用 glob 获取所有的 .csv 文件
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- csv_files = glob.glob(os.path.join(folder_path, '*.csv'))
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-
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- # 遍历所有 .csv 文件并删除
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- for file_path in csv_files:
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- os.remove(file_path)
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- # database = "mysql+pymysql://root:!QAZ2root@192.168.1.205:3306/ipfcst-sishui-a"
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- # engine = create_database(database)
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- #
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- # # NPW数据
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- # sql_NWP = "select C_SC_DATE,C_SC_TIME,C_T,C_RH,C_PRESSURE,C_WD10,C_WD30,C_WD50,C_WD70,C_WD80,C_WD90,C_WD100,C_WD170,C_WS10,C_WS30,C_WS50,C_WS70,C_WS80,C_WS90,C_WS100,C_WS170 from t_nwp"
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- # NWP = exec_sql(sql_NWP,engine)
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- #
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- # # 分风机功率
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- # sql_wind = "select C_WS,C_ACTIVE_POWER from t_wind_turbine_status_data_15 WHERE C_EQUIPMENT_NO=2 and C_WS>0 and C_ACTIVE_POWER>0 "
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- # df_wind = exec_sql(sql_wind,engine)
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- # print(df_wind)
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-
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- # 总功率数据读取
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- # sql_power = "select * from t_power_station_status_data"
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- # df_power = exec_sql(sql_power, engine)
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- filenames = []
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- dataframes = []
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- for i in arg.turbineloc:
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- filenames.append("../data/turbine-15/turbine-{}.csv".format(i))
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- for name in filenames:
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- dataframes.append(pd.read_csv(name).iloc[:7000,:])
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-
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- # for df in enumerate(dataframes):
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- # df =
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- mean_of_first_columns = pd.concat([df['C_WS'] for df in dataframes], axis=1).mean(axis=1)
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- mean_of_second_columns = (pd.concat([df['C_ACTIVE_POWER'] for df in dataframes], axis=1).sum(axis=1)/1000).astype(int)
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- print(len(mean_of_first_columns))
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-
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-
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- plt.scatter(mean_of_first_columns, mean_of_second_columns)
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- plt.show()
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-
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-
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