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@@ -4,18 +4,16 @@ import pymysql
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from sqlalchemy import create_engine
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from sqlalchemy import create_engine
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import threading
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import threading
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from datetime import datetime as dt
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from datetime import datetime as dt
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-import datetime
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+from jqdatasdk.technical_analysis import *
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-auth('18019403367', 'Qwer4321')
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+auth('18616891214', 'Ea?*7f68nD.dafcW34d!')
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stocks = list(get_all_securities(['stock'], date=dt.today().strftime('%Y-%m-%d')).index)
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stocks = list(get_all_securities(['stock'], date=dt.today().strftime('%Y-%m-%d')).index)
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-# stocks = stocks[0:1]
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+# stocks = stocks[0:200]
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start = dt.now()
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start = dt.now()
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-# 确定级别
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-# 注意修改time delta
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-# fre = '30m'
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-for fre in ['30m', '1d']:
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+
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+for fre in ['1d']:
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start = dt.now()
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start = dt.now()
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print(fre)
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print(fre)
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# 连接数据库
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# 连接数据库
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@@ -29,23 +27,32 @@ for fre in ['30m', '1d']:
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table_list = [tuple[0] for tuple in cursor.fetchall()]
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table_list = [tuple[0] for tuple in cursor.fetchall()]
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print('取得 table_list %s' % fre)
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print('取得 table_list %s' % fre)
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+ db_pool = pymysql.connect(host='localhost',
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+ user='root',
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+ port=3307,
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+ password='r6kEwqWU9!v3',
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+ database='hlfx_pool')
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+ cursor_pool = db_pool.cursor()
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+
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+
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stk = locals()
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stk = locals()
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thd = threading.local()
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thd = threading.local()
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- def hlfx(stocks, engine, engine2):
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+ def hlfx(stocks, engine_stock, engine_hlfx):
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for thd.stock in stocks:
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for thd.stock in stocks:
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print(thd.stock)
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print(thd.stock)
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if ('stk%s_%s' % (thd.stock, fre)) in table_list:
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if ('stk%s_%s' % (thd.stock, fre)) in table_list:
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# 有历史数据
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# 有历史数据
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- index_len = pd.read_sql_table('stk%s_%s' % (thd.stock, fre), con=engine2).iloc[-1, 0]
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- # 注意修改time delta
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- startdate = pd.read_sql_table('stk%s_%s' % (thd.stock, fre), con=engine2).iloc[-1, 1]
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- # startdate = pd.read_sql_table('stk%s_%s' % (stock, fre), con=engine2).iloc[-1, 1] + datetime.timedelta(minutes= 5)
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+ index_len = pd.read_sql_table('stk%s_%s' % (thd.stock, fre), con=engine_hlfx).iloc[-1, 0]
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+ startdate = pd.read_sql_table('stk%s_%s' % (thd.stock, fre), con=engine_hlfx).iloc[-1, 1]
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+
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thd.get_price = pd.read_sql_query(
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thd.get_price = pd.read_sql_query(
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- 'select date,open,close,high,low,volume,money from `stk%s_%s`' % (thd.stock, fre), engine)
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+ 'select date,open,close,high,low,volume,money from `stk%s_%s`' % (thd.stock, fre), engine_stock)
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thd.get_price = thd.get_price.loc[thd.get_price['date'] > startdate]
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thd.get_price = thd.get_price.loc[thd.get_price['date'] > startdate]
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+
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thd.df_day = pd.read_sql_query(
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thd.df_day = pd.read_sql_query(
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- 'select date,open,close,high,low,volume,money,HL from `stk%s_%s`' % (thd.stock, fre), engine2)
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+ 'select date,open,close,high,low,volume,money,HL from `stk%s_%s`' % (thd.stock, fre), engine_hlfx)
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+
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# 先处理去包含
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# 先处理去包含
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for i in thd.get_price.index:
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for i in thd.get_price.index:
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# 不包含
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# 不包含
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@@ -54,7 +61,7 @@ for fre in ['30m', '1d']:
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or (thd.df_day.iloc[-1, 3] < thd.get_price.loc[i, 'high']
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or (thd.df_day.iloc[-1, 3] < thd.get_price.loc[i, 'high']
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and thd.df_day.iloc[-1, 4] < thd.get_price.loc[i, 'low']):
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and thd.df_day.iloc[-1, 4] < thd.get_price.loc[i, 'low']):
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thd.df_day = pd.concat([thd.df_day, thd.get_price.loc[[i]]], ignore_index=True)
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thd.df_day = pd.concat([thd.df_day, thd.get_price.loc[[i]]], ignore_index=True)
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- # print(thd.df_day)
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+
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# 包含
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# 包含
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else:
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else:
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# (new_df.iloc[-1,3]>=df_day.loc[i,'high'] and new_df.iloc[-1,4]<= df_day.loc[i,'low']):
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# (new_df.iloc[-1,3]>=df_day.loc[i,'high'] and new_df.iloc[-1,4]<= df_day.loc[i,'low']):
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@@ -66,9 +73,9 @@ for fre in ['30m', '1d']:
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# 右高,上升
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# 右高,上升
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thd.df_day.iloc[-1, 3] = max(thd.df_day.iloc[-1, 3], thd.get_price.loc[i, 'high'])
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thd.df_day.iloc[-1, 3] = max(thd.df_day.iloc[-1, 3], thd.get_price.loc[i, 'high'])
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thd.df_day.iloc[-1, 4] = max(thd.df_day.iloc[-1, 4], thd.get_price.loc[i, 'low'])
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thd.df_day.iloc[-1, 4] = max(thd.df_day.iloc[-1, 4], thd.get_price.loc[i, 'low'])
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- # 寻找顶底分型
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+
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+ # 寻找顶底分型
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if len(thd.df_day.index) > 2:
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if len(thd.df_day.index) > 2:
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- # 寻找顶底分型
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for x in range(index_len, len(thd.df_day.index)):
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for x in range(index_len, len(thd.df_day.index)):
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m = x - 1
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m = x - 1
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# 底
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# 底
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@@ -81,22 +88,41 @@ for fre in ['30m', '1d']:
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if thd.df_day.loc[m, 'HL'] == 'H':
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if thd.df_day.loc[m, 'HL'] == 'H':
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if (x - m) > 3:
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if (x - m) > 3:
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thd.df_day.loc[x, 'HL'] = 'L'
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thd.df_day.loc[x, 'HL'] = 'L'
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- if x == len(thd.df_day.index) - 1:
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- print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '买买买买买!!')
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- break
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+ # 此处可以获得MACD指标
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+ # pre-macd_dif, pre-macd_dea, pre-macd_macd = MACD(thd.stock,check_date=thd.df_day.loc[m, 'datetime'], SHORT = 12, LONG = 26, MID = 9)
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+ if x == len(thd.df_day.index) - 1 :
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+ # pass
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+ print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '\n', thd.df_day.loc[m, 'date'], '买买买买买!!')
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+ results.append(thd.stock)
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+ print('222')
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+ # break
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elif (thd.df_day.loc[m, 'HL'] == 'L'):
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elif (thd.df_day.loc[m, 'HL'] == 'L'):
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if thd.df_day.loc[x - 1, 'low'] < thd.df_day.loc[m - 1, 'low']:
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if thd.df_day.loc[x - 1, 'low'] < thd.df_day.loc[m - 1, 'low']:
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# 前一个为底,且中间存在不包含 or 更低的底
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# 前一个为底,且中间存在不包含 or 更低的底
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thd.df_day.loc[x, 'HL'] = 'L'
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thd.df_day.loc[x, 'HL'] = 'L'
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- if x == len(thd.df_day.index) - 1:
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+ x_macd_dif, x_macd_dea, x_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[x, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ m_macd_dif, m_macd_dea, m_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[m, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ if x == len(thd.df_day.index) - 1 and x_macd_dif[thd.stock] > m_macd_dif[thd.stock]:
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# pass
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# pass
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- print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '中继后的底————买吗?!')
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+ # print(thd.df_day.loc[m, 'date'], thd.df_day.loc[m, 'low'],
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+ # m_macd_dif[thd.stock])
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+ # print(thd.df_day.loc[x, 'date'], thd.df_day.loc[x, 'low'],
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+ # x_macd_dif[thd.stock])
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+ print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], 'MACD背驰————买吗?!')
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+ results.append(thd.stock)
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+ print('333')
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break
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break
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else:
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else:
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break
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break
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m = m - 1
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m = m - 1
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if m == 0:
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if m == 0:
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thd.df_day.loc[x, 'HL'] = 'L'
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thd.df_day.loc[x, 'HL'] = 'L'
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+ results.append(thd.stock)
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+ print('444')
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# 顶
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# 顶
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elif ((thd.df_day.loc[x, 'high'] < thd.df_day.loc[x - 1, 'high']) and (
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elif ((thd.df_day.loc[x, 'high'] < thd.df_day.loc[x - 1, 'high']) and (
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thd.df_day.loc[x - 2, 'high'] < thd.df_day.loc[x - 1, 'high'])):
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thd.df_day.loc[x - 2, 'high'] < thd.df_day.loc[x - 1, 'high'])):
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@@ -108,32 +134,47 @@ for fre in ['30m', '1d']:
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if x - m > 3:
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if x - m > 3:
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thd.df_day.loc[x, 'HL'] = 'H'
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thd.df_day.loc[x, 'HL'] = 'H'
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if x == len(thd.df_day.index) - 1:
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if x == len(thd.df_day.index) - 1:
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- # print(stock, '!!!!!!!', '\n', '卖卖卖卖卖卖卖!')
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- pass
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- thd.df_day.loc[x, 9] = thd.df_day.loc[x, 'close'] - thd.df_day.loc[m, 'close']
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- break
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+ print(thd.stock, '!!!!!!!', '\n', '卖卖卖卖卖卖卖!')
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+ # pass
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+ results_short.append(thd.stock)
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+ if thd.stock in results:
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+ results.remove(thd.stock)
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+ # break
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elif (thd.df_day.loc[m, 'HL'] == 'H'):
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elif (thd.df_day.loc[m, 'HL'] == 'H'):
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if thd.df_day.loc[x - 1, 'high'] > thd.df_day.loc[m - 1, 'high']:
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if thd.df_day.loc[x - 1, 'high'] > thd.df_day.loc[m - 1, 'high']:
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# 前一个为顶,且中间存在不包含 or 更高的顶
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# 前一个为顶,且中间存在不包含 or 更高的顶
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thd.df_day.loc[x, 'HL'] = 'H'
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thd.df_day.loc[x, 'HL'] = 'H'
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- if x == len(thd.df_day.index) - 1:
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- pass
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- # print(stock, '/\/\/\/\/\/\/', '一顶更有一顶高!')
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+ x_macd_dif, x_macd_dea, x_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[x, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ m_macd_dif, m_macd_dea, m_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[m, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ if x == len(thd.df_day.index) - 1 and x_macd_dif[thd.stock] < m_macd_dif[thd.stock]:
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+ # pass
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+ print(thd.stock, '/\/\/\/\/\/\/', '顶背离了!!!!')
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+ results_short.append(thd.stock)
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+ if thd.stock in results:
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+ results.remove(thd.stock)
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break
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break
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break
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break
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m = m - 1
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m = m - 1
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if m == 0:
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if m == 0:
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thd.df_day.loc[x, 'HL'] = 'H'
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thd.df_day.loc[x, 'HL'] = 'H'
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+ results_short.append(thd.stock)
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+ if thd.stock in results:
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+ results.remove(thd.stock)
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else:
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else:
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thd.df_day.loc[x, 'HL'] = '-'
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thd.df_day.loc[x, 'HL'] = '-'
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# 更新数据库
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# 更新数据库
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- thd.df_day[index_len + 1:].to_sql('stk%s_%s' % (thd.stock, fre), con=engine2, index=True, if_exists='append')
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+ # 可以使用normalize_code(code) 方法 改变代码格式
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+ # thd.df_day[index_len + 1:].to_sql('stk%s_%s' % (thd.stock, fre), con=engine_hlfx, index=True, if_exists='append')
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else:
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else:
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# 没有历史数据表
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# 没有历史数据表
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thd.df_day = pd.DataFrame(columns=('date', 'open', 'close', 'high', 'low', 'volume', 'money', 'HL'))
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thd.df_day = pd.DataFrame(columns=('date', 'open', 'close', 'high', 'low', 'volume', 'money', 'HL'))
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thd.get_price = pd.read_sql_query(
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thd.get_price = pd.read_sql_query(
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- 'select date,open,close,high,low,volume,money from `stk%s_%s`' % (thd.stock, fre), engine)
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+ 'select date,open,close,high,low,volume,money from `stk%s_%s`' % (thd.stock, fre), engine_stock)
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# 先处理去包含
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# 先处理去包含
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for i in thd.get_price.index:
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for i in thd.get_price.index:
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if i == 0 or i == 1:
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if i == 0 or i == 1:
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@@ -168,22 +209,42 @@ for fre in ['30m', '1d']:
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if thd.df_day.loc[m, 'HL'] == 'H':
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if thd.df_day.loc[m, 'HL'] == 'H':
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if (x - m) > 3:
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if (x - m) > 3:
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thd.df_day.loc[x, 'HL'] = 'L'
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thd.df_day.loc[x, 'HL'] = 'L'
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+ # 此处可以获得MACD指标
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+ # pre-macd_dif, pre-macd_dea, pre-macd_macd = MACD(thd.stock,check_date=thd.df_day.loc[m, 'datetime'], SHORT = 12, LONG = 26, MID = 9)
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+
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if x == len(thd.df_day.index) - 1:
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if x == len(thd.df_day.index) - 1:
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+ # pass
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print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '买买买买买!!')
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print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '买买买买买!!')
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- break
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+ results.append(thd.stock)
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+ # break
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elif (thd.df_day.loc[m, 'HL'] == 'L'):
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elif (thd.df_day.loc[m, 'HL'] == 'L'):
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if thd.df_day.loc[x - 1, 'low'] < thd.df_day.loc[m - 1, 'low']:
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if thd.df_day.loc[x - 1, 'low'] < thd.df_day.loc[m - 1, 'low']:
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# 前一个为底,且中间存在不包含 or 更低的底
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# 前一个为底,且中间存在不包含 or 更低的底
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thd.df_day.loc[x, 'HL'] = 'L'
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thd.df_day.loc[x, 'HL'] = 'L'
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- if x == len(thd.df_day.index) - 1:
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+ x_macd_dif, x_macd_dea, x_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[x, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ m_macd_dif, m_macd_dea, m_macd_macd = MACD(thd.stock,
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+ check_date=thd.df_day.loc[m, 'date'],
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+ SHORT=12, LONG=26, MID=9, unit=fre)
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+ if x == len(thd.df_day.index) - 1 and x_macd_dif[thd.stock] > m_macd_dif[
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+ thd.stock]:
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# pass
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|
# pass
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|
- print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'], '中继后的底————买吗?!')
|
|
|
|
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|
+ # print(thd.df_day.loc[m, 'date'], thd.df_day.loc[m, 'low'],
|
|
|
|
+ # m_macd_dif[thd.stock])
|
|
|
|
+ # print(thd.df_day.loc[x, 'date'], thd.df_day.loc[x, 'low'],
|
|
|
|
+ # x_macd_dif[thd.stock])
|
|
|
|
+ print(thd.stock, '$$$$$$$', '\n', thd.df_day.loc[x, 'date'],
|
|
|
|
+ 'MACD背驰————买吗?!')
|
|
|
|
+ results.append(thd.stock)
|
|
|
|
+
|
|
break
|
|
break
|
|
else:
|
|
else:
|
|
break
|
|
break
|
|
m = m - 1
|
|
m = m - 1
|
|
if m == 0:
|
|
if m == 0:
|
|
thd.df_day.loc[x, 'HL'] = 'L'
|
|
thd.df_day.loc[x, 'HL'] = 'L'
|
|
|
|
+ results.append(thd.stock)
|
|
# 顶
|
|
# 顶
|
|
elif ((thd.df_day.loc[x, 'high'] < thd.df_day.loc[x - 1, 'high']) and (
|
|
elif ((thd.df_day.loc[x, 'high'] < thd.df_day.loc[x - 1, 'high']) and (
|
|
thd.df_day.loc[x - 2, 'high'] < thd.df_day.loc[x - 1, 'high'])):
|
|
thd.df_day.loc[x - 2, 'high'] < thd.df_day.loc[x - 1, 'high'])):
|
|
@@ -195,44 +256,76 @@ for fre in ['30m', '1d']:
|
|
if x - m > 3:
|
|
if x - m > 3:
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
if x == len(thd.df_day.index) - 1:
|
|
if x == len(thd.df_day.index) - 1:
|
|
- # print(stock, '!!!!!!!', '\n', '卖卖卖卖卖卖卖!')
|
|
|
|
- pass
|
|
|
|
- thd.df_day.loc[x, 9] = thd.df_day.loc[x, 'close'] - thd.df_day.loc[m, 'close']
|
|
|
|
- break
|
|
|
|
|
|
+ print(thd.stock, '!!!!!!!', '\n', '卖卖卖卖卖卖卖!')
|
|
|
|
+ # pass
|
|
|
|
+ results.remove(thd.stock)
|
|
|
|
+ # break
|
|
elif (thd.df_day.loc[m, 'HL'] == 'H'):
|
|
elif (thd.df_day.loc[m, 'HL'] == 'H'):
|
|
if thd.df_day.loc[x - 1, 'high'] > thd.df_day.loc[m - 1, 'high']:
|
|
if thd.df_day.loc[x - 1, 'high'] > thd.df_day.loc[m - 1, 'high']:
|
|
# 前一个为顶,且中间存在不包含 or 更高的顶
|
|
# 前一个为顶,且中间存在不包含 or 更高的顶
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
- if x == len(thd.df_day.index) - 1:
|
|
|
|
- pass
|
|
|
|
- # print(stock, '/\/\/\/\/\/\/', '一顶更有一顶高!')
|
|
|
|
|
|
+ x_macd_dif, x_macd_dea, x_macd_macd = MACD(thd.stock,
|
|
|
|
+ check_date=thd.df_day.loc[x, 'date'],
|
|
|
|
+ SHORT=12, LONG=26, MID=9, unit=fre)
|
|
|
|
+ m_macd_dif, m_macd_dea, m_macd_macd = MACD(thd.stock,
|
|
|
|
+ check_date=thd.df_day.loc[m, 'date'],
|
|
|
|
+ SHORT=12, LONG=26, MID=9, unit=fre)
|
|
|
|
+ if x == len(thd.df_day.index) - 1 and x_macd_dif[thd.stock] < m_macd_dif[
|
|
|
|
+ thd.stock]:
|
|
|
|
+ # pass
|
|
|
|
+ print(thd.stock, '/\/\/\/\/\/\/', '顶背离了!!!!')
|
|
|
|
+ results.remove(thd.stock)
|
|
break
|
|
break
|
|
break
|
|
break
|
|
m = m - 1
|
|
m = m - 1
|
|
if m == 0:
|
|
if m == 0:
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
thd.df_day.loc[x, 'HL'] = 'H'
|
|
|
|
+ results.remove(thd.stock)
|
|
else:
|
|
else:
|
|
thd.df_day.loc[x, 'HL'] = '-'
|
|
thd.df_day.loc[x, 'HL'] = '-'
|
|
|
|
+ print(thd.df_day[-20:])
|
|
# 更新数据库
|
|
# 更新数据库
|
|
- thd.df_day.to_sql('stk%s_%s' % (thd.stock, fre), con=engine2, index=True, if_exists='append')
|
|
|
|
|
|
+ # thd.df_day.to_sql('stk%s_%s' % (thd.stock, fre), con=engine_hlfx, index=True, if_exists='append')
|
|
|
|
|
|
step = 500
|
|
step = 500
|
|
thread_list = []
|
|
thread_list = []
|
|
- engine = []
|
|
|
|
- engine2 = []
|
|
|
|
|
|
+ engine_stock = []
|
|
|
|
+ engine_hlfx = []
|
|
times_engine = 0
|
|
times_engine = 0
|
|
- for i in range(0, len(stocks), step):
|
|
|
|
- engine.append(create_engine('mysql+pymysql://root:r6kEwqWU9!v3@localhost:3307/stocks?charset=utf8'))
|
|
|
|
- engine2.append(create_engine('mysql+pymysql://root:r6kEwqWU9!v3@localhost:3307/hlfx?charset=utf8'))
|
|
|
|
- thread = threading.Thread(target=hlfx, args=(stocks[i:i + step], engine[times_engine], engine2[times_engine]))
|
|
|
|
- times_engine = times_engine + 1
|
|
|
|
- thread.start()
|
|
|
|
- thread_list.append(thread)
|
|
|
|
-
|
|
|
|
-
|
|
|
|
- for thread in thread_list:
|
|
|
|
- thread.join()
|
|
|
|
- db.close()
|
|
|
|
|
|
+ engine_hlfx_pool = create_engine('mysql+pymysql://root:r6kEwqWU9!v3@localhost:3307/hlfx_pool?charset=utf8')
|
|
|
|
+
|
|
|
|
+ results= pd.read_sql_query(
|
|
|
|
+ 'select value from `%s`' % fre, engine_hlfx_pool)
|
|
|
|
+
|
|
|
|
+ results = results.iloc[-1, 0]
|
|
|
|
+ results = results.split(",")
|
|
|
|
+ results_short=[]
|
|
|
|
+
|
|
|
|
+ print('数据库读取', results, type(results))
|
|
|
|
+ # for i in range(0, len(stocks), step):
|
|
|
|
+ # engine_stock.append(create_engine('mysql+pymysql://root:r6kEwqWU9!v3@localhost:3307/stocks?charset=utf8'))
|
|
|
|
+ # engine_hlfx.append(create_engine('mysql+pymysql://root:r6kEwqWU9!v3@localhost:3307/hlfx?charset=utf8'))
|
|
|
|
+ # thread = threading.Thread(target=hlfx, args=(stocks[i:i + step], engine_stock[times_engine], engine_hlfx[times_engine]))
|
|
|
|
+ # times_engine = times_engine + 1
|
|
|
|
+ # thread.start()
|
|
|
|
+ # thread_list.append(thread)
|
|
|
|
+ #
|
|
|
|
+ # for thread in thread_list:
|
|
|
|
+ # thread.join()
|
|
|
|
+ # db.close()
|
|
|
|
+
|
|
|
|
+
|
|
|
|
+
|
|
|
|
+ time = dt.now().strftime('%Y-%m-%d %H:%M:%S')
|
|
|
|
+ results_list =','.join(set(results))
|
|
|
|
+ print(set(results))
|
|
|
|
+ # sql = "INSERT INTO %s (date,value) VALUES('%s','%s')" % (fre, dt.now().strftime('%Y-%m-%d %H:%M:%S'), results_list)
|
|
|
|
+ # cursor_pool.execute(sql)
|
|
|
|
+ # db_pool.commit()
|
|
|
|
+ print('做多', set(results))
|
|
|
|
+ print('做空', set(results_short))
|
|
|
|
+ print(len(set(results)))
|
|
|
|
+ print(len(set(results_short)))
|
|
|
|
|
|
end= dt.now()
|
|
end= dt.now()
|
|
print('总时长:', (end - start).seconds)
|
|
print('总时长:', (end - start).seconds)
|