146 lines
4.6 KiB
Plaintext
146 lines
4.6 KiB
Plaintext
{
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"cells": [
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{
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"cell_type": "code",
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"execution_count": 1,
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"id": "initial_id",
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"metadata": {
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"jupyter": {
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"is_executing": true
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}
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},
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"outputs": [],
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"source": [
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"from operator import index\n",
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"\n",
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"import tushare as ts\n",
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"import pandas as pd\n",
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"import time\n",
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"\n",
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"ts.set_token('3a0741c702ee7e5e5f2bf1f0846bafaafe4e320833240b2a7e4a685f')\n",
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"pro = ts.pro_api()"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 2,
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"id": "f448da220816bf98",
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"metadata": {
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"ExecuteTime": {
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"end_time": "2025-07-26T10:23:18.517518100Z",
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"start_time": "2025-04-09T14:57:27.392846Z"
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}
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},
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"outputs": [
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{
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"name": "stdout",
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"output_type": "stream",
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"text": [
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"数据已经成功存储到index_data.h5文件中\n"
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]
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}
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],
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"source": [
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"# 定义四个指数\n",
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"index_list = [\n",
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" # '399300.SZ', \n",
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" '000905.SH', \n",
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" '000852.SH', \n",
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" '399006.SZ'\n",
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" ]\n",
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"\n",
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"# 获取并存储数据\n",
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"all_data = []\n",
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"\n",
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"for ts_code in index_list:\n",
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" df = pro.index_daily(ts_code=ts_code) # 可根据需要设置日期\n",
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" df['ts_code'] = ts_code # 添加ts_code列来区分数据\n",
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" # print(df)\n",
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" all_data.append(df)\n",
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"\n",
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"# 合并所有数据\n",
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"final_df = pd.concat(all_data, ignore_index=True)\n",
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"\n",
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"# 存储到H5文件\n",
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"final_df.to_hdf('/mnt/d/PyProject/NewStock/data/index_data.h5', key='index_data', mode='w')\n",
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"\n",
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"print(\"数据已经成功存储到index_data.h5文件中\")"
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]
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},
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{
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"cell_type": "code",
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"execution_count": 3,
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"id": "907f732d3c397bf",
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"metadata": {
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"ExecuteTime": {
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"end_time": "2025-07-26T10:23:18.552166300Z",
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"start_time": "2025-04-09T14:57:37.695917Z"
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}
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},
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"outputs": [
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{
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"name": "stdout",
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"output_type": "stream",
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"text": [
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" ts_code trade_date close open high low \\\n",
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"0 000905.SH 20260123 8590.1659 8422.3561 8590.1659 8417.7520 \n",
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"1 000905.SH 20260122 8387.5950 8355.6781 8396.1328 8337.1950 \n",
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"2 000905.SH 20260121 8340.1133 8196.5565 8351.4545 8196.5565 \n",
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"3 000905.SH 20260120 8247.8049 8307.6416 8342.8738 8142.1424 \n",
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"4 000905.SH 20260119 8287.9470 8199.4986 8318.3703 8195.0890 \n",
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"... ... ... ... ... ... ... \n",
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"14029 399006.SZ 20100607 1069.4680 1005.0280 1075.2250 1001.7020 \n",
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"14030 399006.SZ 20100604 1027.6810 989.6810 1027.6810 986.5040 \n",
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"14031 399006.SZ 20100603 998.3940 1002.3550 1026.7020 997.7750 \n",
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"14032 399006.SZ 20100602 997.1190 967.6090 997.1190 952.6110 \n",
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"14033 399006.SZ 20100601 973.2330 986.0150 994.7930 948.1180 \n",
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"\n",
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" pre_close change pct_chg vol amount \n",
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"0 8387.5950 202.5709 2.4151 3.196901e+08 6.394214e+08 \n",
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"1 8340.1133 47.4817 0.5693 2.688052e+08 5.461381e+08 \n",
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"2 8247.8049 92.3084 1.1192 2.433044e+08 5.175922e+08 \n",
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"3 8287.9470 -40.1421 -0.4843 2.898645e+08 5.881715e+08 \n",
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"4 8232.6740 55.2730 0.6714 2.614974e+08 5.609261e+08 \n",
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"... ... ... ... ... ... \n",
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"14029 1027.6810 41.7870 4.0661 2.655275e+06 9.106095e+06 \n",
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"14030 998.3940 29.2870 2.9334 1.500295e+06 5.269441e+06 \n",
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"14031 997.1190 1.2750 0.1279 1.616805e+06 6.240835e+06 \n",
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"14032 973.2330 23.8860 2.4543 1.074628e+06 4.001206e+06 \n",
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"14033 1000.0000 -26.7670 -2.6767 1.356285e+06 4.924177e+06 \n",
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"\n",
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"[14034 rows x 11 columns]\n"
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]
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}
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],
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"source": [
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"h5_filename = '/mnt/d/PyProject/NewStock/data/index_data.h5'\n",
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"key = '/index_data'\n",
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"with pd.HDFStore(h5_filename, mode='r') as store:\n",
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" df = store[key]\n",
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" print(df)\n"
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]
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}
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],
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"metadata": {
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"kernelspec": {
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"display_name": "stock",
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"language": "python",
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"name": "python3"
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},
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"language_info": {
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"codemirror_mode": {
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"name": "ipython",
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"version": 3
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},
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"file_extension": ".py",
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"mimetype": "text/x-python",
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"name": "python",
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"nbconvert_exporter": "python",
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"pygments_lexer": "ipython3",
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"version": "3.12.11"
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}
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},
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"nbformat": 4,
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"nbformat_minor": 5
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}
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