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Download and keep market data for internal purposes, such as manual analyze, historical backtesting, ML research etc.

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EIDiamond/tinkoff_market_data_collector

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Description

Main goal is download and keep market data for internal purposes, such as manual analyze, historical backtesting trade_backtesting project), ML purposes etc.

The tool is using Tinkoff Invest Python gRPC client api and collecting data from MOEX Exchange.

Please note:

  1. The tool is downloading market data via market stream in real-time. Note: You have to keep it running to have whole trade day information.

  2. The tool workflow is "run and forgot". The tool reads trade schedule:

    1. runs and stops data collection by schedule without manual handle it
    2. handles holiday, weekends, also sleep between trade days etc.

Features

  • Downloading the following information from MOEX Exchange:
    • Candle
    • Trades (executed orders)
    • Last price (price in time)
  • Saving this data in csv files
  • Working as service. Just run it and forget.

Before Start

Dependencies

$ pip install tinkoff-investments

Brokerage account

Open brokerage account Тинькофф Инвестиции.

Do not forget to take TOKEN for API trading.

Required configuration (minimal)

  1. Open settings.ini file
  2. Specify token for trade API in TOKEN (section INVEST_API)

Run

Recommendation is to use python 3.10.

Run main.py

Configuration

Configuration can be specified via settings.ini file.

Section WATCHER

Specify MAX_SEC_API_SILENCE max delay between check for api hung.
Specify DELAY_BETWEEN_API_ERRORS_SEC max delay between retry runs if api has been failed.

Section INVEST_API

Specify TOKEN and APP_NAME for Тинькофф Инвестиции api.

Section DATA_COLLECTION

Specify what kind of data the tool will collect:

  • 1 - True
  • 0 - False

Section STOCK_FIGI

Specify stocks via figi.

Syntax: ticker_name=figi

Section STORAGE

Specify name of storage (class with storage logic).

TYPE=FILES_CSV by default, but you are able to add your own. (see below)

Section STORAGE_SETTINGS

Section for storage settings. You will have to add your own, if you add your own storage class.

How to add a new storage

  • Write a new class with storage logic
  • The new class must have IStorage as super class
  • Give a name for the new class
  • Extend StorageFactory class by the name and return the new class by the name
  • Specify new settings in settings.ini file.
    • Put the new class name in STORAGE section and TYPE field
    • Put new settings into STORAGE_SETTINGS section

CSV files (default storage)

Structure on file system

By default, root path is specified in STORAGE_SETTINGS section and ROOT_PATH field.

Folders structure: ROOT_PATH/{figi}/{data_type_folder}/{year}/{month}/{day}/market_data.csv

{data_type_folder} can be:

  • "candle" (for candles)
  • "trade" (for executed orders)
  • "last_price" (for last price information)

CSV files structure

Candles

Headers in candles csv file: open, close, high, low, volume, time

Trades

Headers in trades csv file: direction, price, quantity, time

Direction: 1 - Buy, 2 - sell

Last Prices

Headers in last_prices csv file: price, time

Use case

  1. Download market data using tinkoff_market_data_collector project
  2. Research data and find an idea for trade strategy using analyze_market_data project
  3. Test and tune your trade strategy using trade_backtesting project
  4. Trade by invest-bot and your own strategy.
  5. Profit!

Example

Your can find example in code:

  • Let's imagine your have great idea to invent your own idicator. Rsi idicator was selected for example.
  • RSI Calculation alghoritm has been written for research tool
  • It has been tested by backtesting
  • And now you are able to make your desicion.

Logging

All logs are written in logs/collector.log. Any kind of settings can be changed in main.py code

Disclaimer

The author is not responsible for any errors or omissions, or for the trade results obtained from the use of this tool.

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Download and keep market data for internal purposes, such as manual analyze, historical backtesting, ML research etc.

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