AI Trading Strategy Using Python and MT5 Without Traditional Indicators

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実行時間23 時間
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Thank you, dear. I have completed the required work as it should be
開発者からのフィードバック
The best customer, very knowledgeable and understanding

指定

I am looking for a skilled programmer to develop the following strategy:

  1. Connecting Python to MT5:

    • Integrate Python with the MT5 platform and interact with the trading account in real-time using the following login credentials:
      • account_id
      • password
      • server
  2. Using Advanced Python Libraries:

    • Utilize advanced Python libraries to design and train neural networks that predict market trends.
    • Rely on real-time market data (such as previous prices and historical data for both currencies and gold).
  3. Historical Data:

    • Fetch historical data from the MT5 platform for currencies and gold (such as close, open, high, low prices, and volume) for various timeframes (1 minute, 5 minutes, 15 minutes, hourly, daily, weekly, monthly).
    • Split the data into training and testing sets, continuously updating the data while the system is running to ensure the model works in real-time.
  4. Neural Network Design:

    • Design a Multi-layer Perceptron (MLP) or use advanced prediction models like LSTM or GRU to handle time series data and forecast future market trends.
    • The neural network should either be an MLP, LSTM, or GRU network to process time-series data.
    • Use advanced models like LSTM or GRU, which are capable of handling time-series data and predicting future market direction based on previous price patterns.
    • The neural network should learn to recognize repeated patterns in price movements, such as large spikes or reversal patterns, without relying on traditional indicators.
  5. Training the Model:

    • Train the model on data such as:
      • Series of open and close prices.
      • Highs and lows over different timeframes.
  6. Focusing on Raw Price Patterns:

    • Design a neural network that focuses on learning hidden price patterns in raw data without relying on technical indicators.
    • Use raw price data (such as open, close, high, low prices, and volume) instead of technical indicators.
    • Prepare the data to be clean and usable for deep prediction models, with continuous updates in real-time.
  7. Making Trading Decisions:

    • Make buy or sell decisions based on the model’s output, using Stop Loss (SL) and Take Profit (TP) levels determined by the model's analysis and potential risks.
    • For example:
      • If the neural network predicts a price increase with a confidence level above 75%, a buy trade is opened.
      • If the neural network predicts a price decrease with a confidence level above 75%, a sell trade is opened.
    • Stop Loss (SL) and Take Profit (TP) levels are set based on the model’s output and the level of potential risk.
  8. Risk Management:

    • Determine the lot size (trade size) based on the account balance and the defined risk level (for example, risking 1-2% of the capital per trade).
    • Use a Trailing Stop to protect profits in case the market moves in favor of the trade.
    • Monitor all open trades and automatically close them if the prediction changes or targets are reached.
  9. Direct Execution:

    • Use the MetaTrader5 library to send orders directly to the MT5 platform (open trades, set Stop Loss, and Take Profit).
    • Continuously update predictions and signals based on new market movements and updates from the neural network.

This strategy aims to execute trades directly in the MT5 platform based on real-time market predictions from a neural network, without the use of traditional indicators.


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