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artificial-neural-network artificial-neural-networks support-vector-machines support-vector-machine support-vector-regression sentiment-analysis stock-price-prediction stock-price-forecasting stock-prediction technical-analysis

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New complementary tool

My name is Luis, I'm a big-data machine-learning developer, I'm a fan of your work, and I usually check your updates.

I was afraid that my savings would be eaten by inflation. I have created a powerful tool that based on past technical patterns (volatility, moving averages, statistics, trends, candlesticks, support and resistance, stock index indicators).
All the ones you know (RSI, MACD, STOCH, Bolinger Bands, SMA, DEMARK, Japanese candlesticks, ichimoku, fibonacci, williansR, balance of power, murrey math, etc) and more than 200 others.

The tool creates prediction models of correct trading points (buy signal and sell signal, every stock is good traded in time and direction).
For this I have used big data tools like pandas python, stock market libraries like: tablib, TAcharts ,pandas_ta... For data collection and calculation.
And powerful machine-learning libraries such as: Sklearn.RandomForest , Sklearn.GradientBoosting, XGBoost, Google TensorFlow and Google TensorFlow LSTM.

With the models trained with the selection of the best technical indicators, the tool is able to predict trading points (where to buy, where to sell) and send real-time alerts to Telegram or Mail. The points are calculated based on the learning of the correct trading points of the last 2 years (including the change to bear market after the rate hike).

I think it could be useful to you, to improve, I would like to share it with you, and if you are interested in improving and collaborating I am also willing, and if not file it in the box.

Did you choose this approach with a stock that has accurate results?

Hi,

I have been using your code especially the sentiment portion and found it very insightful.

As for the last portion where you predict using neural networks with sentiment, I am not seeing the results to be that accurate.

In your case, did you test this on multiple tickers to see which one was the most accurate before choosing the ticker in your example based on this model?

I also broke out the sentiment by category such as technology, usa, business, etc.

Overall very helpful though!

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