riversongs Posted May 1 Report Share Posted May 1 Free Download Udemy - Building a Stock Price Predictor using LSTM in KerasPublished: 4/2025MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz, 2 ChLanguage: English | Duration: 1h 9m | Size: 241 MBLSTM Stock Price Prediction - Time Series Forecasting, Deep Learning, Data Preprocessing, and Google Colab DeploymentWhat you'll learnUnderstand the fundamentals of time series forecasting with LSTM (Long Short-Term Memory) modelsCollect and visualize stock price data using Yahoo Finance and MatplotlibPreprocess financial data and apply feature scaling techniquesCreate sequence datasets suitable for LSTM networksBuild and train an LSTM-based neural network using TensorFlow/KerasApply model checkpointing and early stopping for optimal performanceMake future predictions and rolling forecasts of stock pricesVisualize model performance and export predictions to CSVSave trained models and scalers to Google Drive for future useEvaluate model performance using RMSE and MAE metricsRequirementsBasic understanding of Python programmingA Google account to run and save filesDescriptionIn this hands-on course, you'll learn how to build a complete Stock Price Prediction System using LSTM (Long Short-Term Memory) networks in Python - one of the most powerful deep learning architectures for time series data. Designed for learners with basic programming knowledge, this course walks you through real-world financial forecasting using historical stock market data.You will begin with data collection from Yahoo Finance using yfinance, and learn how to preprocess and visualize stock price data with pandas, NumPy, and matplotlib. You'll then dive deep into sequence modeling using LSTM from TensorFlow/Keras - a powerful neural network for capturing patterns in sequential data like stock prices. We will cover model architecture design, training strategies using early stopping and checkpointing, and advanced features such as rolling window forecasting and future prediction.Additionally, you'll learn how to deploy your project on Google Colab with GPU acceleration, and save models, scalers, metrics, and results directly to your Google Drive for seamless storage and access.By the end of this course, you'll be equipped to develop your own time series forecasting tools - a valuable skill in finance, AI applications, and predictive analytics. Whether you're a student, developer, or aspiring data scientist, this project-based approach ensures you can apply your knowledge in the real world.Who this course is for Data science and AI enthusiasts interested in time-series forecastingBeginners and intermediate learners looking for a practical deep learning projectFinance professionals who want to understand stock prediction using neural networksStudents building academic or industry-ready projectsAnyone curious to learn how to forecast stock prices using real-world data and LSTMHomepage: https://www.udemy.com/course/building-a-stock-price-predictor-using-lstm-in-keras/AusFilehttps://ausfile.com/7pl8wjvkhhd8/psigr.Building.a.Stock.Price.Predictor.using.LSTM.in.Keras.rar.htmlRapidgator Links Downloadhttps://rg.to/file/881940f19373623aa9819662b67eb7d8/psigr.Building.a.Stock.Price.Predictor.using.LSTM.in.Keras.rar.htmlFikper Links Downloadhttps://fikper.com/qiFnQnebwR/psigr.Building.a.Stock.Price.Predictor.using.LSTM.in.Keras.rar.htmlNo Password - Links are Interchangeable Link to comment Share on other sites More sharing options...
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