Stock Price Prediction with Deep Learning RNNs and LSTMs
Build, train, and evaluate recurrent neural networks and LSTM models to analyze and forecast financial market trends using modern Python libraries.
Tungkol sa kursong ito
Predicting financial markets is a complex challenge, but modern deep learning offers powerful tools to model sequential data. Understanding how recurrent neural networks process time-series data is an essential skill for aspiring quantitative analysts and data scientists. In this written course, you will transition from a beginner to confidently building sequential deep learning models. You will learn how to prepare financial datasets, construct recurrent neural networks (RNNs) with Long Short-Term Memory (LSTM) layers, and evaluate their predictive performance using real-world stock data.
What you'll learn:
- Understand the foundational concepts of sequential data, recurrent neural networks, and why LSTMs excel at capturing long-term dependencies.
- Prepare and preprocess raw financial datasets using modern data manipulation techniques and robust feature scaling.
- Build recurrent neural network architectures with LSTM layers using Python's deep learning ecosystem.
- Apply proper time-series validation techniques to prevent data leakage and ensure realistic model evaluation.
- Evaluate model performance using key regression metrics to analyze prediction accuracy against real-world stock trends.
The course begins with essential terminology and the mathematical intuition behind sequential models. You will then progress through step-by-step written explanations covering data preparation, model architecture design, training phases, and performance evaluation. This course is designed for beginners in deep learning and finance enthusiasts who want to apply machine learning to time-series data. Prior basic familiarity with Python is helpful, but no advanced deep learning background is required as we start with foundational concepts. Start reading today to master the fundamentals of financial forecasting with deep learning.
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1 oras 50 min ng practical content
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