Building Machine Learning Models with TensorFlow and Keras
Learn to design, train, and optimize foundational machine learning models using TensorFlow and Keras through structured text explanations and practical code examples.
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このコースについて
Transitioning into machine learning can feel overwhelming with complex mathematical concepts and fragmented framework APIs. Mastering TensorFlow and Keras provides a structured, industry-standard pathway to building and training powerful neural networks.
In this course, you will transition from understanding core machine learning terminology to confidently writing and executing TensorFlow code. You will learn how to prepare data, construct neural network architectures, and evaluate model performance using clean, modern practices.
What you'll learn:
- Understand the fundamental architecture of TensorFlow and the Keras API hierarchy
- Build and train neural networks for regression and classification tasks
- Design efficient input pipelines using modern tf.data best practices
- Prepare and preprocess raw datasets using modern preprocessing layers
- Evaluate, fine-tune, and save models for future deployment
Starting with foundational tensor operations, this text-based guide gradually walks you through building complex architectures, optimizing data pipelines, and implementing best practices for model training. You will read clear explanations and work through practical code snippets to reinforce your learning.
This course is designed for aspiring data scientists, software developers, and tech enthusiasts who want a clear, beginner-friendly introduction to deep learning without needing prior machine learning experience.
Begin your journey into deep learning and start writing your first TensorFlow models today.