TensorFlow Feature Columns for Scalable Machine Learning โ€” WalkSelf
โฑ 3 oras ๐Ÿ“š 30 aralin ๐ŸŽง Audio version

TensorFlow Feature Columns for Scalable Machine Learning

Learn to structure and transform numeric and categorical data to build clean, efficient data pipelines and scalable machine learning models in TensorFlow.

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Tungkol sa kursong ito

Preparing raw data for machine learning models is often the most time-consuming part of any data science workflow. This text-only course guides you through structured data preprocessing using TensorFlow, enabling you to build robust pipelines that scale seamlessly from local development to production environments. You will learn how to turn raw tables of numbers and text into optimized model inputs. By understanding the core mechanics of structured data representation, you will write cleaner, more maintainable training code that handles complex features with ease. What you'll learn: - Understand the foundational concepts of structured data representation in TensorFlow - Configure numeric, bucketized, and indicator columns to handle continuous variables - Create categorical columns using vocabulary lists, hashes, and identity mappings - Design crossed feature columns to capture complex interactions between variables - Apply modern data pipeline best practices using the tf.data API for optimal performance - Build and train a complete machine learning model using structured input features This course begins with essential definitions and core concepts of feature engineering, ensuring you have a solid theoretical foundation before moving on to practical implementation patterns. You will progress from simple numeric transformations to complex categorical embeddings and feature crosses, learning how to structure your code for maximum efficiency. This course is designed for beginner machine learning engineers, data scientists, and developers who want to improve their data preprocessing workflows in TensorFlow. No advanced mathematical background or prior deep learning experience is required. Start reading today to build cleaner, more efficient, and highly scalable machine learning pipelines.

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