Custom and Distributed Model Training in TensorFlow

Build custom training loops and scale your machine learning models across multiple processors using TensorFlow's flexible eager and graph execution modes.

4.8 (438) ⏱ 1時間16分 📚 5レッスン

このコースについて

To build advanced machine learning models, standard high-level APIs are not always enough. To get full control over your training processes and scale them efficiently, you need to understand how to write custom loops and distribute workloads. This course guides you from the absolute essentials of TensorFlow operations to implementing highly customized training pipelines. You will gain a deep understanding of how TensorFlow manages computation under the hood, enabling you to optimize performance and scale your models across multiple devices. What you'll learn: - Understand the foundational structure of Tensor objects, eager execution, and graph computation. - Build custom training loops from scratch using GradientTape for precise control over model optimization. - Configure efficient input pipelines using modern tf.data practices to prevent training bottlenecks. - Apply distributed training strategies to scale your models across multiple GPUs and machines. - Optimize model performance by converting dynamic Python code into high-speed static computation graphs. You will start by exploring the core architecture of TensorFlow, including tensors, variables, and automatic differentiation. From there, you will progress to constructing custom training logic and applying distributed strategies to handle large-scale datasets. This course is designed for developers and aspiring machine learning engineers who want to go beyond basic high-level APIs. A foundational understanding of Python and basic neural networks is recommended, but no prior experience with custom TensorFlow workflows is required. Start mastering custom training pipelines and scale your machine learning models today.

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レビュー (2)

Michael Garcia NZ 認証済み受講者
★ 3 · 2025-06-14T23:22:00+00:00

It's a decent introduction. Could benefit from more diverse examples and a slightly better flow between modules.

Thomas Bennett GB 認証済み受講者
★ 3 · 2025-04-18T15:42:00+00:00

Pretty good introduction. The examples were helpful, but I wish there was a bit more practice material. Solid value for the cost.

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