Hands-On Deep Learning with PyTorch: Independently published
Autor Camila Jonesen Limba Engleză Paperback – 26 ian 2025
Key Features:
- Practical, hands-on approach: Dive into real-world projects, step-by-step tutorials, and interactive code examples designed to teach you how to apply deep learning techniques effectively.
- Comprehensive coverage: From understanding the basics of neural networks and backpropagation to mastering advanced topics like CNNs, RNNs, transformers, GANs, and reinforcement learning.
- Build, train, and deploy models: Learn how to design and train cutting-edge models for a variety of applications, including image classification, natural language processing, and generative modeling.
- Real-world case studies: Explore practical use cases from industries like healthcare, finance, and autonomous vehicles, demonstrating how deep learning is transforming modern technology.
- Master PyTorch: Understand the core PyTorch concepts, including tensors, autograd, and GPU acceleration, and apply them in building efficient, scalable deep learning models.
- Start with the basics: Learn the foundations of neural networks and PyTorch, setting up your development environment and writing your first deep learning model.
- Explore advanced techniques: Dive deep into convolutional neural networks (CNNs) for computer vision, recurrent neural networks (RNNs) and LSTMs for time-series and NLP tasks, and the powerful transformer models that power state-of-the-art natural language processing.
- Hands-on projects: Build practical applications, from image classification and sentiment analysis to creating your own generative models like GANs for art and data generation.
- Deploy your models: Learn how to take your trained models and deploy them to production with tools like PyTorch Serve and ONNX, or convert them for use with other frameworks such as TensorFlow.
With clear, simple explanations and practical code examples, this book simplifies complex deep learning concepts and turns theory into action. Each chapter includes exercises and challenges that reinforce your learning, making this a perfect resource for students, professionals, and anyone passionate about AI and machine learning.
By the end of this book, you'll have the skills to:
- Build deep learning models using PyTorch for a variety of tasks.
- Fine-tune pre-trained models for your own applications.
- Work with the latest deep learning techniques and frameworks.
- Apply deep learning solutions in real-world scenarios.
- Beginners wanting to learn deep learning and PyTorch from scratch.
- Intermediate learners looking to advance their knowledge and tackle more complex models.
- Developers and AI enthusiasts who want to integrate deep learning into their projects.
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Specificații
ISBN-13: 9798308448600
Pagini: 238
Dimensiuni: 178 x 254 x 13 mm
Greutate: 0.42 kg
Editura: Independently Published
Colecția Independently published
Seria Independently published
Pagini: 238
Dimensiuni: 178 x 254 x 13 mm
Greutate: 0.42 kg
Editura: Independently Published
Colecția Independently published
Seria Independently published