Practical Deep Learning in Python (Paperback)
Idioma: inglés
Editorial: Independently Published, 2025
- Tapa blanda
- Nuevo

Librería: Grand Eagle Retail, Bensenville, IL, Estados Unidos de AmericaGrand Eagle Retail
Vendedor de AbeBooks desde 12 de octubre de 2005
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EUR 35,43
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Paperback. Unlock the Power of Deep Learning-No Experience NeededAre you fascinated by artificial intelligence but overwhelmed by where to begin? Do the endless tutorials, frameworks, and jargon make deep learning seem out of reach? This book is your roadmap-whether you're a complete beginner, a student, or a developer eager to build real AI solutions with confidence.Practical Deep Learning in Python gently guides you from your very first neural network to advanced projects, all with hands-on, step-by-step instructions. There's no need for a PhD or prior experience-just curiosity and the desire to learn. Every concept is broken down with plain language, practical tips, and complete code examples you can run, modify, and make your own.What Makes This Book Different?Four Frameworks, One Journey: Master PyTorch, TensorFlow, Keras, and JAX-discover each tool's strengths, see how they compare, and develop the flexibility to tackle any project.Project-Based Learning: Build image classifiers, sentiment analysis models, time series predictors, and more-across real-world datasets and domains.Step-by-Step Guidance: Each chapter builds on the last, ensuring you gain both a solid foundation and advanced techniques, including transfer learning, model optimization, and deployment.Beginner Friendly, Expert-Ready: Start from scratch and grow at your own pace. All essential Python tools and setup steps are covered, with troubleshooting tips to keep you moving forward.Encouraging and Supportive: Mistakes are normal-progress is celebrated at every stage. You'll learn how to experiment, debug, and grow, turning setbacks into breakthroughs.You'll Gain: The confidence to build, train, and evaluate deep learning models from the ground upPractical skills with today's most important Python AI frameworksA clear understanding of core deep learning concepts, from neural networks to deploymentA flexible mindset for adapting to new tools and challenges as the AI field evolvesKey Takeaways: Hands-on code in every chapter-experiment, modify, and make it your ownReal-world projects: image classification, NLP, time series, and moreSide-by-side framework comparisons for deep learning masteryGuidance on environment setup, hardware acceleration, and troubleshootingInsider tips for best practices, reproducibility, and staying up-to-date in AIReady to Build Something Amazing?Start your practical journey into deep learning today-turn your curiosity into real skills, and your skills into intelligent solutions that make a difference. With this book as your mentor, you'll discover that anyone can master deep learning-one step at a time. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. …
N° de ref. del artículo 9798296067494
- Título
- Practical Deep Learning in Python (Paperback)
- Autor
- Marcus C. Lauritsen
- Editorial
- Independently Published
- Año de publicación
- 2025
- Estado
- new
- Encuadernación
- Paperback
- Idioma
- inglés
- ISBN 13
- 9798296067494
Unlock the Power of Deep Learning—No Experience Needed
Are you fascinated by artificial intelligence but overwhelmed by where to begin? Do the endless tutorials, frameworks, and jargon make deep learning seem out of reach? This book is your roadmap—whether you’re a complete beginner, a student, or a developer eager to build real AI solutions with confidence.
Practical Deep Learning in Python gently guides you from your very first neural network to advanced projects, all with hands-on, step-by-step instructions. There’s no need for a PhD or prior experience—just curiosity and the desire to learn. Every concept is broken down with plain language, practical tips, and complete code examples you can run, modify, and make your own.
What Makes This Book Different?
-
Four Frameworks, One Journey: Master PyTorch, TensorFlow, Keras, and JAX—discover each tool’s strengths, see how they compare, and develop the flexibility to tackle any project.
-
Project-Based Learning: Build image classifiers, sentiment analysis models, time series predictors, and more—across real-world datasets and domains.
-
Step-by-Step Guidance: Each chapter builds on the last, ensuring you gain both a solid foundation and advanced techniques, including transfer learning, model optimization, and deployment.
-
Beginner Friendly, Expert-Ready: Start from scratch and grow at your own pace. All essential Python tools and setup steps are covered, with troubleshooting tips to keep you moving forward.
-
Encouraging and Supportive: Mistakes are normal—progress is celebrated at every stage. You’ll learn how to experiment, debug, and grow, turning setbacks into breakthroughs.
You’ll Gain:
-
The confidence to build, train, and evaluate deep learning models from the ground up
-
Practical skills with today’s most important Python AI frameworks
-
A clear understanding of core deep learning concepts, from neural networks to deployment
-
A flexible mindset for adapting to new tools and challenges as the AI field evolves
Key Takeaways:
-
Hands-on code in every chapter—experiment, modify, and make it your own
-
Real-world projects: image classification, NLP, time series, and more
-
Side-by-side framework comparisons for deep learning mastery
-
Guidance on environment setup, hardware acceleration, and troubleshooting
-
Insider tips for best practices, reproducibility, and staying up-to-date in AI
Ready to Build Something Amazing?
Start your practical journey into deep learning today—turn your curiosity into real skills, and your skills into intelligent solutions that make a difference. With this book as your mentor, you’ll discover that anyone can master deep learning—one step at a time.
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