AI Development with TensorFlow and PyTorch: Foundations, Techniques, and Real-World Applications of Deep Learning is a professional guide designed for engineers, researchers, and tech leaders who need to navigate the world’s two most powerful AI ecosystems.
The book moves beyond a simple "how-to" by treating TensorFlow and PyTorch as a unified toolkit rather than competing rivals. It follows a rigorous path from the mathematical foundations of neural networks to high-level industrial deployment.
Core Themes & Highlights
Framework Fluency: Unlike books that specialize in just one library, this work focuses on cross-framework proficiency. It teaches you how to choose the right tool for the job—leveraging PyTorch for research agility and TensorFlow for production stability.
The Modern Architecture Stack: It provides deep dives into the transition from traditional CNNs and RNNs to modern Transformer architectures, Generative AI (GANs, VAEs, and Diffusion), and Large Language Models (LLMs).
End-to-End MLOps: A significant portion is dedicated to the "Real-World" aspect. You learn how to manage data versions with DVC, track complex experiments with Weights & Biases, and deploy models to the edge using TFLite and ONNX.
Responsible Innovation: The book concludes with a critical look at Ethical AI, teaching developers how to mathematically detect bias and harden their models against adversarial security attacks.
Who is this for?
This book is intended for intermediate to advanced practitioners—individuals who understand basic Python and are ready to build, scale, and deploy "enterprise-ready" artificial intelligence.
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Paperback. Zustand: new. Paperback. AI Development with TensorFlow and PyTorch: Foundations, Techniques, and Real-World Applications of Deep Learning is a professional guide designed for engineers, researchers, and tech leaders who need to navigate the world's two most powerful AI ecosystems. The book moves beyond a simple "how-to" by treating TensorFlow and PyTorch as a unified toolkit rather than competing rivals. It follows a rigorous path from the mathematical foundations of neural networks to high-level industrial deployment. Core Themes & HighlightsFramework Fluency: Unlike books that specialize in just one library, this work focuses on cross-framework proficiency. It teaches you how to choose the right tool for the job-leveraging PyTorch for research agility and TensorFlow for production stability. The Modern Architecture Stack: It provides deep dives into the transition from traditional CNNs and RNNs to modern Transformer architectures, Generative AI (GANs, VAEs, and Diffusion), and Large Language Models (LLMs). End-to-End MLOps: A significant portion is dedicated to the "Real-World" aspect. You learn how to manage data versions with DVC, track complex experiments with Weights & Biases, and deploy models to the edge using TFLite and ONNX. Responsible Innovation: The book concludes with a critical look at Ethical AI, teaching developers how to mathematically detect bias and harden their models against adversarial security attacks. Who is this for?This book is intended for intermediate to advanced practitioners-individuals who understand basic Python and are ready to build, scale, and deploy "enterprise-ready" artificial intelligence. This item is printed on demand. Shipping may be from multiple locations in the US or from the UK, depending on stock availability. Bestandsnummer des Verkäufers 9798242185685
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Paperback. Zustand: new. Paperback. AI Development with TensorFlow and PyTorch: Foundations, Techniques, and Real-World Applications of Deep Learning is a professional guide designed for engineers, researchers, and tech leaders who need to navigate the world's two most powerful AI ecosystems. The book moves beyond a simple "how-to" by treating TensorFlow and PyTorch as a unified toolkit rather than competing rivals. It follows a rigorous path from the mathematical foundations of neural networks to high-level industrial deployment. Core Themes & HighlightsFramework Fluency: Unlike books that specialize in just one library, this work focuses on cross-framework proficiency. It teaches you how to choose the right tool for the job-leveraging PyTorch for research agility and TensorFlow for production stability. The Modern Architecture Stack: It provides deep dives into the transition from traditional CNNs and RNNs to modern Transformer architectures, Generative AI (GANs, VAEs, and Diffusion), and Large Language Models (LLMs). End-to-End MLOps: A significant portion is dedicated to the "Real-World" aspect. You learn how to manage data versions with DVC, track complex experiments with Weights & Biases, and deploy models to the edge using TFLite and ONNX. Responsible Innovation: The book concludes with a critical look at Ethical AI, teaching developers how to mathematically detect bias and harden their models against adversarial security attacks. Who is this for?This book is intended for intermediate to advanced practitioners-individuals who understand basic Python and are ready to build, scale, and deploy "enterprise-ready" artificial intelligence. This item is printed on demand. Shipping may be from our UK warehouse or from our Australian or US warehouses, depending on stock availability. Bestandsnummer des Verkäufers 9798242185685
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