Artificial Intelligence is transforming the world, and at the center of this revolution lies Deep Learning - the technology powering computer vision, large language models, autonomous systems, recommendation engines, and generative AI. Yet for many learners, understanding deep learning can feel intimidating. Most books focus heavily on complex mathematics, lengthy derivations, or implementation without building intuition. Deep Learning in Focus was written with a different philosophy: intuition first. This book helps readers understand why neural networks work through clear explanations, visual understanding, and simple mathematics before getting lost in complexity. Inside, you will learn how neural networks learn through forward and backpropagation, gradient descent and optimization, modern optimizers such as Momentum, AdaGrad, RMSProp, and Adam, activation functions, regularization techniques including L1, L2, Dropout, and Early Stopping, stable training methods like Batch Normalization and Weight Initialization, and core ideas behind generalization, overfitting, validation, and hyperparameter tuning. Unlike traditional textbooks, this book focuses on the essential theory of deep learning, explained in a clear, concise, and approachable way. Whether you are a student, AI enthusiast, or machine learning beginner, this book offers a focused path toward building strong intuition. Deep learning is powerful - understanding it should not be complicated.
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Taschenbuch. Condition: Neu. Neuware - Artificial Intelligence is transforming the world, and at the center of this revolution lies Deep Learning - the technology powering computer vision, large language models, autonomous systems, recommendation engines, and generative AI. Yet for many learners, understanding deep learning can feel intimidating. Most books focus heavily on complex mathematics, lengthy derivations, or implementation without building intuition. Deep Learning in Focus was written with a different philosophy: intuition first. This book helps readers understand why neural networks work through clear explanations, visual understanding, and simple mathematics before getting lost in complexity. Inside, you will learn how neural networks learn through forward and backpropagation, gradient descent and optimization, modern optimizers such as Momentum, AdaGrad, RMSProp, and Adam, activation functions, regularization techniques including L1, L2, Dropout, and Early Stopping, stable training methods like Batch Normalization and Weight Initialization, and core ideas behind generalization, overfitting, validation, and hyperparameter tuning. Unlike traditional textbooks, this book focuses on the essential theory of deep learning, explained in a clear, concise, and approachable way. Whether you are a student, AI enthusiast, or machine learning beginner, this book offers a focused path toward building strong intuition. Deep learning is powerful - understanding it should not be complicated. Seller Inventory # 9798905609046
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