Neural Network Fundamentals: Mastering Backpropagation with PyTorch
Understand the mathematical foundation of deep learning by building and debugging the backpropagation algorithm from scratch using PyTorch.
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Tungkol sa kursong ito
Have you ever wondered what actually happens under the hood when a neural network learns? While modern deep learning libraries handle optimization automatically, truly mastering AI requires understanding the core mathematical engine: backpropagation. This text-based course demystifies the calculus and mechanics of gradient descent, giving you the confidence to debug, optimize, and design complex neural architectures. You will transition from using high-level frameworks as black boxes to understanding exactly how errors propagate backward to update network weights. Learn to write clean, efficient training loops and implement custom autograd functions. What you'll learn: Understand the foundational calculus of backpropagation, including the chain rule and partial derivatives; Build a neural network training loop from scratch using raw PyTorch tensors; Implement custom forward and backward passes to gain complete control over gradient calculations; Debug vanishing and exploding gradients using modern weight initialization techniques; Apply clean code practices to structure optimization algorithms for better performance. We begin with essential mathematical definitions and core terminology before moving step-by-step through manual gradient calculations, eventually implementing these concepts in clean PyTorch code. This course is designed for beginner to intermediate programmers who want to move beyond high-level APIs and build a deep, intuitive grasp of neural network optimization. Start reading today to unlock the true mechanics of deep learning.
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