PyTorch Fundamentals: Solving Your First Regression Problem — PickAClass
⏱ 2 oras 42 min 📚 27 aralin 🎧 Audio version

PyTorch Fundamentals: Solving Your First Regression Problem

Build and train a linear regression model from scratch using PyTorch tensors, autograd, and optimizers through clear, step-by-step written tutorials.

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Tungkol sa kursong ito

Understanding how neural networks learn starts with mastering the absolute basics of regression and gradient descent. This text-based course guides you through implementing your very first predictive model using PyTorch, the industry-standard library for deep learning. You will transition from writing raw Python code to constructing a fully functional linear regression pipeline. By reading clear explanations and working through structured text exercises, you will gain a solid mental model of how deep learning frameworks optimize parameters under the hood. What you'll learn: - Understand foundational tensor operations and how PyTorch manages data structures - Apply automatic differentiation using PyTorch autograd to compute gradients effortlessly - Configure loss functions and optimizers to iteratively improve model accuracy - Build a complete linear regression training loop from scratch using clean, modern Python practices - Practice debugging model training steps by analyzing loss values and parameter updates The course begins with essential terminology and the mathematical intuition behind linear regression, then guides you step-by-step through setting up tensors, calculating gradients, and executing the training loop. This program is designed for beginners with basic Python knowledge who want a clear, no-fluff introduction to PyTorch fundamentals without complex prerequisites. Start reading today to build a strong foundation in modern machine learning.

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