होम / Deep Learning & Neural Networks · English
Deep Learning & Neural Networks
Understand and build neural networks: neurons, backpropagation, PyTorch training loops, regularisation, CNNs, embeddings, attention, transformers and transfer learning, with every example run on CPU.
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आप क्या सीखेंगे Explain neurons, activations, layers and why depth lets networks learn non-linear patterns. Describe how loss functions, backpropagation and optimisers train a network, and check gradients. Write a complete PyTorch training loop with tensors, modules, data loaders and evaluation mode. Diagnose and fix training problems such as vanishing gradients, overfitting and bad learning rates. Explain and build convolutional networks, and explain embeddings, attention and transformer blocks. Apply transfer learning, debug models systematically, and save and serve them correctly.