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Deep-Learning-Book

Deep Learning book the covers the principles of deep learning, motivation, explanations, state of the art papers for the various tasks and architectures:

  • Data Preprocessing
  • Weight Initialization
  • Activatation Functions
  • Loss functions
  • Optimization
  • Regularization
  • Convolutional Neural Netowrks
  • Object detection
  • Semantic Segmentation
  • Generative models
  • Denoising
  • Super resolution
  • Style transfer and style manipulation
  • Inpaintig
  • Self supervised learning
  • Vision Transformers
  • OCR
  • Multi modal

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Deep Learning book the covers the principles of deep learning, motivation, explanations, state of the art papers for the various tasks and architectures: CNNs, object detection, semantic segmentation, generative models, denoising, super resolution, style transfer and style manipulation, inpaintig, self supervised learning, vision transformers, O…

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