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intro-to-deep-learning's Introduction

Intro-to-Deep-Learning

with Google TensorFlow

Course Materials Created and Curated by Karen Mazidi

Course Outline:

Part 1: Foundations

  • Python Fundamentals
  • Linear Models and ML Basics
  • Neural Network and Deep Learning Foundations

Part 2: Deep Learning with TF Keras

  • Sequential Models; Keras API and Functional API
  • TF Possibilities
  • CNNs
  • RNNs, LSTMs, GRUs
  • Sequence-to-Sequence Models
  • More about Embeddings

Part 3: Advanced Techniques

  • Custom loss functions, layers, models, and callbacks
  • Transfer Learning
  • Autoencoders and stacked autoencoders
  • GANs
  • SNNs

For best results, download the notebooks, copy to your Google drive, and run in Google colab.

With much appreciation to Google for the grant and other course support.

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