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[FreeCoursesOnline.Me] [UDACITY] Deep Learning Nanodegree Program - [FCO]

[FreeCoursesOnline.Me] [UDACITY] Deep Learning Nanodegree Program - [FCO]

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Description




Files Included: (380 WebRips (MP4) + Project Files (PDF, TXT, JPG, PY)

Language: English

Torrent Contains: 2,643 Files, 168 Folders

Course Source: https://eu.udacity.com/course/deep-learning-nanodegree--nd101



Description



Deep learning is driving advances in artificial intelligence that are changing our world. Enroll now to build and apply your own deep neural networks to produce amazing solutions to important challenges.





Course Syllabus



 

Introduction



• Get your first taste of deep learning by applying style transfer to your own images, and gain experience using development tools such as Anaconda and Jupyter notebooks.

 

Neural Networks



• Learn neural networks basics, and build your first network with Python and NumPy. Use the modern deep learning framework PyTorch to build multi-layer neural networks, and analyze real data.

 

Convolutional Neural Networks



• Learn how to build convolutional networks and use them to classify images (faces, melanomas, etc.) based on patterns and objects that appear in them. Use these networks to learn data compression and image denoising.

 

Recurrent Neural Networks



• Build your own recurrent networks and long short-term memory networks with PyTorch; perform sentiment analysis and use recurrent networks to generate new text from TV scripts.

 

Generative Adversarial Networks



• Learn to understand and implement the DCGAN model to simulate realistic images, with Ian Goodfellow, the inventor of GANS (generative adversarial networks).

 

Deploying a Sentiment Analysis Model



• Use deep neural networks to design agents that can learn to take actions in a simulated environment. Apply reinforcement learning to complex control tasks like video games and robotics.





Project 1



• Predicting Bike-Sharing Patterns



Project 2



• Dog-Breed Classifier



Project 3



• Generate TV scripts



Project 4



• Generate Faces



Project 5



• Deploying a Sentiment Analysis Model.



Why Take This Nanodegree Program?



In this program, you’ll cover Convolutional and Recurrent Neural Networks, Generative Adversarial Networks, Deployment, and more. You’ll use PyTorch, and have access to GPUs to train models faster. You'll learn from authorities like Sebastian Thrun, Ian Goodfellow, Jun-Yan Zhu, and Andrew Trask. This is the ideal point-of-entry into the field of AI.



For More Udemy Free Courses >>> http://www.freetutorials.eu

For more Lynda and other Courses >>> https://www.freecoursesonline.me/

Our Forum for discussion >>> https://discuss.freetutorials.eu/








File list
  • [FreeCoursesOnline.Me] [UDACITY] Deep Learning Nanodegree Program - [FCO]
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  • Part 01_Introduction to Deep Learning/Module 01_Introduction to the Nanodegree/Lesson 01_Welcome to Deep Learning/data.json 44.4 KB
  • Part 01_Introduction to Deep Learning/Module 01_Introduction to the Nanodegree/Lesson 02_Applying Deep Learning/data.json 21 KB
  • Part 01_Introduction to Deep Learning/Module 01_Introduction to the Nanodegree/Lesson 03_Anaconda/data.json 33.5 KB
  • Part 01_Introduction to Deep Learning/Module 01_Introduction to the Nanodegree/Lesson 04_Jupyter Notebooks/data.json 52.7 KB
  • Part 01_Introduction to Deep Learning/Module 01_Introduction to the Nanodegree/Lesson 05_Matrix Math and NumPy Refresher/data.json 39.5 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 01_Introduction to Neural Networks/data.json 124.3 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 02_Implementing Gradient Descent/data.json 101.1 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 03_Training Neural Networks/data.json 18.1 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 04_GPU Workspaces Demo/data.json 19.5 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 05_Project Predicting Bike Sharing Data/data.json 9 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 05_Project Predicting Bike Sharing Data/rubric.json 7.9 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 06_Sentiment Analysis/data.json 37 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 07_Keras/data.json 33.3 KB
  • Part 02_Neural Networks/Module 01_Neural Networks/Lesson 08_TensorFlow/data.json 114.4 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 01_Cloud Computing/data.json 37.7 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 02_Convolutional Neural Networks/data.json 97.6 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 03_CNNs in TensorFlow/data.json 31.4 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 04_Weight Initialization/data.json 8.2 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 05_Autoencoders/data.json 9 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 06_Transfer Learning in TensorFlow/data.json 11.9 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 07_CNN Project Dog Breed Classifier/data.json 9.9 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 07_CNN Project Dog Breed Classifier/rubric.json 13.3 KB
  • Part 03_Convolutional Networks/Module 01_ConvNets/Lesson 08_Deep Learning for Cancer Detection with Sebastian Thrun/data.json 78 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 01_Recurrent Neural Networks/data.json 199.2 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 02_Long Short-Term Memory Networks (LSTM)/data.json 21.3 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 03_Implementation of RNN and LSTM/data.json 13.9 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 04_Hyperparameters/data.json 26 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 05_Embeddings and Word2vec/data.json 11.7 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 06_Sentiment Prediction RNN/data.json 9.7 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 07_Generate TV Scripts/data.json 5.7 KB
  • Part 04_Recurrent Networks/Module 01_Recurrent Neural Networks/Lesson 07_Generate TV Scripts/rubric.json 12.7 KB
  • Part 05_Generative Adversarial Networks/Module 01_Generative Adversarial Networks/Lesson 01_Generative Adversarial Networks/data.json 20.6 KB
  • Part 05_Generative Adversarial Networks/Module 01_Generative Adversarial Networks/Lesson 02_Deep Convolutional GANs/data.json 14.3 KB
  • Part 05_Generative Adversarial Networks/Module 01_Generative Adversarial Networks/Lesson 03_Generate Faces/data.json 6.4 KB
  • Part 05_Generative Adversarial Networks/Module 01_Generative Adversarial Networks/Lesson 03_Generate Faces/rubric.json 7.2 KB
  • Part 05_Generative Adversarial Networks/Module 01_Generative Adversarial Networks/Lesson 04_Semi-Supervised Learning/data.json 13.5 KB
  • Part 06_Deep Reinforcement Learning/Module 01_Reinforcement Learning/Lesson 01_Introduction to RL/data.json 13.1 KB
  • Part 06_Deep Reinforcement Learning/Module 01_Reinforcement Learning/Lesson 02_The RL Framework The Problem/data.json 83.5 KB
  • Part 06_Deep Reinforcement Learning/Module 01_Reinforcement Learning/Lesson 03_The RL Framework The Solution/data.json 54.9 KB

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