| 1. (FreeTutorials.Us) Download Udemy Paid Courses For Free.url | 307.2 B | ||
| 1. The Whole Implementation.mp4 | 273.7 MB | ||
| 1. The Whole Implementation.srt | 28.3 KB | ||
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| 1. Updates on Udemy Reviews.mp4 | 22 MB | ||
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| 1. Welcome to Step 1 - Artificial Neural Network.html | 614.4 B | ||
| 1. Welcome to Step 10 - Deep NeuroEvolution.html | 1.2 KB | ||
| 1. Welcome to Step 2 - Convolutional Neural Network.html | 409.6 B | ||
| 1. Welcome to Step 3 - AutoEncoder.html | 409.6 B | ||
| 1. Welcome to Step 4 - Variational AutoEncoder.html | 409.6 B | ||
| 1. Welcome to Step 5 - Implementing the CNN-VAE.html | 2.3 KB | ||
| 1. Welcome to Step 6 - Recurrent Neural Network.html | 512 B | ||
| 1. Welcome to Step 7 - Mixture Density Network.html | 512 B | ||
| 1. Welcome to Step 8 - Implementing the MDN-RNN.html | 2.8 KB | ||
| 1. Welcome to Step 9 - Reinforcement Learning.html | 409.6 B | ||
| 1. YOUR SPECIAL BONUS.html | 1.1 KB | ||
| 10. Implementing the Training operations (Part 2).mp4 | 162.9 MB | ||
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| 10. Softmax & Cross-Entropy.mp4 | 118 MB | ||
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| 11. Deep AutoEncoders.mp4 | 12 MB | ||
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| 11. Full Code Section.html | 10.8 KB | ||
| 12. The Keras Implementation.html | 5.3 KB | ||
| 2. (FreeCoursesOnline.Me) Download Udacity, Masterclass, Lynda, PHLearn, Pluralsight Free.url | 307.2 B | ||
| 2. Deep NeuroEvolution.mp4 | 108.8 MB | ||
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| 2. Download the whole AI Masterclass folder here.html | 1 KB | ||
| 2. Initializing all the parameters and variables of the MDN-RNN class.mp4 | 99.5 MB | ||
| 2. Initializing all the parameters and variables of the MDN-RNN class.srt | 18 KB | ||
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| 2. Introduction + Course Structure + Demo.mp4 | 195.3 MB | ||
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| 2. Introduction + Course Structure + Demo.vtt | 19.2 KB | ||
| 2. Introduction to Step 5.mp4 | 58.8 MB | ||
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| 2. Introduction to the MDN-RNN.mp4 | 83.4 MB | ||
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| 2. Introduction to the VAE.mp4 | 72.8 MB | ||
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| 2. Plan of Attack.mp4 | 10.5 MB | ||
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| 2. What is Reinforcement Learning.mp4 | 68.6 MB | ||
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| 2.1 AI Masterclass.zip.zip | 17.1 MB | ||
| 3. (NulledPremium.com) Download Cracked Website Themes, Plugins, Scripts And Stock Images.url | 204.8 B | ||
| 3. A Pseudo Implementation of Reinforcement Learning for the Full World Model.mp4 | 154.3 MB | ||
| 3. A Pseudo Implementation of Reinforcement Learning for the Full World Model.srt | 27 KB | ||
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| 3. BONUS Learning Paths.html | 2.4 KB | ||
| 3. Building the RNN - Gathering the parameters.mp4 | 76.6 MB | ||
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| 3. Evolution Strategies.mp4 | 119.4 MB | ||
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| 3. Initializing all the parameters and variables of the CNN-VAE class.mp4 | 71.7 MB | ||
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| 3. Installing the required packages.mp4 | 158.7 MB | ||
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| 3. Mixture Density Networks.mp4 | 65.4 MB | ||
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| 3. The Neuron.mp4 | 98.8 MB | ||
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| 3. Variational AutoEncoders.mp4 | 26.3 MB | ||
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| 3. What are AutoEncoders.mp4 | 94.6 MB | ||
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| 3. What are Convolutional Neural Networks.mp4 | 108 MB | ||
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| 3. What are Recurrent Neural Networks.mp4 | 121.1 MB | ||
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| 4. (FTUApps.com) Download Cracked Developers Applications For Free.url | 204.8 B | ||
| 4. A Note on Biases.mp4 | 8.6 MB | ||
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| 4. Building the Encoder part of the VAE.mp4 | 133.6 MB | ||
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| 4. Building the RNN - Creating an LSTM cell with Dropout.mp4 | 127.2 MB | ||
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| 4. Full Code Section.html | 409.6 B | ||
| 4. Genetic Algorithms.mp4 | 149.1 MB | ||
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| 4. Reparameterization Trick.mp4 | 26.4 MB | ||
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| 4. Step 1 - The Convolution Operation.mp4 | 97.9 MB | ||
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| 4. The Activation Function.mp4 | 45.4 MB | ||
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| 4. The Final Race Human Intelligence vs. Artificial Intelligence.mp4 | 125.1 MB | ||
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| 4. The Vanishing Gradient Problem.mp4 | 111.2 MB | ||
| 4. The Vanishing Gradient Problem.srt | 20.8 KB | ||
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| 4. VAE + MDN-RNN Visualization.mp4 | 45.3 MB | ||
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| 4. Your Three Best Resources.mp4 | 134.5 MB | ||
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| 5. (Discuss.FTUForum.com) FTU Discussion Forum.url | 307.2 B | ||
| 5. Building the RNN - Setting up the Input, Target, and Output of the RNN.mp4 | 131.1 MB | ||
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| 5. Building the V part of the VAE.mp4 | 80.3 MB | ||
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| 5. Covariance-Matrix Adaptation Evolution Strategy (CMA-ES).mp4 | 144.1 MB | ||
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| 5. Download the Resources here.html | 819.2 B | ||
| 5. How do Neural Networks work.mp4 | 81.9 MB | ||
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| 5. LSTMs.mp4 | 136.5 MB | ||
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| 5. Step 1 Bis - The ReLU Layer.mp4 | 53.4 MB | ||
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| 5. THANK YOU bonus video.mp4 | 29.2 MB | ||
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| 5. Training an AutoEncoder.mp4 | 50.3 MB | ||
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| 6. Building the Decoder part of the VAE.mp4 | 92.9 MB | ||
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| 6. Building the RNN - Getting the Deterministic Output of the RNN.mp4 | 125.5 MB | ||
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| 6. How do Neural Networks learn.mp4 | 112.1 MB | ||
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| 6. LSTM Practical Intuition.mp4 | 187.4 MB | ||
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| 6. Meet your instructors!.html | 716.8 B | ||
| 6. Overcomplete Hidden Layers.mp4 | 28.1 MB | ||
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| 6. Parameter-Exploring Policy Gradients (PEPG).mp4 | 143.9 MB | ||
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| 6. Step 2 - Pooling.mp4 | 140.2 MB | ||
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| 7. Building the MDN - Getting the Input, Hidden Layer and Output of the MDN.mp4 | 147 MB | ||
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| 7. Gradient Descent.mp4 | 60.6 MB | ||
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| 7. Implementing the Training operations.mp4 | 187 MB | ||
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| 7. LSTM Variations.mp4 | 20.1 MB | ||
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| 7. OpenAI Evolution Strategy.mp4 | 108.1 MB | ||
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| 7. Sparse AutoEncoders.mp4 | 57.5 MB | ||
| 7. Sparse AutoEncoders.srt | 8.8 KB | ||
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| 7. Step 3 - Flattening.mp4 | 7.9 MB | ||
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| 8. Building the MDN - Getting the MDN parameters.mp4 | 109.4 MB | ||
| 8. Building the MDN - Getting the MDN parameters.srt | 14.5 KB | ||
| 8. Building the MDN - Getting the MDN parameters.vtt | 12.8 KB | ||
| 8. Denoising AutoEncoders.mp4 | 24.1 MB | ||
| 8. Denoising AutoEncoders.srt | 3.6 KB | ||
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| 8. Full Code Section.html | 4 KB | ||
| 8. Step 4 - Full Connection.mp4 | 194.3 MB | ||
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| 8. Stochastic Gradient Descent.mp4 | 67.3 MB | ||
| 8. Stochastic Gradient Descent.srt | 12.2 KB | ||
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| 9. Backpropagation.mp4 | 43.1 MB | ||
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| 9. Contractive AutoEncoders.mp4 | 20.5 MB | ||
| 9. Contractive AutoEncoders.srt | 3.6 KB | ||
| 9. Contractive AutoEncoders.vtt | 3.1 KB | ||
| 9. Implementing the Training operations (Part 1).mp4 | 177.4 MB | ||
| 9. Implementing the Training operations (Part 1).srt | 20.5 KB | ||
| 9. Implementing the Training operations (Part 1).vtt | 17.8 KB | ||
| 9. Summary.mp4 | 30.3 MB | ||
| 9. Summary.srt | 6.1 KB | ||
| 9. Summary.vtt | 5.4 KB | ||
| 9. The Keras Implementation.html | 7.7 KB | ||
| How you can help Team-FTU.txt | 204.8 B | ||
| ▲ 234 total files | |||
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Enter the new era of Hybrid AI Models optimized by Deep NeuroEvolution, with a complete toolkit of ML, DL & AI models
Created by : Hadelin de Ponteves, Kirill Eremenko, SuperDataScience Team
Last updated : 7/2019
Language : English
Course Source : https://www.udemy.com/artificial-intelligence-masterclass/
What you'll learn
• How to Build an AI
• How to Build a Hybrid Intelligent System
• Fully-Connected Neural Networks
• Convolutional Neural Networks
• Recurrent Neural Networks
• AutoEncoders
• Variational AutoEncoders
• Mixture Density Network
• Deep Reinforcement Learning
• Policy Gradient
• Genetic Algorithms
• Evolution Strategies
• Covariance-Matrix Adaptation Evolution Strategies (CMA-ES)
• Controllers
• Meta Learning
• Deep NeuroEvolution
Course content
all 89 lectures 12:01:58
Requirements
• High school mathematics
• A bit of coding experience
Description
Today, we are bringing you the king of our AI courses...:
The Artificial Intelligence MASTERCLASS
Are you keen on Artificial Intelligence? Do want to learn to build the most powerful AI model developed so far and even play against it? Sounds tempting right...
Then Artificial Intelligence Masterclass course is the right choice for you. This ultimate AI toolbox is all you need to nail it down with ease. You will get 10 hours step by step guide and the full roadmap which will help you build your own Hybrid AI Model from scratch.
In this course, we will teach you how to develop the most powerful Artificial intelligence model based on the most robust Hybrid Intelligent System. So far this model proves to be the best state of the art AI ever created beating its predecessors at all the AI competitions with incredibly high scores.
This Hybrid Model is aptly named the Full World Model, and it combines all the state of the art models of the different AI branches, including Deep Learning, Deep Reinforcement Learning, Policy Gradient, and even, Deep NeuroEvolution.
By enrolling in this course you will have the opportunity to learn how to combine the below models in order to achieve best performing artificial intelligence system:
• Fully-Connected Neural Networks
• Convolutional Neural Networks
• Recurrent Neural Networks
• Variational AutoEncoders
• Mixed Density Networks
• Genetic Algorithms
• Evolution Strategies
• Covariance Matrix Adaptation Evolution Strategy (CMA-ES)
• Parameter-Exploring Policy Gradients
• Plus many others
Therefore, you are not getting just another simple artificial intelligence course but all in one package combining a course and a master toolkit, of the most powerful AI models. You will be able to download this toolkit and use it to build hybrid intelligent systems. Hybrid Models are becoming the winners in the AI race, so you must learn how to handle them already.
In addition to all this, we will also give you the full implementations in the two AI frameworks: TensorFlow and Keras. So anytime you want to build an AI for a specific application, you can just grab those model you need in the toolkit, and reuse them for different projects!
Don’t wait to join us on this EPIC journey in mastering the future of the AI - the hybrid AI Models.
Who this course is for :
• Anyone interested in Artificial Intelligence, Deep Learning, or Machine Learning.

| torrent name | size | uploader | age | seed | leech |
|---|---|---|---|---|---|
| 1.8 GB | freecoursewb | 4 weeks | 11 | 5 | |
| 1.8 GB | freecoursewb | 2 months | 13 | 11 | |
| 2 GB | freecoursewb | 2 months | 27 | 34 | |
| 1.9 GB | freecoursewb | 3 months | 5 | 3 | |
| 2 GB | freecoursewb | 4 months | 15 | 8 |
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