Master reinforcement learning algorithms for building intelligent agents and decision-making systems.
Varies by topic; basics usually sufficient
Some programming experience helpful
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A free online course that introduces the theory and applications of machine learning algorithms with a focus on policy applications and issues. The course includes hands-on applications using R and Python.
Deep Mind and UCL course on Deep Reinforcement Learning. Learn the fundamentals of RL and deep RL from researchers at Deep Mind.
This course will cover the fundamentals of deep reinforcement learning, one of the most exciting areas of machine learning today.
Are you short on time to start from scratch to use deep learning to solve complex problems involving topics like neural networks and reinforcement learning? Than this course is for you!This course is designed to help you to overcome various data science problems by using efficient deep learning models built in TensorFlow. You will begin with a quick introduction to TensorFlow essentials. Next, you start with deep neural networks for different problems and also explore the applications of Convolutional Neural Networks on two real datasets. We will than walk you through different approaches to RL. You’ll move from a simple Q-learning to a more complex, deep RL architecture and implement your algorithms using TensorFlow’s Python API. You’ll be training your agents on two different games in a number of complex scenarios to make them more intelligent and perceptive.By the end of this course, you’ll be able to implement RL-based solutions in your projects from scratch using TensorFlow and Python. Also you will be able to develop deep learning based solutions to any kind of problem you have, without any need to learn deep learning models from scratch, rather using TensorFlow and it’s enormous power.Contents and Overview This training program includes 2 complete courses, carefully chosen to give you the most comprehensive training possible.The first course, Hands-on Deep Learning with TensorFlow is designed to help you to overcome various data science problems by using efficient deep learning models built in TensorFlow.The course begins with a quick introduction to TensorFlow essentials. Next, we start with deep neural networks for different problems and then explore the applications of Convolutional Neural Networks on two real datasets. If you’re facing time series problem then we will show you how to tackle it using RNNs. We will also highlight how autoencoders can be used for efficient data representation. Lastly, we will take you through some of th
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