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    State-of-the-art Research of Deep Reinforcement-learning

    Posted By: BlackDove
    State-of-the-art Research of Deep Reinforcement-learning

    State-of-the-art Research of Deep Reinforcement-learning
    Published 06/2022
    Genre: eLearning | MP4 | Video: h264, 1280x720 | Audio: AAC, 44.1 KHz
    Language: English | Size: 679 MB | Duration: 20 lectures • 30m


    OpenAI research, DeepMind research, Google research, Microsoft research

    What you'll learn
    Get state-of-the-art knowledge of deep reinforcement-learning research
    Be able to start deep reinforcement-learning research
    Be able to get engineering job on deep reinforcement-learning
    Be able to get research job on deep reinforcement-learning

    Requirements
    An interset on deep reinforcement-learning research
    Description
    Hello I am Nitsan Soffair, a Deep RL researcher at BGU.

    In my State-of-the-art Research of Deep Reinforcement-learning course you will get the newest state-of-the-art Deep reinforcement-learning research knowledge.

    You will do the following

    Get state-of-the-art research knowledge regarding

    OpenAI research

    DeepMind research

    Google research

    Microsoft research

    Validate your knowledge by answering short quizzes of each lecture.

    Be able to complete the course by ~2 hours.

    Topics

    Advanced exploration methods

    Chatbot based Deep RL

    Evaluation strategies

    Advanced RL metrics

    Navigating robot get human language instructions

    Merging on-policy and off-policy gradient estimation

    Hierarchical RL

    More advanced topics

    Syllabus

    OpenAI research

    Emergent Tool Use from Multi-Agent Interaction

    Learning Dexterity

    Emergent Complexity via Multi-Agent Competition

    Competitive Self-Play Better Exploration with Parameter Noise

    Proximal Policy Optimization

    Evolution Strategies as a Scalable Alternative to Reinforcement Learning

    DeepMind research

    Recurrent Experience Reply in distributed Reinforcement-learning

    Maximum a Posteriori Policy Optimization

    NeuPL: Neural Population Learning

    Learning more skills through optimistic exploration

    When should agents explore?

    Google brain research

    QT-Opt: Scalable Deep Reinforcement Learning for Vision-Based Robotic Manipulation

    FollowNet: Robot Navigation by Following Natural Language Directions with Deep Reinforcement Learning

    Interpolated Policy Gradient: Merging On-Policy and Off-Policy Gradient Estimation for Deep Reinforcement Learning

    Scalable Deep Reinforcement Learning Algorithms for Mean Field

    Value-Based Deep Reinforcement Learning Requires Explicit Regularisation

    Air Learning: a deep reinforcement learning gym for autonomous aerial robot visual navigation

    Deep Reinforcement Learning at the Edge of the Statistical Precipice

    Exploration in Reinforcement Learning with Deep Covering Options

    Microsoft research

    Deep Reinforcement-learning for Dialogue Generation

    Resources

    OpenAI papers

    DeepMind papers

    Google papers

    Microsoft papers

    Who this course is for
    Anyone who interset on deep reinforcement-learning research