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fuxiAIlab avatar

fuxiAIlab/RL4RS

0
View on GitHub↗
235 stars·28 forks·Python·CC-BY-SA-4.0·9 views

RL4RS

RL4RS is a real-world deep reinforcement learning recommender system benchmark for practitioners and researchers.

Features

  • Datasets and Benchmarks - Offers a real-world benchmark for reinforcement learning in recommender systems.

Star history

Star history chart for fuxiailab/rl4rsStar history chart for fuxiailab/rl4rs

How this analysis was created: This summary and feature list are AI-generated from collected project material and can contain mistakes. Stars, license and language are imported from GitHub. Inclusion does not mean that we have tested or audited this project. Check the source documentation for any feature you depend on. Learn more on our About page.

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Projects sharing features with RL4RS

These projects share indexed features with RL4RS. Shared tags can include platform or build tooling; verify the primary use case before treating a result as a replacement.
  • deepmind/deepmind-researchdeepmind avatar

    deepmind/deepmind-research

    15,024View on GitHub↗

    This project is an AI research implementation library and machine learning research repository. It provides a collection of reference code, illustrative implementations, and open-source research datasets used to verify hypotheses and build upon existing models in artificial intelligence. The repository focuses on scientific research reproduction by translating theoretical findings from published papers into executable code. It includes specialized scientific simulation environments designed to test the behavior of autonomous agents and models within controlled settings. The project covers AI

    Jupyter Notebook
    View on GitHub↗15,024
  • denisyarats/exorldenisyarats avatar

    denisyarats/exorl

    136View on GitHub↗

    This is an original PyTorch implementation of the ExORL framework from

    Python
    View on GitHub↗136
  • google-research/rldsgoogle-research avatar

    google-research/rlds

    490View on GitHub↗

    RLDS stands for Reinforcement Learning Datasets and it is an ecosystem of tools to store, retrieve and manipulate episodic data in the context of Sequential Decision Making including Reinforcement Learning (RL), Learning for Demonstrations, Offline RL or Imitation Learning.

    Jupyter Notebook
    View on GitHub↗490
  • ml-jku/offlinerlml-jku avatar

    ml-jku/OfflineRL

    31View on GitHub↗

    Kajetan Schweighofer 1 , Markus Hofmarcher 1 , Marius-Constantin Dinu 1,3 , Philipp Renz 1 , Angela Bitto-Nemling 1 , Vihang Patil 1 , Sepp Hochreiter 1, 2

    Python
    View on GitHub↗31
Compare all 6 related projects→

Frequently asked questions

What does fuxiailab/rl4rs do?

RL4RS is a real-world deep reinforcement learning recommender system benchmark for practitioners and researchers.

What are the main features of fuxiailab/rl4rs?

The main features of fuxiailab/rl4rs are: Datasets and Benchmarks.

Which projects share features with fuxiailab/rl4rs?

Projects with overlapping indexed features include: deepmind/deepmind-research — This project is an AI research implementation library and machine learning research repository. It provides a… denisyarats/exorl — This is an original PyTorch implementation of the ExORL framework from. google-research/rlds — RLDS stands for Reinforcement Learning Datasets and it is an ecosystem of tools to store, retrieve and manipulate… ml-jku/offlinerl — Kajetan Schweighofer 1 , Markus Hofmarcher 1 , Marius-Constantin Dinu 1,3 , Philipp Renz 1 , Angela Bitto-Nemling 1 ,… rail-berkeley/d4rl — D4RL is an open-source benchmark for offline reinforcement learning. It provides standardized environments and… securitygames/oef — Repository for the submission of NeurIPS Datasets and Benchmarks Track 2022.