Methods › Reinforcement Learning › Policy Gradient Methods › myGym
MyGym: Modular Toolkit for Visuomotor Robotic Tasks
myGym
archive 2025-07-28 Description, source and code snippet are the archive's method entry.
We introduce myGym, a toolkit suitable for fast prototyping of neural networks in the area of robotic manipulation and navigation. Our toolbox is fully modular, enabling users to train their algorithms on different robots, environments, and tasks. We also include pretrained neural network modules for the real-time vision that allows training visuomotor tasks with sim2real transfer. The visual modules can be easily retrained using the dataset generation pipeline with domain augmentation and randomization. Moreover, myGym provides automatic evaluation methods and baselines that help the user to directly compare their trained model with the state-of-the-art algorithms. We additionally present a novel metric, called learnability, to compare the general learning capability of algorithms in different settings, where the complexity of the environment, robot, and the task is systematically manipulated. The learnability score tracks differences between the performance of algorithms in increasingly challenging setup conditions, and thus allows the user to compare different models in a more systematic fashion. The code is accessible at https://github.com/incognite-lab/myGym
Papers archive 2025-07-28
2 shown of 2, newest first. Repository counts are the archive's code-links table. A Syntology line states what Syntology ran from that paper's harvested code; it is per sample and not a correctness claim.
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Learning Low-Level Causal Relations using a Simulated Robotic Arm 10 Oct 2024 · 1 repository · arXiv:2410.07751
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myGym: Modular Toolkit for Visuomotor Robotic Tasks 21 Dec 2020 · 0 repositories · arXiv:2012.11643
Tasks archive 2025-07-28
5 tasks the archive attaches to papers tagged with this method, by distinct papers. A task without a page in the catalog is plain text.
| Task | Papers |
|---|---|
| Common Sense Reasoning | 1 |
| Dimensionality Reduction | 1 |
| Imitation Learning | 1 |
| OpenAI Gym | 1 |
| Reinforcement Learning (RL) | 1 |
Usage over time archive 2025-07-28
Components: the archive holds no method-to-method composition, so PwC's Components table cannot be rebuilt; the Papers list carries no Results column for the same reason (the archive does not join its leaderboard rows to method tags).
Categories archive 2025-07-28
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