acme
MPO
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acme | MPO | |
---|---|---|
11 | 2 | |
3,373 | 23 | |
1.4% | - | |
6.0 | 10.0 | |
1 day ago | over 3 years ago | |
Python | Python | |
Apache License 2.0 | - |
Stars - the number of stars that a project has on GitHub. Growth - month over month growth in stars.
Activity is a relative number indicating how actively a project is being developed. Recent commits have higher weight than older ones.
For example, an activity of 9.0 indicates that a project is amongst the top 10% of the most actively developed projects that we are tracking.
acme
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Fast and hackable frameworks for RL research
I'm tired of having my 200m frames of Atari take 5 days to run with dopamine, so I'm looking for another framework to use. I haven't been able to find one that's fast and hackable, preferably distributed or with vectorized environments. Anybody have suggestions? seed-rl seems promising but is archived (and in TF2). sample-factory seems super fast but to the best of my knowledge doesn't work with replay buffers. I've been trying to get acme working but documentation is sparse and many of the features are broken.
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How much of a MuJoCo simulation or real life robot can you train on a 3090?
I'm training a few algorithms from Deepmind's acme library on some MuJoCo models and I'm wondering how long this will take to train and what it's going to do to my electric bill. Is a 3090 or two enough to train something to keep its balance, or do a task, or do I need to wait for the 8090 to come out?
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Recomendations of framework/library for MARL
Recently dm-acme also added support for multi-agent environments. Acme: https://github.com/deepmind/acme
- Have you used any good DRL library?
- Is there a way to get PPO controlled agents to move a little more gracefully?
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Worthwhile to convert custom env to be dm_env compatible?
Can anyone speak to their experience using acme (https://github.com/deepmind/acme) and by extension dm_env (https://github.com/deepmind/dm_env)? I'm wondering if it would be worthwhile for me to invest the time into converting my custom environment (which loosely follows the standard RL setup) over to this format.
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[D] Physics and Reinforcement Learning - Discussion of Deepmind's work
acme/acme/agents/tf/mpo at master · deepmind/acme · GitHub
- Applied resources in Pytorch?
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deepmind acme compatible with windows?
after installing it in a clean env, I tried to run the example provided for solving the gym cartpole env: https://github.com/deepmind/acme/blob/master/examples/control/run_d4pg_gym.py
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Spec for RL agent implementation?
Acme has a slightly different one: https://github.com/deepmind/acme which includes specs for agents, buffers etc. It is very general. You can see their component description here: https://github.com/deepmind/acme/blob/master/docs/components.md
MPO
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Why would an Actor / Critic Reinforcement Learning algorithm start outputting zeros after about 20k steps?
Found relevant code at https://github.com/acyclics/MPO + all code implementations here
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[D] Physics and Reinforcement Learning - Discussion of Deepmind's work
Code for https://arxiv.org/abs/1806.06920 found: https://github.com/acyclics/MPO
What are some alternatives?
dm_env - A Python interface for reinforcement learning environments
DEEP-REINFORCEMENT-LEARNING-NANODEGREE
Mava - 🦁 A research-friendly codebase for fast experimentation of multi-agent reinforcement learning in JAX
go-opencv - Go bindings for OpenCV / 2.x API in gocv / 1.x API in opencv
dm_control - Google DeepMind's software stack for physics-based simulation and Reinforcement Learning environments, using MuJoCo.
ln - 3D line art engine.
tonic - Tonic RL library
Primitive Pictures - Reproducing images with geometric primitives.
selfhosted-apps-docker - Guide by Example
gowitness - 🔍 gowitness - a golang, web screenshot utility using Chrome Headless
gym - A toolkit for developing and comparing reinforcement learning algorithms.
gg - Go Graphics - 2D rendering in Go with a simple API.