DeepRL-TensorFlow2 VS Fleet-AI

Compare DeepRL-TensorFlow2 vs Fleet-AI and see what are their differences.

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DeepRL-TensorFlow2 Fleet-AI
2 1
573 3
- -
0.0 0.0
almost 2 years ago over 2 years ago
Python Python
Apache License 2.0 -
The number of mentions indicates the total number of mentions that we've tracked plus the number of user suggested alternatives.
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DeepRL-TensorFlow2

Posts with mentions or reviews of DeepRL-TensorFlow2. We have used some of these posts to build our list of alternatives and similar projects.
  • PPO implementation in TensorFlow2
    1 project | /r/reinforcementlearning | 12 Sep 2021
    I've been searching for a clean, good, and understandable implementation of PPO for continuous action space with TF2 witch is understandable enough for me to apply my modifications, but the closest thing that I have found is this code which seems to not work properly even on a simple gym cartpole env (discussed issues in git-hub repo suggest the same problem) so I have some doubts :). I was wondering whether you could recommend an implementation that you trust and suggest :)
  • Question about using tf.stop_gradient in separate Actor-Critic networks for A2C implementation for TF2
    1 project | /r/reinforcementlearning | 24 Mar 2021
    I have been looking at this implementation of A2C. Here the author of the code uses stop_gradient only on the critic network at L90 bur not in the actor network L61 for the continuous case. However , it is used both in actor and critic networks for the discrete case. Can someone explain me why?

Fleet-AI

Posts with mentions or reviews of Fleet-AI. We have used some of these posts to build our list of alternatives and similar projects.

What are some alternatives?

When comparing DeepRL-TensorFlow2 and Fleet-AI you can also consider the following projects:

soft-actor-critic - Re-implementation of Soft-Actor-Critic (SAC) in TensorFlow 2.0

Super-mario-bros-PPO-pytorch - Proximal Policy Optimization (PPO) algorithm for Super Mario Bros

tensorforce - Tensorforce: a TensorFlow library for applied reinforcement learning

pomdp-baselines - Simple (but often Strong) Baselines for POMDPs in PyTorch, ICML 2022

TensorFlow2.0-for-Deep-Reinforcement-Learning - TensorFlow 2.0 for Deep Reinforcement Learning. :octopus:

minimalRL - Implementations of basic RL algorithms with minimal lines of codes! (pytorch based)

ydata-synthetic - Synthetic data generators for tabular and time-series data

pytorch-a2c-ppo-acktr-gail - PyTorch implementation of Advantage Actor Critic (A2C), Proximal Policy Optimization (PPO), Scalable trust-region method for deep reinforcement learning using Kronecker-factored approximation (ACKTR) and Generative Adversarial Imitation Learning (GAIL).

autonomous-learning-library - A PyTorch library for building deep reinforcement learning agents.

machin - Reinforcement learning library(framework) designed for PyTorch, implements DQN, DDPG, A2C, PPO, SAC, MADDPG, A3C, APEX, IMPALA ...

ElegantRL - Massively Parallel Deep Reinforcement Learning. 🔥