Quentin Gallouédec commited on
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.gitattributes CHANGED
@@ -32,3 +32,4 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
 
 
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  *.zip filter=lfs diff=lfs merge=lfs -text
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  *.zst filter=lfs diff=lfs merge=lfs -text
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  *tfevents* filter=lfs diff=lfs merge=lfs -text
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+ *.mp4 filter=lfs diff=lfs merge=lfs -text
README.md ADDED
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+ ---
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+ library_name: stable-baselines3
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+ tags:
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+ - Ant-v3
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+ - deep-reinforcement-learning
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+ - reinforcement-learning
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+ - stable-baselines3
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+ model-index:
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+ - name: ARS
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+ results:
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+ - task:
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+ type: reinforcement-learning
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+ name: reinforcement-learning
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+ dataset:
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+ name: Ant-v3
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+ type: Ant-v3
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+ metrics:
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+ - type: mean_reward
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+ value: 4762.99 +/- 159.24
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+ name: mean_reward
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+ verified: false
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+ ---
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+
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+ # **ARS** Agent playing **Ant-v3**
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+ This is a trained model of a **ARS** agent playing **Ant-v3**
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+ using the [stable-baselines3 library](https://github.com/DLR-RM/stable-baselines3)
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+ and the [RL Zoo](https://github.com/DLR-RM/rl-baselines3-zoo).
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+
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+ The RL Zoo is a training framework for Stable Baselines3
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+ reinforcement learning agents,
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+ with hyperparameter optimization and pre-trained agents included.
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+
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+ ## Usage (with SB3 RL Zoo)
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+
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+ RL Zoo: https://github.com/DLR-RM/rl-baselines3-zoo<br/>
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+ SB3: https://github.com/DLR-RM/stable-baselines3<br/>
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+ SB3 Contrib: https://github.com/Stable-Baselines-Team/stable-baselines3-contrib
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+
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+ Install the RL Zoo (with SB3 and SB3-Contrib):
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+ ```bash
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+ pip install rl_zoo3
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+ ```
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+
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+ ```
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+ # Download model and save it into the logs/ folder
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+ python -m rl_zoo3.load_from_hub --algo ars --env Ant-v3 -orga qgallouedec -f logs/
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+ python -m rl_zoo3.enjoy --algo ars --env Ant-v3 -f logs/
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+ ```
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+
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+ If you installed the RL Zoo3 via pip (`pip install rl_zoo3`), from anywhere you can do:
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+ ```
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+ python -m rl_zoo3.load_from_hub --algo ars --env Ant-v3 -orga qgallouedec -f logs/
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+ python -m rl_zoo3.enjoy --algo ars --env Ant-v3 -f logs/
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+ ```
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+
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+ ## Training (with the RL Zoo)
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+ ```
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+ python -m rl_zoo3.train --algo ars --env Ant-v3 -f logs/
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+ # Upload the model and generate video (when possible)
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+ python -m rl_zoo3.push_to_hub --algo ars --env Ant-v3 -f logs/ -orga qgallouedec
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+ ```
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+
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+ ## Hyperparameters
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+ ```python
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+ OrderedDict([('alive_bonus_offset', -1),
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+ ('delta_std', 0.025),
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+ ('learning_rate', 0.015),
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+ ('n_delta', 60),
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+ ('n_envs', 1),
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+ ('n_timesteps', 75000000.0),
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+ ('n_top', 20),
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+ ('normalize', 'dict(norm_obs=True, norm_reward=False)'),
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+ ('policy', 'LinearPolicy'),
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+ ('normalize_kwargs', {'norm_obs': True, 'norm_reward': False})])
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+ ```
args.yml ADDED
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+ !!python/object/apply:collections.OrderedDict
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+ - - - algo
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+ - ars
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+ - - conf_file
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+ - null
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+ - - device
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+ - auto
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+ - - env
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+ - Ant-v3
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+ - - env_kwargs
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+ - null
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+ - - eval_episodes
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+ - 20
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+ - - eval_freq
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+ - 25000
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+ - - gym_packages
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+ - []
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+ - - hyperparams
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+ - null
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+ - - log_folder
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+ - logs
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+ - - log_interval
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+ - -1
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+ - - max_total_trials
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+ - null
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+ - - n_eval_envs
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+ - 5
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+ - - n_evaluations
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+ - null
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+ - - n_jobs
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+ - 1
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+ - - n_startup_trials
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+ - 10
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+ - - n_timesteps
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+ - -1
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+ - - n_trials
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+ - 500
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+ - - no_optim_plots
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+ - false
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+ - - num_threads
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+ - -1
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+ - - optimization_log_path
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+ - null
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+ - - optimize_hyperparameters
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+ - false
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+ - - progress
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+ - false
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+ - - pruner
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+ - median
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+ - - sampler
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+ - tpe
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+ - - save_freq
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+ - -1
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+ - - save_replay_buffer
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+ - false
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+ - - seed
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+ - 2422697030
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+ - - storage
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+ - null
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+ - - study_name
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+ - null
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+ - - tensorboard_log
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+ - runs/Ant-v3__ars__2422697030__1675952250
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+ - - track
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+ - true
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+ - - trained_agent
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+ - ''
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+ - - truncate_last_trajectory
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+ - true
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+ - - uuid
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+ - false
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+ - - vec_env
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+ - dummy
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+ - - verbose
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+ - 1
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+ - - wandb_entity
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+ - openrlbenchmark
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+ - - wandb_project_name
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+ - sb3
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+ - - wandb_tags
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+ - []
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+ - - yaml_file
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+ - null
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ars-Ant-v3/_stable_baselines3_version ADDED
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+ {
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+ "policy_class": {
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+ ":type:": "<class 'abc.ABCMeta'>",
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+ ":serialized:": "gAWVMAAAAAAAAACMGHNiM19jb250cmliLmFycy5wb2xpY2llc5SMD0FSU0xpbmVhclBvbGljeZSTlC4=",
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+ "__module__": "sb3_contrib.ars.policies",
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+ "__doc__": "\n Linear policy network for ARS.\n\n :param observation_space: The observation space of the environment\n :param action_space: The action space of the environment\n :param with_bias: With or without bias on the output\n :param squash_output: For continuous actions, whether the output is squashed\n or not using a ``tanh()`` function. If not squashed with tanh the output will instead be clipped.\n ",
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+ "__init__": "<function ARSLinearPolicy.__init__ at 0x7f42e95d8670>",
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+ "__abstractmethods__": "frozenset()",
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+ "_abc_impl": "<_abc._abc_data object at 0x7f42e95daa00>"
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+ },
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+ "verbose": 1,
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+ "policy_kwargs": {},
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+ "observation_space": {
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+ ":type:": "<class 'gym.spaces.box.Box'>",
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+ "bounded_below": "[False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False False False False False False False False False False\n False False False]",
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