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@@ -25,3 +25,5 @@ saved_model/**/* filter=lfs diff=lfs merge=lfs -text
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+ *.mp4 filter=lfs diff=lfs merge=lfs -text
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+ vec_normalize.pkl filter=lfs diff=lfs merge=lfs -text
README.md ADDED
@@ -0,0 +1,67 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ ---
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+ library_name: stable-baselines3
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+ tags:
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+ - AntBulletEnv-v0
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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: TRPO
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+ results:
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+ - metrics:
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+ - type: mean_reward
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+ value: 2572.04 +/- 32.15
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+ name: mean_reward
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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: AntBulletEnv-v0
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+ type: AntBulletEnv-v0
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+ ---
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+
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+ # **TRPO** Agent playing **AntBulletEnv-v0**
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+ This is a trained model of a **TRPO** agent playing **AntBulletEnv-v0**
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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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+ ```
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+ # Download model and save it into the logs/ folder
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+ python -m utils.load_from_hub --algo trpo --env AntBulletEnv-v0 -orga sb3 -f logs/
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+ python enjoy.py --algo trpo --env AntBulletEnv-v0 -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 train.py --algo trpo --env AntBulletEnv-v0 -f logs/
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+ # Upload the model and generate video (when possible)
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+ python -m utils.push_to_hub --algo trpo --env AntBulletEnv-v0 -f logs/ -orga sb3
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+ ```
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+
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+ ## Hyperparameters
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+ ```python
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+ OrderedDict([('batch_size', 128),
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+ ('cg_damping', 0.1),
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+ ('cg_max_steps', 25),
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+ ('gae_lambda', 0.95),
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+ ('gamma', 0.99),
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+ ('learning_rate', 0.001),
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+ ('n_critic_updates', 20),
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+ ('n_envs', 2),
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+ ('n_steps', 1024),
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+ ('n_timesteps', 2000000.0),
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+ ('normalize', True),
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+ ('policy', 'MlpPolicy'),
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+ ('sub_sampling_factor', 1),
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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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+ - trpo
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+ - - env
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+ - AntBulletEnv-v0
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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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+ - 50000
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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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+ - 10
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+ - - n_eval_envs
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+ - 10
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+ - - n_evaluations
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+ - 20
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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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+ - 10
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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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+ - - 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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+ - 508583197
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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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+ - ''
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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
config.yml ADDED
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+ !!python/object/apply:collections.OrderedDict
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+ - - - batch_size
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+ - 128
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+ - - cg_damping
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+ - 0.1
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+ - - cg_max_steps
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+ - 25
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+ - - gae_lambda
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+ - 0.95
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+ - - gamma
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+ - 0.99
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+ - - learning_rate
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+ - 0.001
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+ - - n_critic_updates
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+ - 20
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+ - - n_envs
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+ - 2
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+ - - n_steps
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+ - 1024
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+ - - n_timesteps
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+ - 2000000.0
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+ - - normalize
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+ - true
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+ - - policy
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+ - MlpPolicy
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+ - - sub_sampling_factor
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+ - 1
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results.json ADDED
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+ {"mean_reward": 2572.0412438, "std_reward": 32.146490285694355, "is_deterministic": true, "n_eval_episodes": 10, "eval_datetime": "2022-06-02T12:58:46.438282"}
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+ "__doc__": "\n Policy class for actor-critic algorithms (has both policy and value prediction).\n Used by A2C, PPO and the likes.\n\n :param observation_space: Observation space\n :param action_space: Action space\n :param lr_schedule: Learning rate schedule (could be constant)\n :param net_arch: The specification of the policy and value networks.\n :param activation_fn: Activation function\n :param ortho_init: Whether to use or not orthogonal initialization\n :param use_sde: Whether to use State Dependent Exploration or not\n :param log_std_init: Initial value for the log standard deviation\n :param full_std: Whether to use (n_features x n_actions) parameters\n for the std instead of only (n_features,) when using gSDE\n :param sde_net_arch: Network architecture for extracting features\n when using gSDE. If None, the latent features from the policy will be used.\n Pass an empty list to use the states as features.\n :param use_expln: Use ``expln()`` function instead of ``exp()`` to ensure\n a positive standard deviation (cf paper). It allows to keep variance\n above zero and prevent it from growing too fast. In practice, ``exp()`` is usually enough.\n :param squash_output: Whether to squash the output using a tanh function,\n this allows to ensure boundaries when using gSDE.\n :param features_extractor_class: Features extractor to use.\n :param features_extractor_kwargs: Keyword arguments\n to pass to the features extractor.\n :param normalize_images: Whether to normalize images or not,\n dividing by 255.0 (True by default)\n :param optimizer_class: The optimizer to use,\n ``th.optim.Adam`` by default\n :param optimizer_kwargs: Additional keyword arguments,\n excluding the learning rate, to pass to the optimizer\n ",
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