ledmands commited on
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866f598
1 Parent(s): e96aefa

Added pull_config.py to grab configuration data from agent. Script is still being tested and tuned.

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Files changed (2) hide show
  1. agents/configtest.json +105 -0
  2. agents/pull_config.py +23 -0
agents/configtest.json ADDED
@@ -0,0 +1,105 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
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+ {
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+ "policy_class": {
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+ ":type:": "<class 'abc.ABCMeta'>",
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+ "__module__": "stable_baselines3.dqn.policies",
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+ "__doc__": "\n Policy class for DQN when using images as input.\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 features_extractor_class: Features extractor to use.\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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+ "__init__": "<function CnnPolicy.__init__ at 0x7a562f785c60>",
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+ "__abstractmethods__": "frozenset()",
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+ "_abc_impl": "<_abc._abc_data object at 0x7a562f798540>"
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+ },
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+ "verbose": 1,
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+ "policy_kwargs": {},
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+ "num_timesteps": 6500000,
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+ "_total_timesteps": 6500000,
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+ "_num_timesteps_at_start": 5500000,
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+ "seed": null,
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+ "action_noise": null,
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+ "start_time": 1715714815567229137,
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+ "learning_rate": 5e-05,
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+ "tensorboard_log": "./",
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+ "_last_obs": {
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+ ":type:": "<class 'numpy.ndarray'>"
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+ },
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+ "_last_episode_starts": {
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+ ":type:": "<class 'numpy.ndarray'>"
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+ },
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+ "_last_original_obs": {
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+ ":type:": "<class 'numpy.ndarray'>"
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+ },
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+ "_episode_num": 6118,
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+ "use_sde": false,
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+ "sde_sample_freq": -1,
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+ "_current_progress_remaining": 0.0,
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+ "_stats_window_size": 100,
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+ "ep_info_buffer": {
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+ ":type:": "<class 'collections.deque'>"
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+ },
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+ "ep_success_buffer": {
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+ ":type:": "<class 'collections.deque'>"
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+ },
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+ "_n_updates": 1612500,
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+ "observation_space": {
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+ ":type:": "<class 'gymnasium.spaces.box.Box'>",
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+ "dtype": "uint8",
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+ "bounded_below": "[[[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]\n\n [[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]\n\n [[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]]",
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+ "bounded_above": "[[[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]\n\n [[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]\n\n [[ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]\n ...\n [ True True True ... True True True]\n [ True True True ... True True True]\n [ True True True ... True True True]]]",
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+ "_shape": [
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+ 3,
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+ 250,
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+ 160
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+ ],
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+ "low": "[[[0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n ...\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]]\n\n [[0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n ...\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]]\n\n [[0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n ...\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]\n [0 0 0 ... 0 0 0]]]",
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+ "high": "[[[255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n ...\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]]\n\n [[255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n ...\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]]\n\n [[255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n ...\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]\n [255 255 255 ... 255 255 255]]]",
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+ "low_repr": "0",
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+ "high_repr": "255",
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+ "_np_random": "Generator(PCG64)"
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+ },
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+ "action_space": {
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+ ":type:": "<class 'gymnasium.spaces.discrete.Discrete'>",
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+ "n": "5",
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+ "start": "0",
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+ "_shape": [],
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+ "dtype": "int64",
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+ "_np_random": "Generator(PCG64)"
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+ },
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+ "n_envs": 1,
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+ "buffer_size": 70000,
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+ "batch_size": 64,
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+ "learning_starts": 50000,
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+ "tau": 1.0,
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+ "gamma": 0.999,
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+ "gradient_steps": 1,
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+ "optimize_memory_usage": false,
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+ "replay_buffer_class": {
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+ ":type:": "<class 'abc.ABCMeta'>",
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+ "__module__": "stable_baselines3.common.buffers",
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+ "__doc__": "\n Replay buffer used in off-policy algorithms like SAC/TD3.\n\n :param buffer_size: Max number of element in the buffer\n :param observation_space: Observation space\n :param action_space: Action space\n :param device: PyTorch device\n :param n_envs: Number of parallel environments\n :param optimize_memory_usage: Enable a memory efficient variant\n of the replay buffer which reduces by almost a factor two the memory used,\n at a cost of more complexity.\n See https://github.com/DLR-RM/stable-baselines3/issues/37#issuecomment-637501195\n and https://github.com/DLR-RM/stable-baselines3/pull/28#issuecomment-637559274\n Cannot be used in combination with handle_timeout_termination.\n :param handle_timeout_termination: Handle timeout termination (due to timelimit)\n separately and treat the task as infinite horizon task.\n https://github.com/DLR-RM/stable-baselines3/issues/284\n ",
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+ "__init__": "<function ReplayBuffer.__init__ at 0x7a562f95dc60>",
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+ "add": "<function ReplayBuffer.add at 0x7a562f95dcf0>",
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+ "sample": "<function ReplayBuffer.sample at 0x7a562f95dd80>",
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+ "_get_samples": "<function ReplayBuffer._get_samples at 0x7a562f95de10>",
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+ "_maybe_cast_dtype": "<staticmethod(<function ReplayBuffer._maybe_cast_dtype at 0x7a562f95dea0>)>",
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+ "__abstractmethods__": "frozenset()",
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+ "_abc_impl": "<_abc._abc_data object at 0x7a562f962200>"
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+ },
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+ "replay_buffer_kwargs": {},
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+ "train_freq": {
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+ ":type:": "<class 'stable_baselines3.common.type_aliases.TrainFreq'>"
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+ },
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+ "use_sde_at_warmup": false,
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+ "exploration_initial_eps": 1.0,
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+ "exploration_final_eps": 0.05,
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+ "exploration_fraction": 0.3,
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+ "target_update_interval": 5000,
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+ "_n_calls": 6500000,
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+ "max_grad_norm": 10,
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+ "exploration_rate": 0.05,
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+ "lr_schedule": {
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+ ":type:": "<class 'function'>"
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+ },
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+ "batch_norm_stats": [],
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+ "batch_norm_stats_target": [],
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+ "exploration_schedule": {
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+ ":type:": "<class 'function'>"
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+ }
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+ }
agents/pull_config.py ADDED
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+ import zipfile
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+ import json
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+ # Need to add option flags to specify the file path to the agent
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+
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+ archive = zipfile.ZipFile("dqn_v2-5/ALE-Pacman-v5.zip", "r")
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+ file = archive.open("data")
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+ byte_file = file.read()
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+ json_file = json.loads(byte_file.decode("utf-8"))
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+
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+ # Only want to remove serialized objects from dictionary
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+ val_to_remove = ":serialized:"
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+
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+ for key in json_file.keys():
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+ # So if each value is a type dict, then I want to iterate through it and remove the serialized key
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+ if type(json_file[key]) is dict:
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+ if val_to_remove in json_file[key].keys():
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+ json_file[key].pop(val_to_remove)
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+
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+ outfile = open("configtest.json", "w")
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+ json.dump(json_file, outfile, indent=2,)
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+
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+ file.close()
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+ outfile.close()