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from easydict import EasyDict |
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env_name = 'memory_len/9' |
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if env_name in ['memory_len/0', 'memory_len/9', 'memory_len/17', 'memory_len/20', 'memory_len/22']: |
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action_space_size = 2 |
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observation_shape = 3 |
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elif env_name in ['bsuite_swingup/0']: |
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action_space_size = 3 |
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observation_shape = 8 |
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elif env_name == 'bandit_noise/0': |
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action_space_size = 11 |
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observation_shape = 1 |
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elif env_name in ['memory_size/0']: |
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action_space_size = 2 |
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observation_shape = 3 |
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else: |
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raise NotImplementedError |
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seed = 0 |
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collector_env_num = 8 |
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n_episode = 8 |
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evaluator_env_num = 3 |
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num_simulations = 50 |
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update_per_collect = 100 |
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batch_size = 256 |
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max_env_step = int(5e5) |
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reanalyze_ratio = 0 |
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bsuite_muzero_config = dict( |
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exp_name=f'data_mz_ctree/bsuite_{env_name}_muzero_ns{num_simulations}_upc{update_per_collect}_rr{reanalyze_ratio}_seed{seed}', |
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env=dict( |
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env_name=env_name, |
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stop_value=int(1e6), |
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continuous=False, |
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manually_discretization=False, |
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collector_env_num=collector_env_num, |
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evaluator_env_num=evaluator_env_num, |
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n_evaluator_episode=evaluator_env_num, |
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manager=dict(shared_memory=False, ), |
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), |
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policy=dict( |
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model=dict( |
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observation_shape=observation_shape, |
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action_space_size=action_space_size, |
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model_type='mlp', |
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lstm_hidden_size=128, |
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latent_state_dim=128, |
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self_supervised_learning_loss=True, |
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discrete_action_encoding_type='one_hot', |
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norm_type='BN', |
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), |
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cuda=True, |
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env_type='not_board_games', |
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game_segment_length=50, |
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update_per_collect=update_per_collect, |
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batch_size=batch_size, |
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optim_type='Adam', |
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lr_piecewise_constant_decay=False, |
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learning_rate=0.003, |
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ssl_loss_weight=2, |
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num_simulations=num_simulations, |
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reanalyze_ratio=reanalyze_ratio, |
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n_episode=n_episode, |
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eval_freq=int(2e2), |
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replay_buffer_size=int(1e6), |
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collector_env_num=collector_env_num, |
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evaluator_env_num=evaluator_env_num, |
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), |
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) |
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bsuite_muzero_config = EasyDict(bsuite_muzero_config) |
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main_config = bsuite_muzero_config |
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bsuite_muzero_create_config = dict( |
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env=dict( |
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type='bsuite_lightzero', |
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import_names=['zoo.bsuite.envs.bsuite_lightzero_env'], |
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), |
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env_manager=dict(type='subprocess'), |
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policy=dict( |
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type='muzero', |
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import_names=['lzero.policy.muzero'], |
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), |
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collector=dict( |
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type='episode_muzero', |
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import_names=['lzero.worker.muzero_collector'], |
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) |
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) |
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bsuite_muzero_create_config = EasyDict(bsuite_muzero_create_config) |
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create_config = bsuite_muzero_create_config |
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if __name__ == "__main__": |
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from lzero.entry import train_muzero |
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train_muzero([main_config, create_config], seed=seed, max_env_step=max_env_step) |