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from gymnasium.spaces import Box, Dict
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from gym.spaces import Box as OldBox
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import gymnasium as gym
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import numpy as np
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import copy
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class TimeAwareObservation(gym.ObservationWrapper, gym.utils.RecordConstructorArgs):
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"""Augment the observation with the current time step in the episode.
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The observation space of the wrapped environment is assumed to be a flat :class:`Box` or flattable :class:`Dict`.
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In particular, pixel observations are not supported. This wrapper will append the current progress within the current episode to the observation.
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The progress will be indicated as a number between 0 and 1.
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"""
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def __init__(self, env: gym.Env, enforce_dtype_float32=False):
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"""Initialize :class:`TimeAwareObservation` that requires an environment with a flat :class:`Box` or flattable :class:`Dict` observation space.
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Args:
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env: The environment to apply the wrapper
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"""
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gym.utils.RecordConstructorArgs.__init__(self)
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gym.ObservationWrapper.__init__(self, env)
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allowed_classes = [Box, OldBox, Dict]
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if enforce_dtype_float32:
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assert env.observation_space.dtype == np.float32, 'TimeAwareObservation was given an environment with a dtype!=np.float32 ('+str(
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env.observation_space.dtype)+'). This requirement can be removed by setting enforce_dtype_float32=False.'
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assert env.observation_space.__class__ in allowed_classes, str(env.observation_space)+' is not supported. Only Box or Dict'
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if env.observation_space.__class__ in [Box, OldBox]:
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dtype = env.observation_space.dtype
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low = np.append(env.observation_space.low, 0.0)
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high = np.append(env.observation_space.high, 1.0)
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self.observation_space = Box(low, high, dtype=dtype)
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else:
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spaces = copy.copy(env.observation_space.spaces)
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dtype = np.float64
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spaces['time_awareness'] = Box(0, 1, dtype=dtype)
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self.observation_space = Dict(spaces)
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self.is_vector_env = getattr(env, "is_vector_env", False)
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def observation(self, observation):
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"""Adds to the observation with the current time step.
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Args:
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observation: The observation to add the time step to
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Returns:
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The observation with the time step appended to (relative to total number of steps)
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"""
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return np.append(observation, self.t / self.env.spec.max_episode_steps)
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def step(self, action):
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"""Steps through the environment, incrementing the time step.
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Args:
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action: The action to take
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Returns:
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The environment's step using the action.
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"""
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self.t += 1
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return super().step(action)
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def reset(self, **kwargs):
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"""Reset the environment setting the time to zero.
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Args:
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**kwargs: Kwargs to apply to env.reset()
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Returns:
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The reset environment
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"""
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self.t = 0
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return super().reset(**kwargs)
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