hacky codes, only learn the weight basis params
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@ -62,7 +62,11 @@ class BlackBoxWrapper(gym.ObservationWrapper):
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# spaces
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self.return_context_observation = not (learn_sub_trajectories or self.do_replanning)
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self.traj_gen_action_space = self._get_traj_gen_action_space()
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self.action_space = self._get_action_space()
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# self.action_space = self._get_action_space()
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tricky_action_upperbound = [np.inf] * (self.traj_gen_action_space.shape[0] - 7)
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tricky_action_lowerbound = [-np.inf] * (self.traj_gen_action_space.shape[0] - 7)
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self.action_space = spaces.Box(np.array(tricky_action_lowerbound), np.array(tricky_action_upperbound), dtype=np.float32)
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self.observation_space = self._get_observation_space()
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# rendering
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@ -145,6 +149,9 @@ class BlackBoxWrapper(gym.ObservationWrapper):
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def step(self, action: np.ndarray):
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""" This function generates a trajectory based on a MP and then does the usual loop over reset and step"""
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## tricky part, only use weights basis
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weights_basis = action.reshape(-1, 7)
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# TODO remove this part, right now only needed for beer pong
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mp_params, env_spec_params = self.env.episode_callback(action, self.traj_gen)
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position, velocity = self.get_trajectory(mp_params)
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