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notebooks/A2C.ipynb
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370
notebooks/A2C.ipynb
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notebooks/common/multiprocessing_env.py
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notebooks/common/multiprocessing_env.py
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# 该代码来自 openai baseline,用于多线程环境
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# https://github.com/openai/baselines/tree/master/baselines/common/vec_env
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import numpy as np
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from multiprocessing import Process, Pipe
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def worker(remote, parent_remote, env_fn_wrapper):
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parent_remote.close()
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env = env_fn_wrapper.x()
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while True:
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cmd, data = remote.recv()
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if cmd == 'step':
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ob, reward, done, info = env.step(data)
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if done:
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ob = env.reset()
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remote.send((ob, reward, done, info))
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elif cmd == 'reset':
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ob = env.reset()
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remote.send(ob)
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elif cmd == 'reset_task':
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ob = env.reset_task()
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remote.send(ob)
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elif cmd == 'close':
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remote.close()
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break
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elif cmd == 'get_spaces':
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remote.send((env.observation_space, env.action_space))
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else:
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raise NotImplementedError
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class VecEnv(object):
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"""
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An abstract asynchronous, vectorized environment.
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"""
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def __init__(self, num_envs, observation_space, action_space):
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self.num_envs = num_envs
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self.observation_space = observation_space
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self.action_space = action_space
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def reset(self):
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"""
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Reset all the environments and return an array of
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observations, or a tuple of observation arrays.
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If step_async is still doing work, that work will
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be cancelled and step_wait() should not be called
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until step_async() is invoked again.
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"""
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pass
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def step_async(self, actions):
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"""
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Tell all the environments to start taking a step
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with the given actions.
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Call step_wait() to get the results of the step.
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You should not call this if a step_async run is
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already pending.
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"""
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pass
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def step_wait(self):
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"""
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Wait for the step taken with step_async().
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Returns (obs, rews, dones, infos):
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- obs: an array of observations, or a tuple of
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arrays of observations.
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- rews: an array of rewards
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- dones: an array of "episode done" booleans
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- infos: a sequence of info objects
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"""
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pass
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def close(self):
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"""
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Clean up the environments' resources.
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"""
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pass
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def step(self, actions):
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self.step_async(actions)
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return self.step_wait()
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class CloudpickleWrapper(object):
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"""
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Uses cloudpickle to serialize contents (otherwise multiprocessing tries to use pickle)
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"""
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def __init__(self, x):
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self.x = x
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def __getstate__(self):
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import cloudpickle
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return cloudpickle.dumps(self.x)
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def __setstate__(self, ob):
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import pickle
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self.x = pickle.loads(ob)
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class SubprocVecEnv(VecEnv):
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def __init__(self, env_fns, spaces=None):
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"""
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envs: list of gym environments to run in subprocesses
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"""
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self.waiting = False
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self.closed = False
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nenvs = len(env_fns)
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self.nenvs = nenvs
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self.remotes, self.work_remotes = zip(*[Pipe() for _ in range(nenvs)])
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self.ps = [Process(target=worker, args=(work_remote, remote, CloudpickleWrapper(env_fn)))
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for (work_remote, remote, env_fn) in zip(self.work_remotes, self.remotes, env_fns)]
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for p in self.ps:
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p.daemon = True # if the main process crashes, we should not cause things to hang
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p.start()
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for remote in self.work_remotes:
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remote.close()
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self.remotes[0].send(('get_spaces', None))
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observation_space, action_space = self.remotes[0].recv()
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VecEnv.__init__(self, len(env_fns), observation_space, action_space)
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def step_async(self, actions):
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for remote, action in zip(self.remotes, actions):
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remote.send(('step', action))
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self.waiting = True
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def step_wait(self):
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results = [remote.recv() for remote in self.remotes]
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self.waiting = False
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obs, rews, dones, infos = zip(*results)
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return np.stack(obs), np.stack(rews), np.stack(dones), infos
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def reset(self):
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for remote in self.remotes:
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remote.send(('reset', None))
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return np.stack([remote.recv() for remote in self.remotes])
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def reset_task(self):
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for remote in self.remotes:
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remote.send(('reset_task', None))
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return np.stack([remote.recv() for remote in self.remotes])
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def close(self):
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if self.closed:
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return
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if self.waiting:
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for remote in self.remotes:
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remote.recv()
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for remote in self.remotes:
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remote.send(('close', None))
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for p in self.ps:
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p.join()
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self.closed = True
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def __len__(self):
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return self.nenvs
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