コード例 #1
0
ファイル: sac.py プロジェクト: jcoreyes/erl
def experiment(variant):
    env = SawyerXYZEnv(**variant['env_kwargs'])
    env = MultitaskToFlatEnv(env)
    if variant['normalize']:
        env = NormalizedBoxEnv(env)
    obs_dim = env.observation_space.low.size
    action_dim = env.action_space.low.size
    qf = ConcatMlp(
        input_size=obs_dim + action_dim,
        output_size=1,
        **variant['qf_kwargs']
    )
    vf = ConcatMlp(
        input_size=obs_dim,
        output_size=1,
        **variant['vf_kwargs']
    )
    policy = TanhGaussianPolicy(
        obs_dim=obs_dim,
        action_dim=action_dim,
        **variant['policy_kwargs']
    )
    algorithm = SoftActorCritic(
        env=env,
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_kwargs']
    )
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #2
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def experiment(variant):
    #env = NormalizedBoxEnv(HalfCheetahEnv())
    # Or for a specific version:
    # import gym
    env = NormalizedBoxEnv(gym.make('Pointmass-v1'))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(env=env,
                                policy=policy,
                                qf=qf,
                                vf=vf,
                                **variant['algo_params'])
    if ptu.gpu_enabled():
        algorithm.cuda()
    algorithm.train()
コード例 #3
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def experiment(variant):
    env = NormalizedBoxEnv(CartpoleSwingupSparseEnv())
    #env = NormalizedBoxEnv(HalfCheetahEnv())
    #env = NormalizedBoxEnv(Continuous_MountainCarEnv())
    #env = DIAYNWrappedEnv(NormalizedBoxEnv(HumanoidEnv()))
    # Or for a specific version:
    # import gym
    # env = NormalizedBoxEnv(gym.make('HalfCheetah-v1'))

    skill_dim = 0  #50
    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf1 = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + skill_dim + action_dim,
        output_size=1,
    )
    qf2 = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + skill_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + skill_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim + skill_dim,
        action_dim=action_dim,
        #k=4,
    )
    disc = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=skill_dim if skill_dim > 0 else 1,
    )
    algorithm = SoftActorCritic(
        env=env,
        policy=policy,
        qf1=qf1,
        qf2=qf2,
        vf=vf,
        #disc=disc,
        #skill_dim=skill_dim,
        **variant['algo_params'])
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #4
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def experiment(variant):
    # env = NormalizedBoxEnv(HalfCheetahEnv())
    # env = NormalizedBoxEnv(InvertedPendulumEnv())
    # ---------
    # env = NormalizedBoxEnv(get_meta_env(variant['env_specs']))
    # training_env = NormalizedBoxEnv(get_meta_env(variant['env_specs']))

    env = ReacherEnv()
    training_env = ReacherEnv()
    
    # Or for a specific version:
    # import gym
    # env = NormalizedBoxEnv(gym.make('HalfCheetah-v1'))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    total_meta_variable_dim = 0
    for dims in exp_specs['true_meta_variable_dims']:
        total_meta_variable_dim += sum(dims)

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim + total_meta_variable_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + total_meta_variable_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim + total_meta_variable_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(
        env=env,
        training_env=training_env,
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_params']
    )
    if ptu.gpu_enabled():
        algorithm.cuda()
    algorithm.train()

    return 1
コード例 #5
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def experiment(variant, env_name, record_name, record_every_episode):
    #env = CartPoleEnv()
    env = gym.make(env_name)
    # A workaround to give this info later on
    # (Such naughty business...)
    randomize_settings = {
        "turnframes": [10, 10],
        "engagement_distance": [100, 200]
    }
    env.record_name = record_name
    env.record_every_episode = record_every_episode
    env.randomize_settings = randomize_settings
    env = OneHotsToDecimalsAndRecordAndRandomize(env)

    obs_dim = int(np.prod(env.observation_space.shape))
    num_categoricals = len(env.action_space.nvec)
    num_categories = env.action_space.nvec[0]

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        # Action is fed in as a raveled one-hot vector
        input_size=obs_dim + int(np.sum(env.action_space.nvec)),
        output_size=1,
        hidden_activation=F.sigmoid,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
        hidden_activation=F.sigmoid,
    )

    # For multi-discrete
    policy = MultiCategoricalPolicy(hidden_sizes=[net_size, net_size],
                                    obs_dim=obs_dim,
                                    num_categoricals=num_categoricals,
                                    num_categories=num_categories,
                                    hidden_activation=F.sigmoid)

    algorithm = SoftActorCritic(env=env,
                                policy=policy,
                                qf=qf,
                                vf=vf,
                                **variant['algo_params'])
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #6
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ファイル: multigoal.py プロジェクト: jcoreyes/erl
def experiment(variant):
    env = NormalizedBoxEnv(
        MultiGoalEnv(
            actuation_cost_coeff=10,
            distance_cost_coeff=1,
            goal_reward=10,
        ))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    qf = ConcatMlp(
        hidden_sizes=[100, 100],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = ConcatMlp(
        hidden_sizes=[100, 100],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[100, 100],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    plotter = QFPolicyPlotter(qf=qf,
                              policy=policy,
                              obs_lst=np.array([[-2.5, 0.0], [0.0, 0.0],
                                                [2.5, 2.5]]),
                              default_action=[np.nan, np.nan],
                              n_samples=100)
    algorithm = SoftActorCritic(
        env=env,
        policy=policy,
        qf=qf,
        vf=vf,
        # plotter=plotter,
        # render_eval_paths=True,
        **variant['algo_params'])
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #7
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def experiment(variant):
    env = variant['env_class']()
    env = NormalizedBoxEnv(env)

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    qf = ConcatMlp(input_size=obs_dim + action_dim,
                   output_size=1,
                   **variant['qf_kwargs'])
    vf = ConcatMlp(input_size=obs_dim, output_size=1, **variant['vf_kwargs'])
    policy = TanhGaussianPolicy(obs_dim=obs_dim,
                                action_dim=action_dim,
                                **variant['policy_kwargs'])
    algorithm = SoftActorCritic(env=env,
                                policy=policy,
                                qf=qf,
                                vf=vf,
                                **variant['algo_kwargs'])
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #8
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def experiment(variant):
    ptu._use_gpu = variant['gpu']
    env = NormalizedBoxEnv(gym.make(variant['env_name']))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']

    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )

    algorithm = SoftActorCritic(
        env=env,
        training_env=env,
        save_environment=False,
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_params']
    )
    if ptu.gpu_enabled():
        algorithm.cuda()

    algorithm.train()

    return algorithm
コード例 #9
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ファイル: sac_farm.py プロジェクト: simitii/rlkit
def experiment(variant):

    farmlist_base = [('123.123.123.123', 4)]

    farmer = Farmer(farmlist_base)
    environment = acq_remote_env(farmer)
    env = NormalizedBoxEnv(environment)

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(
        env=env,
        training_env=env,
        policy=policy,
        qf=qf,
        vf=vf,
        environment_farming=True,
        farmlist_base=farmlist_base,
        **variant['algo_params']
    )
    if ptu.gpu_enabled():
        algorithm.cuda()
    algorithm.train()
def experiment(variant):
    logger.add_text_output('./d_text.txt')
    logger.add_tabular_output('./d_tabular.txt')
    logger.set_snapshot_dir('./snaps')
    farmer = Farmer([('0.0.0.0', 1)])
    remote_env = farmer.force_acq_env()
    remote_env.set_spaces()
    env = NormalizedBoxEnv(remote_env)

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(env=env,
                                training_env=env,
                                policy=policy,
                                qf=qf,
                                vf=vf,
                                **variant['algo_params'])
    if ptu.gpu_enabled():
        algorithm.cuda()
    algorithm.train()
コード例 #11
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ファイル: cheetah.py プロジェクト: jcoreyes/erl
def experiment(variant):
    # env = normalize(GymEnv(
    #     'HalfCheetah-v1',
    #     force_reset=True,
    #     record_video=False,
    #     record_log=False,
    # ))
    env = NormalizedBoxEnv(gym.make('HalfCheetah-v1'))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf = ConcatMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = ConcatMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(
        env=env,
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_params']
    )
    algorithm.to(ptu.device)
    algorithm.train()
コード例 #12
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ファイル: profile.py プロジェクト: jcoreyes/erl
def experiment(variant):
    env = NormalizedBoxEnv(MultiGoalEnv(
        actuation_cost_coeff=10,
        distance_cost_coeff=1,
        goal_reward=10,
    ))

    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    qf = ConcatMlp(
        hidden_sizes=[100, 100],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = ConcatMlp(
        hidden_sizes=[100, 100],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[100, 100],
        obs_dim=obs_dim,
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(
        env=env,
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_params']
    )
    algorithm.to(ptu.device)
    with torch.autograd.profiler.profile() as prof:
        algorithm.train()
    prof.export_chrome_trace("tmp-torch-chrome-trace.prof")
コード例 #13
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ファイル: sac.py プロジェクト: amandlek/rlkit
def experiment(variant):
    # env = NormalizedBoxEnv(HalfCheetahEnv())
    # Or for a specific version:
    # import gym
    # env = NormalizedBoxEnv(gym.make('HalfCheetah-v2'))
    # env = gym.make('HalfCheetah-v2')

    env = MujocoManipEnv("SawyerBinsCanEnv")  # wrap as a gym env
    obs_dim = int(np.prod(env.observation_space.shape))
    action_dim = int(np.prod(env.action_space.shape))

    net_size = variant['net_size']
    qf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim + action_dim,
        output_size=1,
    )
    vf = FlattenMlp(
        hidden_sizes=[net_size, net_size],
        input_size=obs_dim,
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        hidden_sizes=[net_size, net_size],
        obs_dim=obs_dim,
        action_dim=action_dim,
        action_skip=ACTION_SKIP,
    )
    algorithm = SoftActorCritic(env=env,
                                policy=policy,
                                qf=qf,
                                vf=vf,
                                **variant['algo_params'])
    if ptu.gpu_enabled():
        algorithm.cuda()
    algorithm.train()
コード例 #14
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def experiment(log_dir, variant_overwrite, cpu=False):
    if not cpu:
        ptu.set_gpu_mode(True)  # optionally set the GPU (default=False)

    # Load experiment from file.
    env, _, data, variant = load_experiment(log_dir, variant_overwrite)
    assert all([
        a == b
        for a, b in zip(env.sampled_goal, variant['env_kwargs']['goal_prior'])
    ])

    # Set log directory.
    exp_id = 'eval/ne{}-mpl{}-{}-rs{}/nhp{}'.format(
        variant['algo_kwargs']['num_episodes'],
        variant['algo_kwargs']['max_path_length'],
        ','.join(variant_overwrite['env_kwargs']['shaped_rewards']),
        variant['algo_kwargs']['reward_scale'],
        variant['historical_policies_kwargs']['num_historical_policies'],
    )
    exp_id = create_exp_name(exp_id)
    out_dir = os.path.join(log_dir, exp_id)
    print('Logging to:', out_dir)
    setup_logger(
        log_dir=out_dir,
        variant=variant,
        snapshot_mode='none',
        snapshot_gap=50,
    )

    # Load trained model from file.
    policy = data['policy']
    vf = data['vf']
    qf = data['qf']
    algorithm = SoftActorCritic(
        env=env,
        training_env=env,  # can't clone box2d env cause of swig
        save_environment=False,  # can't save box2d env cause of swig
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_kwargs'],
    )

    # Overwrite algorithm for p(z) adaptation (if model is SMM).
    if variant['intrinsic_reward'] == 'smm':
        discriminator = data['discriminator']
        density_model = data['density_model']
        SMMHook(base_algorithm=algorithm,
                discriminator=discriminator,
                density_model=density_model,
                **variant['smm_kwargs'])

    # Overwrite algorithm for historical averaging.
    if variant['historical_policies_kwargs']['num_historical_policies'] > 0:
        HistoricalPoliciesHook(
            base_algorithm=algorithm,
            log_dir=log_dir,
            **variant['historical_policies_kwargs'],
        )

    algorithm.to(ptu.device)
    algorithm.train()
コード例 #15
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def experiment(variant):
    intrinsic_reward = variant['intrinsic_reward']

    # Create environment.
    num_skills = variant['smm_kwargs']['num_skills'] if variant[
        'intrinsic_reward'] == 'smm' else 0
    env, training_env = create_env(variant['env_id'], variant['env_kwargs'],
                                   num_skills)
    obs_dim = env.observation_space.low.size
    action_dim = env.action_space.low.size

    # Initialize networks.
    net_size = variant['net_size']
    qf = FlattenMlp(
        input_size=obs_dim + action_dim,
        hidden_sizes=[net_size, net_size],
        output_size=1,
    )
    vf = FlattenMlp(
        input_size=obs_dim,
        hidden_sizes=[net_size, net_size],
        output_size=1,
    )
    policy = TanhGaussianPolicy(
        obs_dim=obs_dim,
        hidden_sizes=[net_size, net_size],
        action_dim=action_dim,
    )
    algorithm = SoftActorCritic(
        env=env,
        training_env=training_env,  # can't clone box2d env cause of swig
        save_environment=False,  # can't save box2d env cause of swig
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_kwargs'])

    if intrinsic_reward == 'smm':
        discriminator = FlattenMlp(
            input_size=obs_dim - num_skills,
            hidden_sizes=[net_size, net_size],
            output_size=num_skills,
        )
        density_model = VAEDensity(input_size=obs_dim,
                                   num_skills=num_skills,
                                   code_dim=128,
                                   **variant['vae_density_kwargs'])

        # Overwrite appropriate functions of algorithm.
        smm_algorithm_hook = SMMHook(base_algorithm=algorithm,
                                     discriminator=discriminator,
                                     density_model=density_model,
                                     **variant['smm_kwargs'])
    elif intrinsic_reward == 'icm':
        embedding_model = FlattenMlp(
            input_size=obs_dim,
            hidden_sizes=[net_size, net_size],
            output_size=net_size,
        )
        forward_model = FlattenMlp(
            input_size=net_size + action_dim,
            hidden_sizes=[net_size, net_size],
            output_size=net_size,
        )
        inverse_model = FlattenMlp(
            input_size=net_size + net_size,
            hidden_sizes=[],
            output_size=action_dim,
        )

        # Overwrite appropriate functions of algorithm.
        ICMHook(base_algorithm=algorithm,
                embedding_model=embedding_model,
                forward_model=forward_model,
                inverse_model=inverse_model,
                **variant['icm_kwargs'])
    elif intrinsic_reward == 'count':
        count_algorithm_hook = CountHook(base_algorithm=algorithm,
                                         **variant['count_kwargs'])
    elif intrinsic_reward == 'pseudocount':
        density_model = VAEDensity(
            input_size=obs_dim,
            num_skills=0,
            code_dim=128,
            **variant['vae_density_kwargs'],
        )

        # Overwrite appropriate functions of algorithm.
        PseudocountHook(base_algorithm=algorithm,
                        density_model=density_model,
                        **variant['pseudocount_kwargs'])

    algorithm.to(ptu.device)
    algorithm.train()
コード例 #16
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def experiment(args):
    if not args.cpu:
        ptu.set_gpu_mode(True)  # optionally set the GPU (default=False)

    variant_overwrite = dict(
        # Evaluate model on num_episodes.
        algo_kwargs=dict(
            reward_scale=args.reward_scale,
            collection_mode='episodic',
            num_episodes=args.num_episodes,
            max_path_length=args.max_path_length,
            render=args.render,

            # Evaluate without additional training
            num_updates_per_episode=0,
            min_num_steps_before_training=(
                args.max_path_length * args.num_episodes + 1),
        ),

        # Environment settings
        env_kwargs=dict(
            sample_goal=False,
            goal_prior=args.test_goal,
            shaped_rewards=[
                'object_off_table', 'object_goal_indicator',
                'object_gripper_indicator', 'action_penalty'
            ],
            terminate_upon_success=False,
            terminate_upon_failure=False,
        ),

        # SMM settings
        smm_kwargs=dict(
            # Posterior adaptation of latent skills p(z)
            update_p_z_prior_coeff=args.update_p_z_prior_coeff,

            # Turn off SMM reward.
            state_entropy_coeff=0,
            latent_entropy_coeff=0,
            latent_conditional_entropy_coeff=0,
            discriminator_lr=0,
        ),
    )

    # Load experiment from file.
    env, _, data, variant = load_experiment(args.logdir, variant_overwrite)
    assert all([a == b for a, b in zip(env.sampled_goal, args.test_goal)])
    variant.update(test_goal=list(env.sampled_goal))
    if args.num_historical_policies > 0:
        variant.update(historical_policies_kwargs=dict(
            log_dir=args.logdir,
            num_historical_policies=args.num_historical_policies,
            sample_strategy=args.sample_strategy,
            on_policy_prob=args.on_policy_prob,
        ))

    # Set log directory.
    exp_id = 'eval/ne{}-mpl{}-{}-rs{}/nhp{}-{}-opp{}'.format(
        args.num_episodes,
        args.max_path_length,
        ','.join(variant_overwrite['env_kwargs']['shaped_rewards']),
        args.reward_scale,
        args.num_historical_policies,
        args.sample_strategy,
        args.on_policy_prob,
    )
    exp_id = create_exp_name(exp_id)
    log_dir = os.path.join(args.logdir, exp_id)
    print('Logging to:', log_dir)
    setup_logger(
        log_dir=log_dir,
        variant=variant,
        snapshot_mode='none',
        snapshot_gap=50,
    )

    # Load trained model from file.
    policy = data['policy']
    vf = data['vf']
    qf = data['qf']
    algorithm = SoftActorCritic(
        env=env,
        training_env=env,  # can't clone box2d env cause of swig
        save_environment=False,  # can't save box2d env cause of swig
        policy=policy,
        qf=qf,
        vf=vf,
        **variant['algo_kwargs'],
    )

    # Overwrite algorithm for p(z) adaptation (if model is SMM).
    if 'smm_kwargs' in variant:
        discriminator = data['discriminator']
        density_model = data['density_model']
        SMMHook(base_algorithm=algorithm,
                discriminator=discriminator,
                density_model=density_model,
                **variant['smm_kwargs'])

    # Overwrite algorithm for historical averaging.
    if args.num_historical_policies > 0:
        HistoricalPoliciesHook(
            base_algorithm=algorithm,
            **variant['historical_policies_kwargs'],
        )

    algorithm.to(ptu.device)
    algorithm.train()