Upload . with huggingface_hub
Browse files- .gitattributes +1 -0
- .summary/0/events.out.tfevents.1677853404.tensorbook +3 -0
- README.md +56 -0
- checkpoint_p0/best_000000978_4005888_reward_25.653.pth +3 -0
- checkpoint_p0/checkpoint_000000901_3690496.pth +3 -0
- checkpoint_p0/checkpoint_000000978_4005888.pth +3 -0
- config.json +142 -0
- replay.mp4 +3 -0
- sf_log.txt +1000 -0
.gitattributes
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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*.zip filter=lfs diff=lfs merge=lfs -text
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*.zst filter=lfs diff=lfs merge=lfs -text
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*tfevents* filter=lfs diff=lfs merge=lfs -text
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replay.mp4 filter=lfs diff=lfs merge=lfs -text
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.summary/0/events.out.tfevents.1677853404.tensorbook
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version https://git-lfs.github.com/spec/v1
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oid sha256:01b1fd2c3a6cca025337db424b62d3eb0eebbdce0590845238c3c657550cc254
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size 120207
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README.md
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---
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library_name: sample-factory
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tags:
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+
- deep-reinforcement-learning
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+
- reinforcement-learning
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- sample-factory
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model-index:
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- name: APPO
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results:
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- task:
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type: reinforcement-learning
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name: reinforcement-learning
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dataset:
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name: doom_health_gathering_supreme
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type: doom_health_gathering_supreme
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metrics:
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- type: mean_reward
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value: 10.42 +/- 4.53
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name: mean_reward
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verified: false
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---
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A(n) **APPO** model trained on the **doom_health_gathering_supreme** environment.
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This model was trained using Sample-Factory 2.0: https://github.com/alex-petrenko/sample-factory.
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Documentation for how to use Sample-Factory can be found at https://www.samplefactory.dev/
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## Downloading the model
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After installing Sample-Factory, download the model with:
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+
```
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python -m sample_factory.huggingface.load_from_hub -r CloXD/rl_course_vizdoom_health_gathering_supreme
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```
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## Using the model
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To run the model after download, use the `enjoy` script corresponding to this environment:
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```
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python -m <path.to.enjoy.module> --algo=APPO --env=doom_health_gathering_supreme --train_dir=./train_dir --experiment=rl_course_vizdoom_health_gathering_supreme
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+
```
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+
|
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You can also upload models to the Hugging Face Hub using the same script with the `--push_to_hub` flag.
|
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See https://www.samplefactory.dev/10-huggingface/huggingface/ for more details
|
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+
|
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+
## Training with this model
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+
|
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+
To continue training with this model, use the `train` script corresponding to this environment:
|
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```
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+
python -m <path.to.train.module> --algo=APPO --env=doom_health_gathering_supreme --train_dir=./train_dir --experiment=rl_course_vizdoom_health_gathering_supreme --restart_behavior=resume --train_for_env_steps=10000000000
|
53 |
+
```
|
54 |
+
|
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+
Note, you may have to adjust `--train_for_env_steps` to a suitably high number as the experiment will resume at the number of steps it concluded at.
|
56 |
+
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checkpoint_p0/best_000000978_4005888_reward_25.653.pth
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version https://git-lfs.github.com/spec/v1
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oid sha256:fd1ef51ce8f01b11425d9fb455d0aba29e50257528817539b3b63568f0cbff0c
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size 34924044
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checkpoint_p0/checkpoint_000000901_3690496.pth
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version https://git-lfs.github.com/spec/v1
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oid sha256:7f0fbb0422d9825cab561ea49be68e6930959a93aae80eda3b3b8a74a4420c2d
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size 34924044
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checkpoint_p0/checkpoint_000000978_4005888.pth
ADDED
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version https://git-lfs.github.com/spec/v1
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oid sha256:fd1ef51ce8f01b11425d9fb455d0aba29e50257528817539b3b63568f0cbff0c
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size 34924044
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config.json
ADDED
@@ -0,0 +1,142 @@
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{
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2 |
+
"help": false,
|
3 |
+
"algo": "APPO",
|
4 |
+
"env": "doom_health_gathering_supreme",
|
5 |
+
"experiment": "default_experiment",
|
6 |
+
"train_dir": "/home/lorencl/git/ReinforcementLearning/Lesson8/train_dir",
|
7 |
+
"restart_behavior": "resume",
|
8 |
+
"device": "gpu",
|
9 |
+
"seed": null,
|
10 |
+
"num_policies": 1,
|
11 |
+
"async_rl": true,
|
12 |
+
"serial_mode": false,
|
13 |
+
"batched_sampling": false,
|
14 |
+
"num_batches_to_accumulate": 2,
|
15 |
+
"worker_num_splits": 2,
|
16 |
+
"policy_workers_per_policy": 1,
|
17 |
+
"max_policy_lag": 1000,
|
18 |
+
"num_workers": 8,
|
19 |
+
"num_envs_per_worker": 4,
|
20 |
+
"batch_size": 1024,
|
21 |
+
"num_batches_per_epoch": 1,
|
22 |
+
"num_epochs": 1,
|
23 |
+
"rollout": 32,
|
24 |
+
"recurrence": 32,
|
25 |
+
"shuffle_minibatches": false,
|
26 |
+
"gamma": 0.99,
|
27 |
+
"reward_scale": 1.0,
|
28 |
+
"reward_clip": 1000.0,
|
29 |
+
"value_bootstrap": false,
|
30 |
+
"normalize_returns": true,
|
31 |
+
"exploration_loss_coeff": 0.001,
|
32 |
+
"value_loss_coeff": 0.5,
|
33 |
+
"kl_loss_coeff": 0.0,
|
34 |
+
"exploration_loss": "symmetric_kl",
|
35 |
+
"gae_lambda": 0.95,
|
36 |
+
"ppo_clip_ratio": 0.1,
|
37 |
+
"ppo_clip_value": 0.2,
|
38 |
+
"with_vtrace": false,
|
39 |
+
"vtrace_rho": 1.0,
|
40 |
+
"vtrace_c": 1.0,
|
41 |
+
"optimizer": "adam",
|
42 |
+
"adam_eps": 1e-06,
|
43 |
+
"adam_beta1": 0.9,
|
44 |
+
"adam_beta2": 0.999,
|
45 |
+
"max_grad_norm": 4.0,
|
46 |
+
"learning_rate": 0.0001,
|
47 |
+
"lr_schedule": "constant",
|
48 |
+
"lr_schedule_kl_threshold": 0.008,
|
49 |
+
"lr_adaptive_min": 1e-06,
|
50 |
+
"lr_adaptive_max": 0.01,
|
51 |
+
"obs_subtract_mean": 0.0,
|
52 |
+
"obs_scale": 255.0,
|
53 |
+
"normalize_input": true,
|
54 |
+
"normalize_input_keys": null,
|
55 |
+
"decorrelate_experience_max_seconds": 0,
|
56 |
+
"decorrelate_envs_on_one_worker": true,
|
57 |
+
"actor_worker_gpus": [],
|
58 |
+
"set_workers_cpu_affinity": true,
|
59 |
+
"force_envs_single_thread": false,
|
60 |
+
"default_niceness": 0,
|
61 |
+
"log_to_file": true,
|
62 |
+
"experiment_summaries_interval": 10,
|
63 |
+
"flush_summaries_interval": 30,
|
64 |
+
"stats_avg": 100,
|
65 |
+
"summaries_use_frameskip": true,
|
66 |
+
"heartbeat_interval": 20,
|
67 |
+
"heartbeat_reporting_interval": 600,
|
68 |
+
"train_for_env_steps": 4000000,
|
69 |
+
"train_for_seconds": 10000000000,
|
70 |
+
"save_every_sec": 120,
|
71 |
+
"keep_checkpoints": 2,
|
72 |
+
"load_checkpoint_kind": "latest",
|
73 |
+
"save_milestones_sec": -1,
|
74 |
+
"save_best_every_sec": 5,
|
75 |
+
"save_best_metric": "reward",
|
76 |
+
"save_best_after": 100000,
|
77 |
+
"benchmark": false,
|
78 |
+
"encoder_mlp_layers": [
|
79 |
+
512,
|
80 |
+
512
|
81 |
+
],
|
82 |
+
"encoder_conv_architecture": "convnet_simple",
|
83 |
+
"encoder_conv_mlp_layers": [
|
84 |
+
512
|
85 |
+
],
|
86 |
+
"use_rnn": true,
|
87 |
+
"rnn_size": 512,
|
88 |
+
"rnn_type": "gru",
|
89 |
+
"rnn_num_layers": 1,
|
90 |
+
"decoder_mlp_layers": [],
|
91 |
+
"nonlinearity": "elu",
|
92 |
+
"policy_initialization": "orthogonal",
|
93 |
+
"policy_init_gain": 1.0,
|
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+
"actor_critic_share_weights": true,
|
95 |
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"adaptive_stddev": true,
|
96 |
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"continuous_tanh_scale": 0.0,
|
97 |
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"initial_stddev": 1.0,
|
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"use_env_info_cache": false,
|
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"env_gpu_actions": false,
|
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"env_gpu_observations": true,
|
101 |
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"env_frameskip": 4,
|
102 |
+
"env_framestack": 1,
|
103 |
+
"pixel_format": "CHW",
|
104 |
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"use_record_episode_statistics": false,
|
105 |
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"with_wandb": false,
|
106 |
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"wandb_user": null,
|
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"wandb_project": "sample_factory",
|
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"wandb_group": null,
|
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"wandb_job_type": "SF",
|
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"wandb_tags": [],
|
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"with_pbt": false,
|
112 |
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"pbt_mix_policies_in_one_env": true,
|
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"pbt_period_env_steps": 5000000,
|
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"pbt_start_mutation": 20000000,
|
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"pbt_replace_fraction": 0.3,
|
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"pbt_mutation_rate": 0.15,
|
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"pbt_replace_reward_gap": 0.1,
|
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"pbt_replace_reward_gap_absolute": 1e-06,
|
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"pbt_optimize_gamma": false,
|
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"pbt_target_objective": "true_objective",
|
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"pbt_perturb_min": 1.1,
|
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"pbt_perturb_max": 1.5,
|
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"num_agents": -1,
|
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"num_humans": 0,
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"num_bots": -1,
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"start_bot_difficulty": null,
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"timelimit": null,
|
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"res_w": 128,
|
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"res_h": 72,
|
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"wide_aspect_ratio": false,
|
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"eval_env_frameskip": 1,
|
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"fps": 35,
|
133 |
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"command_line": "--env=doom_health_gathering_supreme --num_workers=8 --num_envs_per_worker=4 --train_for_env_steps=4000000",
|
134 |
+
"cli_args": {
|
135 |
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"env": "doom_health_gathering_supreme",
|
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"num_workers": 8,
|
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"num_envs_per_worker": 4,
|
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"train_for_env_steps": 4000000
|
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},
|
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"git_hash": "unknown",
|
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"git_repo_name": "not a git repository"
|
142 |
+
}
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replay.mp4
ADDED
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|
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version https://git-lfs.github.com/spec/v1
|
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oid sha256:b820257022fe6981cbe347f275a157ab0dae11690d9c0d120172c84fc470ac5a
|
3 |
+
size 20440267
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sf_log.txt
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1 |
+
[2023-03-03 15:23:26,156][90258] Saving configuration to /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/config.json...
|
2 |
+
[2023-03-03 15:23:26,157][90258] Rollout worker 0 uses device cpu
|
3 |
+
[2023-03-03 15:23:26,157][90258] Rollout worker 1 uses device cpu
|
4 |
+
[2023-03-03 15:23:26,158][90258] Rollout worker 2 uses device cpu
|
5 |
+
[2023-03-03 15:23:26,158][90258] Rollout worker 3 uses device cpu
|
6 |
+
[2023-03-03 15:23:26,159][90258] Rollout worker 4 uses device cpu
|
7 |
+
[2023-03-03 15:23:26,159][90258] Rollout worker 5 uses device cpu
|
8 |
+
[2023-03-03 15:23:26,159][90258] Rollout worker 6 uses device cpu
|
9 |
+
[2023-03-03 15:23:26,160][90258] Rollout worker 7 uses device cpu
|
10 |
+
[2023-03-03 15:23:26,186][90258] Using GPUs [0] for process 0 (actually maps to GPUs [0])
|
11 |
+
[2023-03-03 15:23:26,187][90258] InferenceWorker_p0-w0: min num requests: 2
|
12 |
+
[2023-03-03 15:23:26,203][90258] Starting all processes...
|
13 |
+
[2023-03-03 15:23:26,203][90258] Starting process learner_proc0
|
14 |
+
[2023-03-03 15:23:26,253][90258] Starting all processes...
|
15 |
+
[2023-03-03 15:23:26,257][90258] Starting process inference_proc0-0
|
16 |
+
[2023-03-03 15:23:26,257][90258] Starting process rollout_proc0
|
17 |
+
[2023-03-03 15:23:26,257][90258] Starting process rollout_proc1
|
18 |
+
[2023-03-03 15:23:26,258][90258] Starting process rollout_proc2
|
19 |
+
[2023-03-03 15:23:26,258][90258] Starting process rollout_proc3
|
20 |
+
[2023-03-03 15:23:26,259][90258] Starting process rollout_proc4
|
21 |
+
[2023-03-03 15:23:26,259][90258] Starting process rollout_proc5
|
22 |
+
[2023-03-03 15:23:26,260][90258] Starting process rollout_proc6
|
23 |
+
[2023-03-03 15:23:26,261][90258] Starting process rollout_proc7
|
24 |
+
[2023-03-03 15:23:27,164][90462] Worker 0 uses CPU cores [0, 1]
|
25 |
+
[2023-03-03 15:23:27,250][90447] Using GPUs [0] for process 0 (actually maps to GPUs [0])
|
26 |
+
[2023-03-03 15:23:27,250][90447] Set environment var CUDA_VISIBLE_DEVICES to '0' (GPU indices [0]) for learning process 0
|
27 |
+
[2023-03-03 15:23:27,260][90461] Worker 1 uses CPU cores [2, 3]
|
28 |
+
[2023-03-03 15:23:27,262][90460] Using GPUs [0] for process 0 (actually maps to GPUs [0])
|
29 |
+
[2023-03-03 15:23:27,262][90460] Set environment var CUDA_VISIBLE_DEVICES to '0' (GPU indices [0]) for inference process 0
|
30 |
+
[2023-03-03 15:23:27,264][90447] Num visible devices: 1
|
31 |
+
[2023-03-03 15:23:27,265][90463] Worker 3 uses CPU cores [6, 7]
|
32 |
+
[2023-03-03 15:23:27,265][90466] Worker 5 uses CPU cores [10, 11]
|
33 |
+
[2023-03-03 15:23:27,266][90460] Num visible devices: 1
|
34 |
+
[2023-03-03 15:23:27,301][90447] Starting seed is not provided
|
35 |
+
[2023-03-03 15:23:27,302][90447] Using GPUs [0] for process 0 (actually maps to GPUs [0])
|
36 |
+
[2023-03-03 15:23:27,302][90483] Worker 6 uses CPU cores [12, 13]
|
37 |
+
[2023-03-03 15:23:27,302][90447] Initializing actor-critic model on device cuda:0
|
38 |
+
[2023-03-03 15:23:27,302][90447] RunningMeanStd input shape: (3, 72, 128)
|
39 |
+
[2023-03-03 15:23:27,302][90447] RunningMeanStd input shape: (1,)
|
40 |
+
[2023-03-03 15:23:27,310][90447] ConvEncoder: input_channels=3
|
41 |
+
[2023-03-03 15:23:27,333][90464] Worker 2 uses CPU cores [4, 5]
|
42 |
+
[2023-03-03 15:23:27,400][90447] Conv encoder output size: 512
|
43 |
+
[2023-03-03 15:23:27,400][90447] Policy head output size: 512
|
44 |
+
[2023-03-03 15:23:27,403][90482] Worker 7 uses CPU cores [14, 15]
|
45 |
+
[2023-03-03 15:23:27,408][90447] Created Actor Critic model with architecture:
|
46 |
+
[2023-03-03 15:23:27,408][90447] ActorCriticSharedWeights(
|
47 |
+
(obs_normalizer): ObservationNormalizer(
|
48 |
+
(running_mean_std): RunningMeanStdDictInPlace(
|
49 |
+
(running_mean_std): ModuleDict(
|
50 |
+
(obs): RunningMeanStdInPlace()
|
51 |
+
)
|
52 |
+
)
|
53 |
+
)
|
54 |
+
(returns_normalizer): RecursiveScriptModule(original_name=RunningMeanStdInPlace)
|
55 |
+
(encoder): VizdoomEncoder(
|
56 |
+
(basic_encoder): ConvEncoder(
|
57 |
+
(enc): RecursiveScriptModule(
|
58 |
+
original_name=ConvEncoderImpl
|
59 |
+
(conv_head): RecursiveScriptModule(
|
60 |
+
original_name=Sequential
|
61 |
+
(0): RecursiveScriptModule(original_name=Conv2d)
|
62 |
+
(1): RecursiveScriptModule(original_name=ELU)
|
63 |
+
(2): RecursiveScriptModule(original_name=Conv2d)
|
64 |
+
(3): RecursiveScriptModule(original_name=ELU)
|
65 |
+
(4): RecursiveScriptModule(original_name=Conv2d)
|
66 |
+
(5): RecursiveScriptModule(original_name=ELU)
|
67 |
+
)
|
68 |
+
(mlp_layers): RecursiveScriptModule(
|
69 |
+
original_name=Sequential
|
70 |
+
(0): RecursiveScriptModule(original_name=Linear)
|
71 |
+
(1): RecursiveScriptModule(original_name=ELU)
|
72 |
+
)
|
73 |
+
)
|
74 |
+
)
|
75 |
+
)
|
76 |
+
(core): ModelCoreRNN(
|
77 |
+
(core): GRU(512, 512)
|
78 |
+
)
|
79 |
+
(decoder): MlpDecoder(
|
80 |
+
(mlp): Identity()
|
81 |
+
)
|
82 |
+
(critic_linear): Linear(in_features=512, out_features=1, bias=True)
|
83 |
+
(action_parameterization): ActionParameterizationDefault(
|
84 |
+
(distribution_linear): Linear(in_features=512, out_features=5, bias=True)
|
85 |
+
)
|
86 |
+
)
|
87 |
+
[2023-03-03 15:23:27,416][90465] Worker 4 uses CPU cores [8, 9]
|
88 |
+
[2023-03-03 15:23:30,183][90447] Using optimizer <class 'torch.optim.adam.Adam'>
|
89 |
+
[2023-03-03 15:23:30,183][90447] No checkpoints found
|
90 |
+
[2023-03-03 15:23:30,184][90447] Did not load from checkpoint, starting from scratch!
|
91 |
+
[2023-03-03 15:23:30,184][90447] Initialized policy 0 weights for model version 0
|
92 |
+
[2023-03-03 15:23:30,186][90447] LearnerWorker_p0 finished initialization!
|
93 |
+
[2023-03-03 15:23:30,186][90447] Using GPUs [0] for process 0 (actually maps to GPUs [0])
|
94 |
+
[2023-03-03 15:23:30,219][90460] RunningMeanStd input shape: (3, 72, 128)
|
95 |
+
[2023-03-03 15:23:30,219][90460] RunningMeanStd input shape: (1,)
|
96 |
+
[2023-03-03 15:23:30,226][90460] ConvEncoder: input_channels=3
|
97 |
+
[2023-03-03 15:23:30,290][90460] Conv encoder output size: 512
|
98 |
+
[2023-03-03 15:23:30,290][90460] Policy head output size: 512
|
99 |
+
[2023-03-03 15:23:32,995][90258] Inference worker 0-0 is ready!
|
100 |
+
[2023-03-03 15:23:32,996][90258] All inference workers are ready! Signal rollout workers to start!
|
101 |
+
[2023-03-03 15:23:33,013][90464] Doom resolution: 160x120, resize resolution: (128, 72)
|
102 |
+
[2023-03-03 15:23:33,013][90462] Doom resolution: 160x120, resize resolution: (128, 72)
|
103 |
+
[2023-03-03 15:23:33,014][90483] Doom resolution: 160x120, resize resolution: (128, 72)
|
104 |
+
[2023-03-03 15:23:33,015][90465] Doom resolution: 160x120, resize resolution: (128, 72)
|
105 |
+
[2023-03-03 15:23:33,018][90482] Doom resolution: 160x120, resize resolution: (128, 72)
|
106 |
+
[2023-03-03 15:23:33,018][90463] Doom resolution: 160x120, resize resolution: (128, 72)
|
107 |
+
[2023-03-03 15:23:33,018][90466] Doom resolution: 160x120, resize resolution: (128, 72)
|
108 |
+
[2023-03-03 15:23:33,019][90461] Doom resolution: 160x120, resize resolution: (128, 72)
|
109 |
+
[2023-03-03 15:23:33,206][90463] Decorrelating experience for 0 frames...
|
110 |
+
[2023-03-03 15:23:33,239][90462] Decorrelating experience for 0 frames...
|
111 |
+
[2023-03-03 15:23:33,243][90465] Decorrelating experience for 0 frames...
|
112 |
+
[2023-03-03 15:23:33,275][90483] Decorrelating experience for 0 frames...
|
113 |
+
[2023-03-03 15:23:33,276][90464] Decorrelating experience for 0 frames...
|
114 |
+
[2023-03-03 15:23:33,395][90466] Decorrelating experience for 0 frames...
|
115 |
+
[2023-03-03 15:23:33,439][90462] Decorrelating experience for 32 frames...
|
116 |
+
[2023-03-03 15:23:33,442][90465] Decorrelating experience for 32 frames...
|
117 |
+
[2023-03-03 15:23:33,457][90483] Decorrelating experience for 32 frames...
|
118 |
+
[2023-03-03 15:23:33,464][90464] Decorrelating experience for 32 frames...
|
119 |
+
[2023-03-03 15:23:33,473][90463] Decorrelating experience for 32 frames...
|
120 |
+
[2023-03-03 15:23:33,514][90482] Decorrelating experience for 0 frames...
|
121 |
+
[2023-03-03 15:23:33,578][90466] Decorrelating experience for 32 frames...
|
122 |
+
[2023-03-03 15:23:33,634][90462] Decorrelating experience for 64 frames...
|
123 |
+
[2023-03-03 15:23:33,647][90483] Decorrelating experience for 64 frames...
|
124 |
+
[2023-03-03 15:23:33,678][90461] Decorrelating experience for 0 frames...
|
125 |
+
[2023-03-03 15:23:33,725][90482] Decorrelating experience for 32 frames...
|
126 |
+
[2023-03-03 15:23:33,763][90463] Decorrelating experience for 64 frames...
|
127 |
+
[2023-03-03 15:23:33,766][90466] Decorrelating experience for 64 frames...
|
128 |
+
[2023-03-03 15:23:33,805][90464] Decorrelating experience for 64 frames...
|
129 |
+
[2023-03-03 15:23:33,945][90463] Decorrelating experience for 96 frames...
|
130 |
+
[2023-03-03 15:23:33,956][90461] Decorrelating experience for 32 frames...
|
131 |
+
[2023-03-03 15:23:33,987][90483] Decorrelating experience for 96 frames...
|
132 |
+
[2023-03-03 15:23:34,000][90465] Decorrelating experience for 64 frames...
|
133 |
+
[2023-03-03 15:23:34,014][90466] Decorrelating experience for 96 frames...
|
134 |
+
[2023-03-03 15:23:34,042][90464] Decorrelating experience for 96 frames...
|
135 |
+
[2023-03-03 15:23:34,193][90482] Decorrelating experience for 64 frames...
|
136 |
+
[2023-03-03 15:23:34,215][90462] Decorrelating experience for 96 frames...
|
137 |
+
[2023-03-03 15:23:34,230][90465] Decorrelating experience for 96 frames...
|
138 |
+
[2023-03-03 15:23:34,267][90461] Decorrelating experience for 64 frames...
|
139 |
+
[2023-03-03 15:23:34,431][90447] Signal inference workers to stop experience collection...
|
140 |
+
[2023-03-03 15:23:34,433][90460] InferenceWorker_p0-w0: stopping experience collection
|
141 |
+
[2023-03-03 15:23:34,471][90482] Decorrelating experience for 96 frames...
|
142 |
+
[2023-03-03 15:23:34,478][90461] Decorrelating experience for 96 frames...
|
143 |
+
[2023-03-03 15:23:34,676][90447] Signal inference workers to resume experience collection...
|
144 |
+
[2023-03-03 15:23:34,676][90460] InferenceWorker_p0-w0: resuming experience collection
|
145 |
+
[2023-03-03 15:23:34,989][90258] Fps is (10 sec: nan, 60 sec: nan, 300 sec: nan). Total num frames: 4096. Throughput: 0: nan. Samples: 0. Policy #0 lag: (min: 0.0, avg: 0.0, max: 0.0)
|
146 |
+
[2023-03-03 15:23:34,990][90258] Avg episode reward: [(0, '3.176')]
|
147 |
+
[2023-03-03 15:23:36,121][90460] Updated weights for policy 0, policy_version 10 (0.0193)
|
148 |
+
[2023-03-03 15:23:37,294][90460] Updated weights for policy 0, policy_version 20 (0.0006)
|
149 |
+
[2023-03-03 15:23:38,492][90460] Updated weights for policy 0, policy_version 30 (0.0006)
|
150 |
+
[2023-03-03 15:23:39,622][90460] Updated weights for policy 0, policy_version 40 (0.0006)
|
151 |
+
[2023-03-03 15:23:39,989][90258] Fps is (10 sec: 34406.6, 60 sec: 34406.6, 300 sec: 34406.6). Total num frames: 176128. Throughput: 0: 7185.6. Samples: 35928. Policy #0 lag: (min: 0.0, avg: 0.6, max: 2.0)
|
152 |
+
[2023-03-03 15:23:39,990][90258] Avg episode reward: [(0, '4.483')]
|
153 |
+
[2023-03-03 15:23:39,990][90447] Saving new best policy, reward=4.483!
|
154 |
+
[2023-03-03 15:23:40,811][90460] Updated weights for policy 0, policy_version 50 (0.0005)
|
155 |
+
[2023-03-03 15:23:42,034][90460] Updated weights for policy 0, policy_version 60 (0.0006)
|
156 |
+
[2023-03-03 15:23:43,222][90460] Updated weights for policy 0, policy_version 70 (0.0006)
|
157 |
+
[2023-03-03 15:23:44,405][90460] Updated weights for policy 0, policy_version 80 (0.0005)
|
158 |
+
[2023-03-03 15:23:44,989][90258] Fps is (10 sec: 34406.4, 60 sec: 34406.4, 300 sec: 34406.4). Total num frames: 348160. Throughput: 0: 6194.2. Samples: 61942. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
159 |
+
[2023-03-03 15:23:44,990][90258] Avg episode reward: [(0, '4.403')]
|
160 |
+
[2023-03-03 15:23:45,560][90460] Updated weights for policy 0, policy_version 90 (0.0006)
|
161 |
+
[2023-03-03 15:23:46,182][90258] Heartbeat connected on Batcher_0
|
162 |
+
[2023-03-03 15:23:46,184][90258] Heartbeat connected on LearnerWorker_p0
|
163 |
+
[2023-03-03 15:23:46,188][90258] Heartbeat connected on InferenceWorker_p0-w0
|
164 |
+
[2023-03-03 15:23:46,191][90258] Heartbeat connected on RolloutWorker_w0
|
165 |
+
[2023-03-03 15:23:46,192][90258] Heartbeat connected on RolloutWorker_w1
|
166 |
+
[2023-03-03 15:23:46,195][90258] Heartbeat connected on RolloutWorker_w2
|
167 |
+
[2023-03-03 15:23:46,196][90258] Heartbeat connected on RolloutWorker_w3
|
168 |
+
[2023-03-03 15:23:46,197][90258] Heartbeat connected on RolloutWorker_w4
|
169 |
+
[2023-03-03 15:23:46,199][90258] Heartbeat connected on RolloutWorker_w5
|
170 |
+
[2023-03-03 15:23:46,201][90258] Heartbeat connected on RolloutWorker_w6
|
171 |
+
[2023-03-03 15:23:46,203][90258] Heartbeat connected on RolloutWorker_w7
|
172 |
+
[2023-03-03 15:23:46,790][90460] Updated weights for policy 0, policy_version 100 (0.0006)
|
173 |
+
[2023-03-03 15:23:47,979][90460] Updated weights for policy 0, policy_version 110 (0.0006)
|
174 |
+
[2023-03-03 15:23:49,185][90460] Updated weights for policy 0, policy_version 120 (0.0006)
|
175 |
+
[2023-03-03 15:23:49,989][90258] Fps is (10 sec: 33996.5, 60 sec: 34133.2, 300 sec: 34133.2). Total num frames: 516096. Throughput: 0: 7577.6. Samples: 113664. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
176 |
+
[2023-03-03 15:23:49,990][90258] Avg episode reward: [(0, '4.594')]
|
177 |
+
[2023-03-03 15:23:49,990][90447] Saving new best policy, reward=4.594!
|
178 |
+
[2023-03-03 15:23:50,416][90460] Updated weights for policy 0, policy_version 130 (0.0006)
|
179 |
+
[2023-03-03 15:23:51,625][90460] Updated weights for policy 0, policy_version 140 (0.0006)
|
180 |
+
[2023-03-03 15:23:52,888][90460] Updated weights for policy 0, policy_version 150 (0.0006)
|
181 |
+
[2023-03-03 15:23:54,175][90460] Updated weights for policy 0, policy_version 160 (0.0006)
|
182 |
+
[2023-03-03 15:23:54,989][90258] Fps is (10 sec: 33177.3, 60 sec: 33791.8, 300 sec: 33791.8). Total num frames: 679936. Throughput: 0: 8178.2. Samples: 163564. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
183 |
+
[2023-03-03 15:23:54,990][90258] Avg episode reward: [(0, '4.407')]
|
184 |
+
[2023-03-03 15:23:55,439][90460] Updated weights for policy 0, policy_version 170 (0.0006)
|
185 |
+
[2023-03-03 15:23:56,723][90460] Updated weights for policy 0, policy_version 180 (0.0006)
|
186 |
+
[2023-03-03 15:23:57,871][90460] Updated weights for policy 0, policy_version 190 (0.0006)
|
187 |
+
[2023-03-03 15:23:59,063][90460] Updated weights for policy 0, policy_version 200 (0.0006)
|
188 |
+
[2023-03-03 15:23:59,989][90258] Fps is (10 sec: 33587.5, 60 sec: 33914.9, 300 sec: 33914.9). Total num frames: 851968. Throughput: 0: 7503.7. Samples: 187592. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
189 |
+
[2023-03-03 15:23:59,990][90258] Avg episode reward: [(0, '4.461')]
|
190 |
+
[2023-03-03 15:24:00,229][90460] Updated weights for policy 0, policy_version 210 (0.0006)
|
191 |
+
[2023-03-03 15:24:01,402][90460] Updated weights for policy 0, policy_version 220 (0.0006)
|
192 |
+
[2023-03-03 15:24:02,561][90460] Updated weights for policy 0, policy_version 230 (0.0005)
|
193 |
+
[2023-03-03 15:24:03,727][90460] Updated weights for policy 0, policy_version 240 (0.0005)
|
194 |
+
[2023-03-03 15:24:04,901][90460] Updated weights for policy 0, policy_version 250 (0.0005)
|
195 |
+
[2023-03-03 15:24:04,989][90258] Fps is (10 sec: 34406.4, 60 sec: 33996.7, 300 sec: 33996.7). Total num frames: 1024000. Throughput: 0: 8010.4. Samples: 240312. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
196 |
+
[2023-03-03 15:24:04,990][90258] Avg episode reward: [(0, '4.572')]
|
197 |
+
[2023-03-03 15:24:06,091][90460] Updated weights for policy 0, policy_version 260 (0.0005)
|
198 |
+
[2023-03-03 15:24:07,335][90460] Updated weights for policy 0, policy_version 270 (0.0006)
|
199 |
+
[2023-03-03 15:24:08,625][90460] Updated weights for policy 0, policy_version 280 (0.0006)
|
200 |
+
[2023-03-03 15:24:09,862][90460] Updated weights for policy 0, policy_version 290 (0.0006)
|
201 |
+
[2023-03-03 15:24:09,989][90258] Fps is (10 sec: 33587.1, 60 sec: 33821.3, 300 sec: 33821.3). Total num frames: 1187840. Throughput: 0: 8302.5. Samples: 290586. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
202 |
+
[2023-03-03 15:24:09,989][90258] Avg episode reward: [(0, '4.823')]
|
203 |
+
[2023-03-03 15:24:09,990][90447] Saving new best policy, reward=4.823!
|
204 |
+
[2023-03-03 15:24:11,103][90460] Updated weights for policy 0, policy_version 300 (0.0006)
|
205 |
+
[2023-03-03 15:24:12,385][90460] Updated weights for policy 0, policy_version 310 (0.0006)
|
206 |
+
[2023-03-03 15:24:13,708][90460] Updated weights for policy 0, policy_version 320 (0.0007)
|
207 |
+
[2023-03-03 15:24:14,989][90258] Fps is (10 sec: 32358.4, 60 sec: 33587.1, 300 sec: 33587.1). Total num frames: 1347584. Throughput: 0: 7887.0. Samples: 315482. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
208 |
+
[2023-03-03 15:24:14,990][90258] Avg episode reward: [(0, '5.670')]
|
209 |
+
[2023-03-03 15:24:15,017][90447] Saving new best policy, reward=5.670!
|
210 |
+
[2023-03-03 15:24:15,017][90460] Updated weights for policy 0, policy_version 330 (0.0006)
|
211 |
+
[2023-03-03 15:24:16,218][90460] Updated weights for policy 0, policy_version 340 (0.0006)
|
212 |
+
[2023-03-03 15:24:17,427][90460] Updated weights for policy 0, policy_version 350 (0.0006)
|
213 |
+
[2023-03-03 15:24:18,611][90460] Updated weights for policy 0, policy_version 360 (0.0006)
|
214 |
+
[2023-03-03 15:24:19,810][90460] Updated weights for policy 0, policy_version 370 (0.0006)
|
215 |
+
[2023-03-03 15:24:19,989][90258] Fps is (10 sec: 33177.5, 60 sec: 33678.2, 300 sec: 33678.2). Total num frames: 1519616. Throughput: 0: 8092.0. Samples: 364138. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
216 |
+
[2023-03-03 15:24:19,990][90258] Avg episode reward: [(0, '6.905')]
|
217 |
+
[2023-03-03 15:24:19,990][90447] Saving new best policy, reward=6.905!
|
218 |
+
[2023-03-03 15:24:21,119][90460] Updated weights for policy 0, policy_version 380 (0.0007)
|
219 |
+
[2023-03-03 15:24:22,347][90460] Updated weights for policy 0, policy_version 390 (0.0006)
|
220 |
+
[2023-03-03 15:24:23,571][90460] Updated weights for policy 0, policy_version 400 (0.0006)
|
221 |
+
[2023-03-03 15:24:24,782][90460] Updated weights for policy 0, policy_version 410 (0.0006)
|
222 |
+
[2023-03-03 15:24:24,989][90258] Fps is (10 sec: 33587.4, 60 sec: 33587.2, 300 sec: 33587.2). Total num frames: 1683456. Throughput: 0: 8403.9. Samples: 414104. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
223 |
+
[2023-03-03 15:24:24,990][90258] Avg episode reward: [(0, '7.918')]
|
224 |
+
[2023-03-03 15:24:24,993][90447] Saving new best policy, reward=7.918!
|
225 |
+
[2023-03-03 15:24:26,008][90460] Updated weights for policy 0, policy_version 420 (0.0006)
|
226 |
+
[2023-03-03 15:24:27,167][90460] Updated weights for policy 0, policy_version 430 (0.0006)
|
227 |
+
[2023-03-03 15:24:28,337][90460] Updated weights for policy 0, policy_version 440 (0.0006)
|
228 |
+
[2023-03-03 15:24:29,516][90460] Updated weights for policy 0, policy_version 450 (0.0006)
|
229 |
+
[2023-03-03 15:24:29,990][90258] Fps is (10 sec: 33992.3, 60 sec: 33735.3, 300 sec: 33735.3). Total num frames: 1859584. Throughput: 0: 8396.3. Samples: 439788. Policy #0 lag: (min: 0.0, avg: 0.9, max: 2.0)
|
230 |
+
[2023-03-03 15:24:29,991][90258] Avg episode reward: [(0, '10.319')]
|
231 |
+
[2023-03-03 15:24:29,992][90447] Saving new best policy, reward=10.319!
|
232 |
+
[2023-03-03 15:24:30,685][90460] Updated weights for policy 0, policy_version 460 (0.0006)
|
233 |
+
[2023-03-03 15:24:31,866][90460] Updated weights for policy 0, policy_version 470 (0.0006)
|
234 |
+
[2023-03-03 15:24:33,058][90460] Updated weights for policy 0, policy_version 480 (0.0006)
|
235 |
+
[2023-03-03 15:24:34,278][90460] Updated weights for policy 0, policy_version 490 (0.0006)
|
236 |
+
[2023-03-03 15:24:34,989][90258] Fps is (10 sec: 34406.6, 60 sec: 33723.7, 300 sec: 33723.7). Total num frames: 2027520. Throughput: 0: 8403.7. Samples: 491828. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
237 |
+
[2023-03-03 15:24:34,989][90258] Avg episode reward: [(0, '11.640')]
|
238 |
+
[2023-03-03 15:24:35,007][90447] Saving new best policy, reward=11.640!
|
239 |
+
[2023-03-03 15:24:35,499][90460] Updated weights for policy 0, policy_version 500 (0.0006)
|
240 |
+
[2023-03-03 15:24:36,700][90460] Updated weights for policy 0, policy_version 510 (0.0006)
|
241 |
+
[2023-03-03 15:24:37,933][90460] Updated weights for policy 0, policy_version 520 (0.0006)
|
242 |
+
[2023-03-03 15:24:39,218][90460] Updated weights for policy 0, policy_version 530 (0.0006)
|
243 |
+
[2023-03-03 15:24:39,989][90258] Fps is (10 sec: 33591.6, 60 sec: 33655.4, 300 sec: 33713.2). Total num frames: 2195456. Throughput: 0: 8403.8. Samples: 541734. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
244 |
+
[2023-03-03 15:24:39,990][90258] Avg episode reward: [(0, '15.053')]
|
245 |
+
[2023-03-03 15:24:39,991][90447] Saving new best policy, reward=15.053!
|
246 |
+
[2023-03-03 15:24:40,436][90460] Updated weights for policy 0, policy_version 540 (0.0006)
|
247 |
+
[2023-03-03 15:24:41,673][90460] Updated weights for policy 0, policy_version 550 (0.0006)
|
248 |
+
[2023-03-03 15:24:42,888][90460] Updated weights for policy 0, policy_version 560 (0.0006)
|
249 |
+
[2023-03-03 15:24:44,131][90460] Updated weights for policy 0, policy_version 570 (0.0006)
|
250 |
+
[2023-03-03 15:24:44,989][90258] Fps is (10 sec: 33587.1, 60 sec: 33587.2, 300 sec: 33704.2). Total num frames: 2363392. Throughput: 0: 8422.9. Samples: 566624. Policy #0 lag: (min: 0.0, avg: 0.9, max: 2.0)
|
251 |
+
[2023-03-03 15:24:44,990][90258] Avg episode reward: [(0, '17.175')]
|
252 |
+
[2023-03-03 15:24:44,993][90447] Saving new best policy, reward=17.175!
|
253 |
+
[2023-03-03 15:24:45,312][90460] Updated weights for policy 0, policy_version 580 (0.0006)
|
254 |
+
[2023-03-03 15:24:46,519][90460] Updated weights for policy 0, policy_version 590 (0.0006)
|
255 |
+
[2023-03-03 15:24:47,733][90460] Updated weights for policy 0, policy_version 600 (0.0006)
|
256 |
+
[2023-03-03 15:24:48,917][90460] Updated weights for policy 0, policy_version 610 (0.0006)
|
257 |
+
[2023-03-03 15:24:49,989][90258] Fps is (10 sec: 33587.0, 60 sec: 33587.2, 300 sec: 33696.4). Total num frames: 2531328. Throughput: 0: 8379.3. Samples: 617380. Policy #0 lag: (min: 0.0, avg: 0.6, max: 2.0)
|
258 |
+
[2023-03-03 15:24:49,990][90258] Avg episode reward: [(0, '20.485')]
|
259 |
+
[2023-03-03 15:24:49,991][90447] Saving new best policy, reward=20.485!
|
260 |
+
[2023-03-03 15:24:50,119][90460] Updated weights for policy 0, policy_version 620 (0.0006)
|
261 |
+
[2023-03-03 15:24:51,284][90460] Updated weights for policy 0, policy_version 630 (0.0006)
|
262 |
+
[2023-03-03 15:24:52,492][90460] Updated weights for policy 0, policy_version 640 (0.0006)
|
263 |
+
[2023-03-03 15:24:53,765][90460] Updated weights for policy 0, policy_version 650 (0.0006)
|
264 |
+
[2023-03-03 15:24:54,968][90460] Updated weights for policy 0, policy_version 660 (0.0006)
|
265 |
+
[2023-03-03 15:24:54,989][90258] Fps is (10 sec: 33996.8, 60 sec: 33723.8, 300 sec: 33740.8). Total num frames: 2703360. Throughput: 0: 8393.2. Samples: 668282. Policy #0 lag: (min: 0.0, avg: 0.6, max: 2.0)
|
266 |
+
[2023-03-03 15:24:54,990][90258] Avg episode reward: [(0, '20.297')]
|
267 |
+
[2023-03-03 15:24:56,181][90460] Updated weights for policy 0, policy_version 670 (0.0006)
|
268 |
+
[2023-03-03 15:24:57,477][90460] Updated weights for policy 0, policy_version 680 (0.0006)
|
269 |
+
[2023-03-03 15:24:58,661][90460] Updated weights for policy 0, policy_version 690 (0.0006)
|
270 |
+
[2023-03-03 15:24:59,900][90460] Updated weights for policy 0, policy_version 700 (0.0006)
|
271 |
+
[2023-03-03 15:24:59,989][90258] Fps is (10 sec: 33587.3, 60 sec: 33587.1, 300 sec: 33683.5). Total num frames: 2867200. Throughput: 0: 8394.3. Samples: 693224. Policy #0 lag: (min: 0.0, avg: 0.6, max: 1.0)
|
272 |
+
[2023-03-03 15:24:59,990][90258] Avg episode reward: [(0, '19.129')]
|
273 |
+
[2023-03-03 15:25:01,130][90460] Updated weights for policy 0, policy_version 710 (0.0006)
|
274 |
+
[2023-03-03 15:25:02,368][90460] Updated weights for policy 0, policy_version 720 (0.0006)
|
275 |
+
[2023-03-03 15:25:03,551][90460] Updated weights for policy 0, policy_version 730 (0.0006)
|
276 |
+
[2023-03-03 15:25:04,822][90460] Updated weights for policy 0, policy_version 740 (0.0006)
|
277 |
+
[2023-03-03 15:25:04,989][90258] Fps is (10 sec: 33177.7, 60 sec: 33519.0, 300 sec: 33678.2). Total num frames: 3035136. Throughput: 0: 8427.6. Samples: 743382. Policy #0 lag: (min: 0.0, avg: 0.6, max: 2.0)
|
278 |
+
[2023-03-03 15:25:04,990][90258] Avg episode reward: [(0, '22.414')]
|
279 |
+
[2023-03-03 15:25:04,993][90447] Saving new best policy, reward=22.414!
|
280 |
+
[2023-03-03 15:25:06,097][90460] Updated weights for policy 0, policy_version 750 (0.0006)
|
281 |
+
[2023-03-03 15:25:07,366][90460] Updated weights for policy 0, policy_version 760 (0.0006)
|
282 |
+
[2023-03-03 15:25:08,606][90460] Updated weights for policy 0, policy_version 770 (0.0007)
|
283 |
+
[2023-03-03 15:25:09,895][90460] Updated weights for policy 0, policy_version 780 (0.0006)
|
284 |
+
[2023-03-03 15:25:09,989][90258] Fps is (10 sec: 32768.2, 60 sec: 33450.7, 300 sec: 33587.2). Total num frames: 3194880. Throughput: 0: 8400.0. Samples: 792104. Policy #0 lag: (min: 0.0, avg: 0.6, max: 2.0)
|
285 |
+
[2023-03-03 15:25:09,990][90258] Avg episode reward: [(0, '20.125')]
|
286 |
+
[2023-03-03 15:25:11,149][90460] Updated weights for policy 0, policy_version 790 (0.0006)
|
287 |
+
[2023-03-03 15:25:12,405][90460] Updated weights for policy 0, policy_version 800 (0.0006)
|
288 |
+
[2023-03-03 15:25:13,689][90460] Updated weights for policy 0, policy_version 810 (0.0006)
|
289 |
+
[2023-03-03 15:25:14,965][90460] Updated weights for policy 0, policy_version 820 (0.0006)
|
290 |
+
[2023-03-03 15:25:14,989][90258] Fps is (10 sec: 32358.4, 60 sec: 33519.0, 300 sec: 33546.2). Total num frames: 3358720. Throughput: 0: 8377.4. Samples: 816758. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
291 |
+
[2023-03-03 15:25:14,990][90258] Avg episode reward: [(0, '22.716')]
|
292 |
+
[2023-03-03 15:25:14,993][90447] Saving new best policy, reward=22.716!
|
293 |
+
[2023-03-03 15:25:16,264][90460] Updated weights for policy 0, policy_version 830 (0.0006)
|
294 |
+
[2023-03-03 15:25:17,460][90460] Updated weights for policy 0, policy_version 840 (0.0006)
|
295 |
+
[2023-03-03 15:25:18,669][90460] Updated weights for policy 0, policy_version 850 (0.0006)
|
296 |
+
[2023-03-03 15:25:19,904][90460] Updated weights for policy 0, policy_version 860 (0.0006)
|
297 |
+
[2023-03-03 15:25:19,989][90258] Fps is (10 sec: 32767.8, 60 sec: 33382.4, 300 sec: 33509.2). Total num frames: 3522560. Throughput: 0: 8305.5. Samples: 865578. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
298 |
+
[2023-03-03 15:25:19,990][90258] Avg episode reward: [(0, '24.941')]
|
299 |
+
[2023-03-03 15:25:19,991][90447] Saving new best policy, reward=24.941!
|
300 |
+
[2023-03-03 15:25:21,126][90460] Updated weights for policy 0, policy_version 870 (0.0006)
|
301 |
+
[2023-03-03 15:25:22,349][90460] Updated weights for policy 0, policy_version 880 (0.0006)
|
302 |
+
[2023-03-03 15:25:23,577][90460] Updated weights for policy 0, policy_version 890 (0.0006)
|
303 |
+
[2023-03-03 15:25:24,845][90460] Updated weights for policy 0, policy_version 900 (0.0006)
|
304 |
+
[2023-03-03 15:25:24,989][90258] Fps is (10 sec: 33177.5, 60 sec: 33450.7, 300 sec: 33512.7). Total num frames: 3690496. Throughput: 0: 8308.0. Samples: 915594. Policy #0 lag: (min: 0.0, avg: 0.7, max: 2.0)
|
305 |
+
[2023-03-03 15:25:24,990][90258] Avg episode reward: [(0, '23.809')]
|
306 |
+
[2023-03-03 15:25:24,993][90447] Saving /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000901_3690496.pth...
|
307 |
+
[2023-03-03 15:25:26,107][90460] Updated weights for policy 0, policy_version 910 (0.0007)
|
308 |
+
[2023-03-03 15:25:27,363][90460] Updated weights for policy 0, policy_version 920 (0.0006)
|
309 |
+
[2023-03-03 15:25:28,556][90460] Updated weights for policy 0, policy_version 930 (0.0006)
|
310 |
+
[2023-03-03 15:25:29,810][90460] Updated weights for policy 0, policy_version 940 (0.0006)
|
311 |
+
[2023-03-03 15:25:29,989][90258] Fps is (10 sec: 33177.7, 60 sec: 33246.6, 300 sec: 33480.3). Total num frames: 3854336. Throughput: 0: 8300.2. Samples: 940134. Policy #0 lag: (min: 0.0, avg: 0.8, max: 2.0)
|
312 |
+
[2023-03-03 15:25:29,990][90258] Avg episode reward: [(0, '24.056')]
|
313 |
+
[2023-03-03 15:25:31,074][90460] Updated weights for policy 0, policy_version 950 (0.0006)
|
314 |
+
[2023-03-03 15:25:32,337][90460] Updated weights for policy 0, policy_version 960 (0.0006)
|
315 |
+
[2023-03-03 15:25:33,597][90460] Updated weights for policy 0, policy_version 970 (0.0006)
|
316 |
+
[2023-03-03 15:25:34,647][90447] Stopping Batcher_0...
|
317 |
+
[2023-03-03 15:25:34,648][90447] Loop batcher_evt_loop terminating...
|
318 |
+
[2023-03-03 15:25:34,648][90447] Saving /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
|
319 |
+
[2023-03-03 15:25:34,647][90258] Component Batcher_0 stopped!
|
320 |
+
[2023-03-03 15:25:34,655][90465] Stopping RolloutWorker_w4...
|
321 |
+
[2023-03-03 15:25:34,656][90462] Stopping RolloutWorker_w0...
|
322 |
+
[2023-03-03 15:25:34,656][90465] Loop rollout_proc4_evt_loop terminating...
|
323 |
+
[2023-03-03 15:25:34,656][90462] Loop rollout_proc0_evt_loop terminating...
|
324 |
+
[2023-03-03 15:25:34,656][90464] Stopping RolloutWorker_w2...
|
325 |
+
[2023-03-03 15:25:34,655][90258] Component RolloutWorker_w4 stopped!
|
326 |
+
[2023-03-03 15:25:34,656][90463] Stopping RolloutWorker_w3...
|
327 |
+
[2023-03-03 15:25:34,656][90463] Loop rollout_proc3_evt_loop terminating...
|
328 |
+
[2023-03-03 15:25:34,656][90464] Loop rollout_proc2_evt_loop terminating...
|
329 |
+
[2023-03-03 15:25:34,656][90460] Weights refcount: 2 0
|
330 |
+
[2023-03-03 15:25:34,656][90258] Component RolloutWorker_w0 stopped!
|
331 |
+
[2023-03-03 15:25:34,657][90461] Stopping RolloutWorker_w1...
|
332 |
+
[2023-03-03 15:25:34,657][90461] Loop rollout_proc1_evt_loop terminating...
|
333 |
+
[2023-03-03 15:25:34,657][90258] Component RolloutWorker_w2 stopped!
|
334 |
+
[2023-03-03 15:25:34,658][90258] Component RolloutWorker_w3 stopped!
|
335 |
+
[2023-03-03 15:25:34,658][90482] Stopping RolloutWorker_w7...
|
336 |
+
[2023-03-03 15:25:34,658][90258] Component RolloutWorker_w1 stopped!
|
337 |
+
[2023-03-03 15:25:34,659][90482] Loop rollout_proc7_evt_loop terminating...
|
338 |
+
[2023-03-03 15:25:34,659][90466] Stopping RolloutWorker_w5...
|
339 |
+
[2023-03-03 15:25:34,659][90466] Loop rollout_proc5_evt_loop terminating...
|
340 |
+
[2023-03-03 15:25:34,659][90258] Component RolloutWorker_w7 stopped!
|
341 |
+
[2023-03-03 15:25:34,659][90258] Component RolloutWorker_w5 stopped!
|
342 |
+
[2023-03-03 15:25:34,660][90460] Stopping InferenceWorker_p0-w0...
|
343 |
+
[2023-03-03 15:25:34,660][90460] Loop inference_proc0-0_evt_loop terminating...
|
344 |
+
[2023-03-03 15:25:34,660][90258] Component InferenceWorker_p0-w0 stopped!
|
345 |
+
[2023-03-03 15:25:34,676][90483] Stopping RolloutWorker_w6...
|
346 |
+
[2023-03-03 15:25:34,677][90483] Loop rollout_proc6_evt_loop terminating...
|
347 |
+
[2023-03-03 15:25:34,677][90258] Component RolloutWorker_w6 stopped!
|
348 |
+
[2023-03-03 15:25:34,714][90447] Saving new best policy, reward=25.653!
|
349 |
+
[2023-03-03 15:25:34,792][90447] Saving /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
|
350 |
+
[2023-03-03 15:25:34,874][90447] Stopping LearnerWorker_p0...
|
351 |
+
[2023-03-03 15:25:34,874][90447] Loop learner_proc0_evt_loop terminating...
|
352 |
+
[2023-03-03 15:25:34,874][90258] Component LearnerWorker_p0 stopped!
|
353 |
+
[2023-03-03 15:25:34,875][90258] Waiting for process learner_proc0 to stop...
|
354 |
+
[2023-03-03 15:25:35,212][90258] Waiting for process inference_proc0-0 to join...
|
355 |
+
[2023-03-03 15:25:35,212][90258] Waiting for process rollout_proc0 to join...
|
356 |
+
[2023-03-03 15:25:35,213][90258] Waiting for process rollout_proc1 to join...
|
357 |
+
[2023-03-03 15:25:35,213][90258] Waiting for process rollout_proc2 to join...
|
358 |
+
[2023-03-03 15:25:35,214][90258] Waiting for process rollout_proc3 to join...
|
359 |
+
[2023-03-03 15:25:35,214][90258] Waiting for process rollout_proc4 to join...
|
360 |
+
[2023-03-03 15:25:35,215][90258] Waiting for process rollout_proc5 to join...
|
361 |
+
[2023-03-03 15:25:35,215][90258] Waiting for process rollout_proc6 to join...
|
362 |
+
[2023-03-03 15:25:35,216][90258] Waiting for process rollout_proc7 to join...
|
363 |
+
[2023-03-03 15:25:35,216][90258] Batcher 0 profile tree view:
|
364 |
+
batching: 8.3033, releasing_batches: 0.0178
|
365 |
+
[2023-03-03 15:25:35,217][90258] InferenceWorker_p0-w0 profile tree view:
|
366 |
+
wait_policy: 0.0000
|
367 |
+
wait_policy_total: 2.5839
|
368 |
+
update_model: 1.6943
|
369 |
+
weight_update: 0.0006
|
370 |
+
one_step: 0.0017
|
371 |
+
handle_policy_step: 110.3776
|
372 |
+
deserialize: 4.9021, stack: 0.5500, obs_to_device_normalize: 30.0009, forward: 42.0827, send_messages: 7.4467
|
373 |
+
prepare_outputs: 20.7199
|
374 |
+
to_cpu: 15.0518
|
375 |
+
[2023-03-03 15:25:35,217][90258] Learner 0 profile tree view:
|
376 |
+
misc: 0.0042, prepare_batch: 7.6612
|
377 |
+
train: 21.5018
|
378 |
+
epoch_init: 0.0041, minibatch_init: 0.0047, losses_postprocess: 0.2515, kl_divergence: 0.1742, after_optimizer: 8.2064
|
379 |
+
calculate_losses: 8.3142
|
380 |
+
losses_init: 0.0024, forward_head: 0.5648, bptt_initial: 6.0024, tail: 0.3384, advantages_returns: 0.1002, losses: 0.6245
|
381 |
+
bptt: 0.5717
|
382 |
+
bptt_forward_core: 0.5459
|
383 |
+
update: 4.2840
|
384 |
+
clip: 0.6168
|
385 |
+
[2023-03-03 15:25:35,217][90258] RolloutWorker_w0 profile tree view:
|
386 |
+
wait_for_trajectories: 0.0913, enqueue_policy_requests: 4.6418, env_step: 61.2028, overhead: 5.1253, complete_rollouts: 0.1457
|
387 |
+
save_policy_outputs: 5.3083
|
388 |
+
split_output_tensors: 2.6432
|
389 |
+
[2023-03-03 15:25:35,217][90258] RolloutWorker_w7 profile tree view:
|
390 |
+
wait_for_trajectories: 0.0903, enqueue_policy_requests: 4.6051, env_step: 63.7948, overhead: 5.1927, complete_rollouts: 0.1508
|
391 |
+
save_policy_outputs: 5.3090
|
392 |
+
split_output_tensors: 2.6476
|
393 |
+
[2023-03-03 15:25:35,218][90258] Loop Runner_EvtLoop terminating...
|
394 |
+
[2023-03-03 15:25:35,218][90258] Runner profile tree view:
|
395 |
+
main_loop: 129.0154
|
396 |
+
[2023-03-03 15:25:35,218][90258] Collected {0: 4005888}, FPS: 31049.7
|
397 |
+
[2023-03-03 15:25:41,834][90258] Loading existing experiment configuration from /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/config.json
|
398 |
+
[2023-03-03 15:25:41,834][90258] Overriding arg 'num_workers' with value 1 passed from command line
|
399 |
+
[2023-03-03 15:25:41,835][90258] Adding new argument 'no_render'=True that is not in the saved config file!
|
400 |
+
[2023-03-03 15:25:41,835][90258] Adding new argument 'save_video'=True that is not in the saved config file!
|
401 |
+
[2023-03-03 15:25:41,835][90258] Adding new argument 'video_frames'=1000000000.0 that is not in the saved config file!
|
402 |
+
[2023-03-03 15:25:41,836][90258] Adding new argument 'video_name'=None that is not in the saved config file!
|
403 |
+
[2023-03-03 15:25:41,836][90258] Adding new argument 'max_num_frames'=1000000000.0 that is not in the saved config file!
|
404 |
+
[2023-03-03 15:25:41,836][90258] Adding new argument 'max_num_episodes'=10 that is not in the saved config file!
|
405 |
+
[2023-03-03 15:25:41,837][90258] Adding new argument 'push_to_hub'=False that is not in the saved config file!
|
406 |
+
[2023-03-03 15:25:41,837][90258] Adding new argument 'hf_repository'=None that is not in the saved config file!
|
407 |
+
[2023-03-03 15:25:41,837][90258] Adding new argument 'policy_index'=0 that is not in the saved config file!
|
408 |
+
[2023-03-03 15:25:41,838][90258] Adding new argument 'eval_deterministic'=False that is not in the saved config file!
|
409 |
+
[2023-03-03 15:25:41,838][90258] Adding new argument 'train_script'=None that is not in the saved config file!
|
410 |
+
[2023-03-03 15:25:41,838][90258] Adding new argument 'enjoy_script'=None that is not in the saved config file!
|
411 |
+
[2023-03-03 15:25:41,838][90258] Using frameskip 1 and render_action_repeat=4 for evaluation
|
412 |
+
[2023-03-03 15:25:41,848][90258] Doom resolution: 160x120, resize resolution: (128, 72)
|
413 |
+
[2023-03-03 15:25:41,849][90258] RunningMeanStd input shape: (3, 72, 128)
|
414 |
+
[2023-03-03 15:25:41,850][90258] RunningMeanStd input shape: (1,)
|
415 |
+
[2023-03-03 15:25:41,858][90258] ConvEncoder: input_channels=3
|
416 |
+
[2023-03-03 15:25:41,931][90258] Conv encoder output size: 512
|
417 |
+
[2023-03-03 15:25:41,932][90258] Policy head output size: 512
|
418 |
+
[2023-03-03 15:25:44,781][90258] Loading state from checkpoint /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
|
419 |
+
[2023-03-03 15:25:45,080][90258] Num frames 100...
|
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+
[2023-03-03 15:25:45,129][90258] Num frames 200...
|
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+
[2023-03-03 15:25:45,181][90258] Num frames 300...
|
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+
[2023-03-03 15:25:45,247][90258] Num frames 400...
|
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+
[2023-03-03 15:25:45,300][90258] Num frames 500...
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+
[2023-03-03 15:25:45,351][90258] Num frames 600...
|
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+
[2023-03-03 15:25:45,401][90258] Num frames 700...
|
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+
[2023-03-03 15:25:45,452][90258] Num frames 800...
|
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+
[2023-03-03 15:25:45,504][90258] Num frames 900...
|
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+
[2023-03-03 15:25:45,554][90258] Num frames 1000...
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+
[2023-03-03 15:25:45,603][90258] Num frames 1100...
|
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+
[2023-03-03 15:25:45,654][90258] Num frames 1200...
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+
[2023-03-03 15:25:45,704][90258] Num frames 1300...
|
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+
[2023-03-03 15:25:45,756][90258] Num frames 1400...
|
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+
[2023-03-03 15:25:45,830][90258] Avg episode rewards: #0: 36.420, true rewards: #0: 14.420
|
434 |
+
[2023-03-03 15:25:45,831][90258] Avg episode reward: 36.420, avg true_objective: 14.420
|
435 |
+
[2023-03-03 15:25:45,865][90258] Num frames 1500...
|
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+
[2023-03-03 15:25:45,921][90258] Num frames 1600...
|
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+
[2023-03-03 15:25:45,974][90258] Num frames 1700...
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+
[2023-03-03 15:25:46,027][90258] Num frames 1800...
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+
[2023-03-03 15:25:46,079][90258] Num frames 1900...
|
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+
[2023-03-03 15:25:46,134][90258] Avg episode rewards: #0: 23.025, true rewards: #0: 9.525
|
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+
[2023-03-03 15:25:46,135][90258] Avg episode reward: 23.025, avg true_objective: 9.525
|
442 |
+
[2023-03-03 15:25:46,184][90258] Num frames 2000...
|
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+
[2023-03-03 15:25:46,235][90258] Num frames 2100...
|
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+
[2023-03-03 15:25:46,285][90258] Num frames 2200...
|
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+
[2023-03-03 15:25:46,334][90258] Num frames 2300...
|
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+
[2023-03-03 15:25:46,414][90258] Avg episode rewards: #0: 18.177, true rewards: #0: 7.843
|
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+
[2023-03-03 15:25:46,416][90258] Avg episode reward: 18.177, avg true_objective: 7.843
|
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+
[2023-03-03 15:25:46,458][90258] Num frames 2400...
|
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+
[2023-03-03 15:25:46,508][90258] Num frames 2500...
|
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+
[2023-03-03 15:25:46,558][90258] Num frames 2600...
|
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+
[2023-03-03 15:25:46,608][90258] Num frames 2700...
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+
[2023-03-03 15:25:46,658][90258] Num frames 2800...
|
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+
[2023-03-03 15:25:46,709][90258] Num frames 2900...
|
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+
[2023-03-03 15:25:46,776][90258] Avg episode rewards: #0: 16.073, true rewards: #0: 7.322
|
455 |
+
[2023-03-03 15:25:46,778][90258] Avg episode reward: 16.073, avg true_objective: 7.322
|
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+
[2023-03-03 15:25:46,835][90258] Num frames 3000...
|
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+
[2023-03-03 15:25:46,898][90258] Num frames 3100...
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[2023-03-03 15:25:46,961][90258] Num frames 3200...
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[2023-03-03 15:25:47,589][90258] Avg episode rewards: #0: 20.546, true rewards: #0: 8.546
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[2023-03-03 15:25:47,591][90258] Avg episode reward: 20.546, avg true_objective: 8.546
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[2023-03-03 15:25:47,985][90258] Avg episode rewards: #0: 19.128, true rewards: #0: 8.128
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[2023-03-03 15:25:47,986][90258] Avg episode reward: 19.128, avg true_objective: 8.128
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[2023-03-03 15:25:48,338][90258] Avg episode rewards: #0: 17.926, true rewards: #0: 7.783
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[2023-03-03 15:25:48,340][90258] Avg episode reward: 17.926, avg true_objective: 7.783
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[2023-03-03 15:25:49,142][90258] Avg episode rewards: #0: 19.895, true rewards: #0: 8.520
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[2023-03-03 15:25:49,144][90258] Avg episode reward: 19.895, avg true_objective: 8.520
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[2023-03-03 15:25:49,950][90258] Avg episode rewards: #0: 21.102, true rewards: #0: 9.102
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[2023-03-03 15:25:49,951][90258] Avg episode reward: 21.102, avg true_objective: 9.102
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[2023-03-03 15:25:50,966][90258] Num frames 10000...
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[2023-03-03 15:25:51,041][90258] Avg episode rewards: #0: 23.542, true rewards: #0: 10.042
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[2023-03-03 15:25:51,042][90258] Avg episode reward: 23.542, avg true_objective: 10.042
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[2023-03-03 15:26:04,458][90258] Replay video saved to /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/replay.mp4!
|
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[2023-03-03 15:27:26,535][90258] Loading existing experiment configuration from /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/config.json
|
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[2023-03-03 15:27:26,535][90258] Overriding arg 'num_workers' with value 1 passed from command line
|
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[2023-03-03 15:27:26,536][90258] Adding new argument 'no_render'=True that is not in the saved config file!
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[2023-03-03 15:27:26,536][90258] Adding new argument 'save_video'=True that is not in the saved config file!
|
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[2023-03-03 15:27:26,537][90258] Adding new argument 'video_frames'=1000000000.0 that is not in the saved config file!
|
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[2023-03-03 15:27:26,537][90258] Adding new argument 'video_name'=None that is not in the saved config file!
|
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[2023-03-03 15:27:26,537][90258] Adding new argument 'max_num_frames'=100000 that is not in the saved config file!
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[2023-03-03 15:27:26,538][90258] Adding new argument 'max_num_episodes'=10 that is not in the saved config file!
|
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[2023-03-03 15:27:26,538][90258] Adding new argument 'push_to_hub'=True that is not in the saved config file!
|
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[2023-03-03 15:27:26,538][90258] Adding new argument 'hf_repository'='CloXD/rl_course_vizdoom_health_gathering_supreme' that is not in the saved config file!
|
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+
[2023-03-03 15:27:26,539][90258] Adding new argument 'policy_index'=0 that is not in the saved config file!
|
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[2023-03-03 15:27:26,539][90258] Adding new argument 'eval_deterministic'=False that is not in the saved config file!
|
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[2023-03-03 15:27:26,540][90258] Adding new argument 'train_script'=None that is not in the saved config file!
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[2023-03-03 15:27:26,540][90258] Adding new argument 'enjoy_script'=None that is not in the saved config file!
|
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[2023-03-03 15:27:26,540][90258] Using frameskip 1 and render_action_repeat=4 for evaluation
|
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[2023-03-03 15:27:26,549][90258] RunningMeanStd input shape: (3, 72, 128)
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[2023-03-03 15:27:26,550][90258] RunningMeanStd input shape: (1,)
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[2023-03-03 15:27:26,557][90258] ConvEncoder: input_channels=3
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[2023-03-03 15:27:26,578][90258] Conv encoder output size: 512
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[2023-03-03 15:27:26,579][90258] Policy head output size: 512
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[2023-03-03 15:27:26,601][90258] Loading state from checkpoint /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
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[2023-03-03 15:27:27,305][90258] Avg episode rewards: #0: 17.940, true rewards: #0: 7.940
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[2023-03-03 15:27:27,305][90258] Avg episode reward: 17.940, avg true_objective: 7.940
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[2023-03-03 15:27:27,993][90258] Avg episode rewards: #0: 21.550, true rewards: #0: 10.050
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[2023-03-03 15:27:27,994][90258] Avg episode reward: 21.550, avg true_objective: 10.050
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[2023-03-03 15:27:28,508][90258] Avg episode rewards: #0: 20.580, true rewards: #0: 9.580
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[2023-03-03 15:27:28,510][90258] Avg episode reward: 20.580, avg true_objective: 9.580
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[2023-03-03 15:27:29,697][90258] Avg episode rewards: #0: 30.935, true rewards: #0: 12.435
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[2023-03-03 15:27:29,698][90258] Avg episode reward: 30.935, avg true_objective: 12.435
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[2023-03-03 15:27:30,163][90258] Avg episode rewards: #0: 28.548, true rewards: #0: 11.548
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[2023-03-03 15:27:30,165][90258] Avg episode reward: 28.548, avg true_objective: 11.548
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[2023-03-03 15:27:30,633][90258] Avg episode rewards: #0: 26.172, true rewards: #0: 10.838
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[2023-03-03 15:27:30,634][90258] Avg episode reward: 26.172, avg true_objective: 10.838
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[2023-03-03 15:27:31,071][90258] Avg episode rewards: #0: 24.770, true rewards: #0: 10.341
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[2023-03-03 15:27:31,072][90258] Avg episode reward: 24.770, avg true_objective: 10.341
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[2023-03-03 15:27:31,614][90258] Avg episode rewards: #0: 24.124, true rewards: #0: 10.249
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[2023-03-03 15:27:31,616][90258] Avg episode reward: 24.124, avg true_objective: 10.249
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[2023-03-03 15:27:32,764][90258] Avg episode rewards: #0: 27.665, true rewards: #0: 11.443
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[2023-03-03 15:27:32,765][90258] Avg episode reward: 27.665, avg true_objective: 11.443
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[2023-03-03 15:27:33,238][90258] Avg episode rewards: #0: 26.567, true rewards: #0: 11.067
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[2023-03-03 15:27:33,239][90258] Avg episode reward: 26.567, avg true_objective: 11.067
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[2023-03-03 15:27:47,330][90258] Replay video saved to /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/replay.mp4!
|
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[2023-03-03 15:29:31,288][90258] Loading existing experiment configuration from /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/config.json
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[2023-03-03 15:29:31,289][90258] Overriding arg 'num_workers' with value 1 passed from command line
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[2023-03-03 15:29:31,289][90258] Adding new argument 'no_render'=True that is not in the saved config file!
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[2023-03-03 15:29:31,290][90258] Adding new argument 'save_video'=True that is not in the saved config file!
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[2023-03-03 15:29:31,290][90258] Adding new argument 'video_frames'=1000000000.0 that is not in the saved config file!
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[2023-03-03 15:29:31,290][90258] Adding new argument 'video_name'=None that is not in the saved config file!
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[2023-03-03 15:29:31,291][90258] Adding new argument 'max_num_frames'=100000 that is not in the saved config file!
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[2023-03-03 15:29:31,291][90258] Adding new argument 'max_num_episodes'=10 that is not in the saved config file!
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[2023-03-03 15:29:31,291][90258] Adding new argument 'push_to_hub'=True that is not in the saved config file!
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[2023-03-03 15:29:31,292][90258] Adding new argument 'hf_repository'='CloXD/rl_course_vizdoom_health_gathering_supreme' that is not in the saved config file!
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[2023-03-03 15:29:31,292][90258] Adding new argument 'policy_index'=0 that is not in the saved config file!
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[2023-03-03 15:29:31,292][90258] Adding new argument 'eval_deterministic'=False that is not in the saved config file!
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[2023-03-03 15:29:31,292][90258] Adding new argument 'train_script'=None that is not in the saved config file!
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[2023-03-03 15:29:31,292][90258] Adding new argument 'enjoy_script'=None that is not in the saved config file!
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[2023-03-03 15:29:31,293][90258] Using frameskip 1 and render_action_repeat=4 for evaluation
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[2023-03-03 15:29:31,302][90258] RunningMeanStd input shape: (3, 72, 128)
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[2023-03-03 15:29:31,303][90258] RunningMeanStd input shape: (1,)
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[2023-03-03 15:29:31,309][90258] ConvEncoder: input_channels=3
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[2023-03-03 15:29:31,332][90258] Conv encoder output size: 512
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[2023-03-03 15:29:31,332][90258] Policy head output size: 512
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[2023-03-03 15:29:31,367][90258] Loading state from checkpoint /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
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[2023-03-03 15:29:32,616][90258] Avg episode rewards: #0: 45.240, true rewards: #0: 18.240
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[2023-03-03 15:29:32,617][90258] Avg episode reward: 45.240, avg true_objective: 18.240
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[2023-03-03 15:29:33,488][90258] Avg episode rewards: #0: 42.695, true rewards: #0: 16.695
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[2023-03-03 15:29:33,489][90258] Avg episode reward: 42.695, avg true_objective: 16.695
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[2023-03-03 15:29:34,065][90258] Avg episode rewards: #0: 36.543, true rewards: #0: 14.543
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[2023-03-03 15:29:34,067][90258] Avg episode reward: 36.543, avg true_objective: 14.543
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[2023-03-03 15:29:35,194][90258] Avg episode rewards: #0: 41.157, true rewards: #0: 16.158
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[2023-03-03 15:29:35,196][90258] Avg episode reward: 41.157, avg true_objective: 16.158
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[2023-03-03 15:29:35,664][90258] Avg episode rewards: #0: 36.126, true rewards: #0: 14.526
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[2023-03-03 15:29:35,665][90258] Avg episode reward: 36.126, avg true_objective: 14.526
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[2023-03-03 15:29:36,048][90258] Num frames 8000...
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[2023-03-03 15:29:36,116][90258] Avg episode rewards: #0: 32.551, true rewards: #0: 13.385
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[2023-03-03 15:29:36,117][90258] Avg episode reward: 32.551, avg true_objective: 13.385
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[2023-03-03 15:29:37,002][90258] Num frames 9600...
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[2023-03-03 15:29:37,093][90258] Avg episode rewards: #0: 33.958, true rewards: #0: 13.816
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[2023-03-03 15:29:37,094][90258] Avg episode reward: 33.958, avg true_objective: 13.816
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[2023-03-03 15:29:37,590][90258] Avg episode rewards: #0: 32.004, true rewards: #0: 13.129
|
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[2023-03-03 15:29:37,592][90258] Avg episode reward: 32.004, avg true_objective: 13.129
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[2023-03-03 15:29:38,097][90258] Avg episode rewards: #0: 30.150, true rewards: #0: 12.594
|
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[2023-03-03 15:29:38,099][90258] Avg episode reward: 30.150, avg true_objective: 12.594
|
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[2023-03-03 15:29:38,625][90258] Avg episode rewards: #0: 28.939, true rewards: #0: 12.139
|
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[2023-03-03 15:29:38,626][90258] Avg episode reward: 28.939, avg true_objective: 12.139
|
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[2023-03-03 15:29:53,891][90258] Replay video saved to /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/replay.mp4!
|
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+
[2023-03-03 15:32:20,498][90258] Loading existing experiment configuration from /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/config.json
|
856 |
+
[2023-03-03 15:32:20,498][90258] Overriding arg 'num_workers' with value 1 passed from command line
|
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+
[2023-03-03 15:32:20,499][90258] Adding new argument 'no_render'=True that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,499][90258] Adding new argument 'save_video'=True that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,500][90258] Adding new argument 'video_frames'=1000000000.0 that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,500][90258] Adding new argument 'video_name'=None that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,500][90258] Adding new argument 'max_num_frames'=100000 that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,501][90258] Adding new argument 'max_num_episodes'=10 that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,501][90258] Adding new argument 'push_to_hub'=True that is not in the saved config file!
|
864 |
+
[2023-03-03 15:32:20,501][90258] Adding new argument 'hf_repository'='CloXD/rl_course_vizdoom_health_gathering_supreme' that is not in the saved config file!
|
865 |
+
[2023-03-03 15:32:20,502][90258] Adding new argument 'policy_index'=0 that is not in the saved config file!
|
866 |
+
[2023-03-03 15:32:20,502][90258] Adding new argument 'eval_deterministic'=False that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,502][90258] Adding new argument 'train_script'=None that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,503][90258] Adding new argument 'enjoy_script'=None that is not in the saved config file!
|
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+
[2023-03-03 15:32:20,503][90258] Using frameskip 1 and render_action_repeat=4 for evaluation
|
870 |
+
[2023-03-03 15:32:20,513][90258] RunningMeanStd input shape: (3, 72, 128)
|
871 |
+
[2023-03-03 15:32:20,513][90258] RunningMeanStd input shape: (1,)
|
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+
[2023-03-03 15:32:20,521][90258] ConvEncoder: input_channels=3
|
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[2023-03-03 15:32:20,558][90258] Conv encoder output size: 512
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[2023-03-03 15:32:20,579][90258] Loading state from checkpoint /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/checkpoint_p0/checkpoint_000000978_4005888.pth...
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[2023-03-03 15:32:40,153][90258] Replay video saved to /home/lorencl/git/ReinforcementLearning/Lesson8/train_dir/default_experiment/replay.mp4!
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