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+ contact_model_name: local_multitask_outhd64all_home_crop_h144w144d48_ctxt_seed_183386_epoch_9
53
+ contact_estimation_model_ckpt_path: ~/fish_leon/contact_estimation/artifacts/175604_2/checkpoints/epoch=09-val_loss=0.00.ckpt
54
+ num_eval: 5
55
+ debug_timestamps: false
56
+ open_loop: false
57
+ action_trajectories: true
58
+ stop_after_action: false
59
+ interpolation_frequency: 25
60
+ policy_frequency: 5
61
+ wait_for_new_camera_frames: true
62
+ random_start: false
63
+ eval_starts: ${root_dir}/FISH/eval_starts/${suite.name}_${obs_type}/${task_name}
64
+ train_demo_idxs_list_or_num: null
65
+ num_valid_demos: null
66
+ val_num_groups: 3
67
+ name_of_expert_demo: 112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act
68
+ expert_dataset_dirpath: ${root_dir}/FISH/expert_demos/${suite.name}/${task_name}/${name_of_expert_demo}
69
+ expert_dataset: ${expert_dataset_dirpath}/demos.zarr
70
+ action_key: ${oc.if_else:${action_trajectories}, 'action_trajectory_${interpolation_frequency}hz',
71
+ 'action'}
72
+ semantic_demo_grouping_name: semantic_demo_grouping.yaml
73
+ semantic_demo_grouping: ${expert_dataset_dirpath}/${semantic_demo_grouping_name}
74
+ expert_dataset_config: ${expert_dataset_dirpath}/demo_config.yaml
75
+ bc_regularize: false
76
+ bc_weight_type: qfilter
77
+ load_checkpoint: ${agent.load_checkpoint}
78
+ wandb_run_id: '3465_0'
79
+ true_action_history: false
80
+ wandb_notes: null
81
+ checkpoint_epoch: 7500
82
+ load_residual_weight: false
83
+ checkpoint_root_dir: /home/${oc.env:USER}/fish_leon/FISH
84
+ checkpoint_weight_dir: ${checkpoint_root_dir}/exp_local/${suite.name}_${obs_type}/${task_name}/${wandb_run_id}
85
+ residual_weight: ${root_dir}/FISH/weights/${suite.name}_${obs_type}/${task_name}/weight.pt
86
+ experiment_dir: ./exp_local/${suite.name}_${obs_type}/${task_name}/${wandb_run_id}
87
+ final_experiment_dir: ${experiment_dir}/${oc.generate_run_id:}
88
+ agent:
89
+ _target_: agent.diffusion_policy.DiffusionPolicyAgent
90
+ name: diffusion_policy
91
+ load_checkpoint: ${eval}
92
+ device: ${device}
93
+ n_obs_steps: ${.config.policy_cfg.n_obs_steps}
94
+ suite_name: ${suite.name}
95
+ obs_type: ${obs_type}
96
+ enable_arm: ${eval}
97
+ enable_camera: ${eval}
98
+ use_tb: ${use_tb}
99
+ desired_image_shape:
100
+ - 13
101
+ - 180
102
+ - 240
103
+ orig_cam_shape:
104
+ - 3
105
+ - 240
106
+ - 320
107
+ config:
108
+ _target_: agent.diffusion_policy.DiffusionPolicyAgentConfig
109
+ compile: false
110
+ device: ${device}
111
+ cam_resize_shape: ${agent.desired_image_shape}
112
+ orig_cam_shape: ${agent.orig_cam_shape}
113
+ policy_frequency: ${policy_frequency}
114
+ interpolation_frequency: ${interpolation_frequency}
115
+ policy_cfg:
116
+ _target_: lerobot.common.policies.diffusion.configuration_diffusion.DiffusionConfig
117
+ n_obs_steps: 1
118
+ horizon: 36
119
+ n_action_steps: ${agent.config.policy_cfg.horizon}
120
+ input_shapes:
121
+ observation.image: ${agent.config.cam_resize_shape}
122
+ context_observation.image: ${agent.config.cam_resize_shape}
123
+ observation.state:
124
+ - 8
125
+ observation.action_history:
126
+ - 7
127
+ output_shapes:
128
+ action:
129
+ - 7
130
+ input_normalization_modes:
131
+ observation.image: mean_std
132
+ observation.state: min_max
133
+ observation.action_history: min_max
134
+ output_normalization_modes:
135
+ action: min_max
136
+ vision_backbone: resnet18
137
+ crop_distractors_tlhw: null
138
+ pretrained_backbone_weights: null
139
+ transforms:
140
+ - _target_: torchaug.transforms.RandomAffine
141
+ degrees:
142
+ - -5
143
+ - 5
144
+ translate:
145
+ - 0.05
146
+ - 0.05
147
+ batch_transform: true
148
+ num_chunks: -1
149
+ batch_inplace: true
150
+ - _target_: torchaug.transforms.RandomColorJitter
151
+ brightness: 0.3
152
+ contrast: 0.4
153
+ saturation: 0.5
154
+ hue: 0.08
155
+ batch_transform: true
156
+ num_chunks: -1
157
+ batch_inplace: true
158
+ use_group_norm: true
159
+ spatial_softmax_num_keypoints: 32
160
+ action_history_encoder_config:
161
+ _target_: lerobot.common.policies.diffusion.configuration_diffusion.Unet1dEncoderConfig
162
+ in_channels: 7
163
+ out_channels: 32
164
+ history_length: ${agent.config.policy_cfg.n_action_steps}
165
+ kernel_size: ${agent.config.policy_cfg.kernel_size}
166
+ downsample_kernel_size: 3
167
+ downsample_stride: 2
168
+ downsample_padding: 1
169
+ down_dims:
170
+ - 256
171
+ - 512
172
+ - 1024
173
+ kernel_size: 5
174
+ n_groups: 8
175
+ diffusion_step_embed_dim: 128
176
+ use_film_scale_modulation: true
177
+ noise_scheduler_type: DDIM
178
+ beta_schedule: squaredcos_cap_v2
179
+ beta_start: 0.0001
180
+ beta_end: 0.02
181
+ prediction_type: epsilon
182
+ clip_sample: true
183
+ clip_sample_range: 1.0
184
+ num_train_timesteps: 50
185
+ num_inference_steps: 10
186
+ do_mask_loss_for_padding: false
187
+ train_cfg:
188
+ _target_: utils.TrainConfig
189
+ lr: 0.0001
190
+ lr_scheduler: cosine
191
+ lr_warmup_steps: 500
192
+ adam_betas:
193
+ - 0.95
194
+ - 0.999
195
+ adam_eps: 1.0e-08
196
+ adam_weight_decay: 1.0e-06
197
+ grad_clip_norm: 10
198
+ offline_steps: ${num_train_frames_diffusion}
199
+ use_amp: true
200
+ observation_cfg:
201
+ _target_: agent.encoder.VisualFeatureSet
202
+ use_depth: ${use_depth}
203
+ use_color: ${use_color}
204
+ mask_input_dict:
205
+ _target_: agent.encoder.MaskInputDict
206
+ enable: ${use_masks}
207
+ representation: ${mask_representation}
208
+ mask_list: ${mask_list}
209
+ crop_input_config:
210
+ _target_: agent.encoder.CropInputConfig
211
+ color_crop_type: ${color_crop_type}
212
+ depth_crop_type: ${depth_crop_type}
213
+ segmask_crop_type: ${segmask_crop_type}
214
+ crop_hw: ${crop_hw}
215
+ crop_down_offset: ${crop_down_offset}
216
+ add_crop_binary_mask: ${add_crop_binary_mask}
217
+ add_coord_conv_map: ${add_coord_conv_map}
218
+ context_input_config:
219
+ _target_: agent.encoder.ContextInputConfig
220
+ use_color: ${use_context_color}
221
+ use_depth: ${use_context_depth}
222
+ mask_input_dict:
223
+ _target_: agent.encoder.MaskInputDict
224
+ enable: ${use_context_segmask}
225
+ representation: ${mask_representation}
226
+ mask_list: ${mask_list}
227
+ crop_input_config:
228
+ _target_: agent.encoder.CropInputConfig
229
+ color_crop_type: ${context_color_crop_type}
230
+ depth_crop_type: ${context_depth_crop_type}
231
+ segmask_crop_type: ${context_segmask_crop_type}
232
+ crop_hw: ${crop_hw}
233
+ crop_down_offset: ${crop_down_offset}
234
+ add_crop_binary_mask: ${context_add_crop_binary_mask}
235
+ add_coord_conv_map: ${context_add_coord_conv_map}
236
+ mask_soft_approx_scheduler_config:
237
+ _target_: agent.encoder.MaskSoftApproxSchedulerConfig
238
+ num_steps: 40000
239
+ initial_value: 10.0
240
+ final_value: 1000.0
241
+ interpolation_scheme: constant
242
+ use_contact_map: ${use_contact_map}
243
+ use_sdf_maps: ${use_sdf_maps}
244
+ use_normals_maps: ${use_normals_maps}
245
+ which_objects: ${which_objects}
246
+ grasped_dtc_max_value: ${grasped_dtc_max_value}
247
+ env_dtc_max_value: ${env_dtc_max_value}
248
+ grasped_normals_mask_max_dtc_value: ${grasped_normals_mask_max_dtc_value}
249
+ env_normals_mask_max_dtc_value: ${env_normals_mask_max_dtc_value}
250
+ clamp_dtc: ${clamp_dtc}
251
+ max_contact_prob: ${max_contact_prob}
252
+ mask_normals_within_sdf: ${mask_normals_within_sdf}
253
+ dtc_adaptive_normalization: ${dtc_adaptive_normalization}
254
+ adaptive_normals_mask: ${adaptive_normals_mask}
255
+ max_depth: ${max_depth}
256
+ image_shape: ${agent.desired_image_shape}
257
+ learnable_contact_preprocess_params: ${learnable_contact_preprocess_params}
258
+ learning_rate: ${agent.config.train_cfg.lr}
259
+ weight_decay: 0.0
260
+ contact_model_name: ${contact_model_name}
261
+ zero_centered: false
262
+ crop_distractors_tlhw: ${agent.config.policy_cfg.crop_distractors_tlhw}
263
+ suite:
264
+ suite: frankagym
265
+ name: frankagym
266
+ frame_stack: ${agent.n_obs_steps}
267
+ action_repeat: 1
268
+ discount: 0.99
269
+ hidden_dim: 1024
270
+ num_train_frames: 2010
271
+ num_seed_frames: 260
272
+ num_train_epochs: 5000
273
+ validate_every_epochs: 100
274
+ validate_diffusion_on_action_loss_every_epochs: 500
275
+ train_eval_diffusion_on_action_loss_every_epochs: 500
276
+ check_topk_every_epochs: 10
277
+ save_snapshot_every_epochs: 5000
278
+ eval_every_frames: 2000
279
+ num_eval_episodes: 5
280
+ save_snapshot: true
281
+ wait_for_user_to_start_episode: true
282
+ task_make_fn:
283
+ _target_: suite.frankagym.make
284
+ name: ${task_name}
285
+ height: 240
286
+ width: 320
287
+ frame_stack: ${suite.frame_stack}
288
+ action_repeat: ${suite.action_repeat}
289
+ seed: ${seed}
290
+ enable_arm: ${agent.enable_arm}
291
+ enable_gripper: ${enable_gripper}
292
+ start_with_gripper_open: ${start_with_gripper_open}
293
+ enable_camera: ${agent.enable_camera}
294
+ path_to_depth_extrinsics: ${path_to_depth_extrinsics}
295
+ contact_estimation_model_ckpt_path: ${contact_estimation_model_ckpt_path}
296
+ x_limit: ${x_limit}
297
+ y_limit: ${y_limit}
298
+ z_limit: ${z_limit}
299
+ device: ${device}
300
+ interpolation_frequency: ${interpolation_frequency}
301
+ policy_frequency: ${policy_frequency}
302
+ debug_timestamps: ${debug_timestamps}
303
+ stop_after_action: ${stop_after_action}
304
+ open_loop: ${open_loop}
305
+ wait_for_new_camera_frames: ${wait_for_new_camera_frames}
306
+ action_key: ${action_key}
307
+ action_trajectory_horizon: ${agent.config.policy_cfg.horizon}
308
+ action_trajectories: ${action_trajectories}
309
+ path_to_zarr_dataset: ${expert_dataset}
310
+ agent_policy_cfg: ???
311
+ true_action_history: ${true_action_history}
312
+ num_train_frames_bc: 50000
313
+ num_train_frames_drq: 1100000
314
+ stddev_schedule_drq: linear(1.0,0.1,100000)
315
+ task_name: FrankaInsertion-v1
316
+ num_train_frames_vinn: 25000
317
+ num_train_frames_diffusion: 1000000
318
+ num_train_epochs_bc: 5000
319
+ num_train_epochs_diffusion: 5000
320
+ validate_every_epochs_bc: 5
321
+ validate_every_epochs_diffusion: 25
322
+ validate_diffusion_on_action_loss_every_epochs: 50
323
+ train_eval_diffusion_on_action_loss_every_epochs: 500
324
+ check_topk_every_epochs: 5
325
+ check_topk_every_epochs_diffusion: ${validate_diffusion_on_action_loss_every_epochs}
326
+ save_snapshot_every_epochs_diffusion: 5000
327
+ x_limit:
328
+ - 0.2
329
+ - 0.7
330
+ y_limit:
331
+ - -0.4
332
+ - 0.4
333
+ z_limit:
334
+ - -0.05
335
+ - 0.55
336
+ home_displacement:
337
+ - 0.55
338
+ - 0.0
339
+ - 0.55
340
+ - 180.0
341
+ - 0.0
342
+ - 0.0
343
+ enable_gripper: true
344
+ start_with_gripper_open: true
345
+ offset_mask:
346
+ - 1
347
+ - 1
348
+ - 1
349
+ - 1
350
+ - 1
351
+ - 1
352
+ path_to_depth_extrinsics: ~/fish_leon/FISH/cfgs/camera_poses/camera_poses_L515/20240904-122305/color_tf_world.npy
2o1us5j0/.hydra/hydra.yaml ADDED
@@ -0,0 +1,169 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ hydra:
2
+ run:
3
+ dir: ${final_experiment_dir}
4
+ sweep:
5
+ dir: ${final_experiment_dir}
6
+ subdir: ${hydra.job.num}
7
+ launcher:
8
+ submitit_folder: ${final_experiment_dir}/.slurm
9
+ timeout_min: 60
10
+ cpus_per_task: null
11
+ gpus_per_node: null
12
+ tasks_per_node: 1
13
+ mem_gb: null
14
+ nodes: 1
15
+ name: ${hydra.job.name}
16
+ stderr_to_stdout: false
17
+ _target_: hydra_plugins.hydra_submitit_launcher.submitit_launcher.LocalLauncher
18
+ sweeper:
19
+ _target_: hydra._internal.core_plugins.basic_sweeper.BasicSweeper
20
+ max_batch_size: null
21
+ params: null
22
+ help:
23
+ app_name: ${hydra.job.name}
24
+ header: '${hydra.help.app_name} is powered by Hydra.
25
+
26
+ '
27
+ footer: 'Powered by Hydra (https://hydra.cc)
28
+
29
+ Use --hydra-help to view Hydra specific help
30
+
31
+ '
32
+ template: '${hydra.help.header}
33
+
34
+ == Configuration groups ==
35
+
36
+ Compose your configuration from those groups (group=option)
37
+
38
+
39
+ $APP_CONFIG_GROUPS
40
+
41
+
42
+ == Config ==
43
+
44
+ Override anything in the config (foo.bar=value)
45
+
46
+
47
+ $CONFIG
48
+
49
+
50
+ ${hydra.help.footer}
51
+
52
+ '
53
+ hydra_help:
54
+ template: 'Hydra (${hydra.runtime.version})
55
+
56
+ See https://hydra.cc for more info.
57
+
58
+
59
+ == Flags ==
60
+
61
+ $FLAGS_HELP
62
+
63
+
64
+ == Configuration groups ==
65
+
66
+ Compose your configuration from those groups (For example, append hydra/job_logging=disabled
67
+ to command line)
68
+
69
+
70
+ $HYDRA_CONFIG_GROUPS
71
+
72
+
73
+ Use ''--cfg hydra'' to Show the Hydra config.
74
+
75
+ '
76
+ hydra_help: ???
77
+ hydra_logging:
78
+ version: 1
79
+ formatters:
80
+ simple:
81
+ format: '[%(asctime)s][HYDRA] %(message)s'
82
+ handlers:
83
+ console:
84
+ class: logging.StreamHandler
85
+ formatter: simple
86
+ stream: ext://sys.stdout
87
+ root:
88
+ level: INFO
89
+ handlers:
90
+ - console
91
+ loggers:
92
+ logging_example:
93
+ level: DEBUG
94
+ disable_existing_loggers: false
95
+ job_logging:
96
+ version: 1
97
+ formatters:
98
+ simple:
99
+ format: '[%(asctime)s][%(name)s][%(levelname)s] - %(message)s'
100
+ handlers:
101
+ console:
102
+ class: logging.StreamHandler
103
+ formatter: simple
104
+ stream: ext://sys.stdout
105
+ file:
106
+ class: logging.FileHandler
107
+ formatter: simple
108
+ filename: ${hydra.runtime.output_dir}/${hydra.job.name}.log
109
+ root:
110
+ level: INFO
111
+ handlers:
112
+ - console
113
+ - file
114
+ disable_existing_loggers: false
115
+ env: {}
116
+ mode: RUN
117
+ searchpath: []
118
+ callbacks: {}
119
+ output_subdir: .hydra
120
+ overrides:
121
+ hydra:
122
+ - hydra.mode=RUN
123
+ task:
124
+ - agent=diffusion
125
+ - suite=frankagym
126
+ - suite/frankagym_task@_global_=insertion
127
+ job:
128
+ name: eval_robot
129
+ chdir: true
130
+ override_dirname: agent=diffusion,suite/frankagym_task@_global_=insertion,suite=frankagym
131
+ id: ???
132
+ num: ???
133
+ config_name: config_eval
134
+ env_set: {}
135
+ env_copy: []
136
+ config:
137
+ override_dirname:
138
+ kv_sep: '='
139
+ item_sep: ','
140
+ exclude_keys: []
141
+ runtime:
142
+ version: 1.3.2
143
+ version_base: '1.1'
144
+ cwd: /home/leonmkim/fish_leon/FISH
145
+ config_sources:
146
+ - path: hydra.conf
147
+ schema: pkg
148
+ provider: hydra
149
+ - path: /home/leonmkim/fish_leon/FISH/cfgs
150
+ schema: file
151
+ provider: main
152
+ - path: ''
153
+ schema: structured
154
+ provider: schema
155
+ output_dir: /home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0
156
+ choices:
157
+ suite: frankagym
158
+ suite/frankagym_task@_global_: insertion
159
+ agent: diffusion
160
+ hydra/env: default
161
+ hydra/callbacks: null
162
+ hydra/job_logging: default
163
+ hydra/hydra_logging: default
164
+ hydra/hydra_help: default
165
+ hydra/help: default
166
+ hydra/sweeper: basic
167
+ hydra/launcher: submitit_local
168
+ hydra/output: default
169
+ verbose: false
2o1us5j0/.hydra/overrides.yaml ADDED
@@ -0,0 +1,3 @@
 
 
 
 
1
+ - agent=diffusion
2
+ - suite=frankagym
3
+ - suite/frankagym_task@_global_=insertion
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+ size 200
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'segmask_crop_type': None, 'crop_hw': [144, 144], 'crop_down_offset': 48, 'add_crop_binary_mask': False, 'add_coord_conv_map': False}, 'context_input_config': {'_target_': 'agent.encoder.ContextInputConfig', 'use_color': False, 'use_depth': False, 'mask_input_dict': {'_target_': 'agent.encoder.MaskInputDict', 'enable': False, 'representation': 'channels', 'mask_list': ['EE_obj_mask']}, 'crop_input_config': {'_target_': 'agent.encoder.CropInputConfig', 'color_crop_type': None, 'depth_crop_type': None, 'segmask_crop_type': None, 'crop_hw': [144, 144], 'crop_down_offset': 48, 'add_crop_binary_mask': False, 'add_coord_conv_map': False}}, 'mask_soft_approx_scheduler_config': {'_target_': 'agent.encoder.MaskSoftApproxSchedulerConfig', 'num_steps': 40000, 'initial_value': 10.0, 'final_value': 1000.0, 'interpolation_scheme': 'cosine'}, 'use_contact_map': False, 'use_sdf_maps': False, 'use_normals_maps': False, 'which_objects': 'both', 'grasped_dtc_max_value': 0.2, 'env_dtc_max_value': 0.4, 'grasped_normals_mask_max_dtc_value': 0.2, 'env_normals_mask_max_dtc_value': 0.4, 'clamp_dtc': True, 'max_contact_prob': 0.1, 'mask_normals_within_sdf': True, 'dtc_adaptive_normalization': False, 'adaptive_normals_mask': True, 'max_depth': 2.0, 'image_shape': [13, 180, 240], 'learnable_contact_preprocess_params': True, 'learning_rate': 0.0001, 'weight_decay': 0.0, 'contact_model_name': 'local_multitask_outhd64all_home_crop_h144w144d48_mask_ctxtmask_seed_220979_epoch_9', 'zero_centered': False}}, 'true_action_history': False}}, 'num_train_frames_bc': 50000, 'num_train_frames_drq': 1100000, 'stddev_schedule_drq': 'linear(1.0,0.1,100000)', 'task_name': 'FrankaInsertion-v1', 'num_train_frames_vinn': 25000, 'num_train_frames_diffusion': 1000000, 'num_train_epochs_bc': 5000, 'num_train_epochs_diffusion': 15000, 'validate_every_epochs_bc': 5, 'validate_every_epochs_diffusion': 250, 'validate_diffusion_on_action_loss_every_epochs': 250, 'train_eval_diffusion_on_action_loss_every_epochs': 250, 'check_topk_every_epochs': 5, 'check_topk_every_epochs_diffusion': 250, 'save_snapshot_every_epochs_diffusion': 1500, 'x_limit': [0.2, 0.7], 'y_limit': [-0.4, 0.4], 'z_limit': [-0.05, 0.55], 'home_displacement': [0.55, 0.0, 0.55, 180.0, 0.0, 0.0], 'enable_gripper': True, 'start_with_gripper_open': True, 'offset_mask': [1, 1, 1, 1, 1, 1], 'path_to_depth_extrinsics': '~/fish_leon/FISH/cfgs/camera_poses/camera_poses_L515/20240904-122305/color_tf_world.npy', 'test': {'username': 'leonmkim', 'hostname': 'grasp-login1', 'name_of_expert_demo': '112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act', 'root_dir': '~/fish_leon', 'expert_dataset_dirpath': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act', 'expert_dataset': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act/demos.zarr', 'semantic_demo_grouping_name': 'semantic_demo_grouping.yaml', 'semantic_demo_grouping': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act/semantic_demo_grouping.yaml', 'include_groups_list': 'all', 'batch_size': 128, 'store_dataset_in_memory': False, 'use_tb': True, 'local_snapshot_root_dir': '/mnt/bighdd/fish_contact_backup', 'local_snapshot_dir': '/mnt/bighdd/fish_contact_backup/exp_local/frankagym_pixels/FrankaInsertion-v1', 'resume_wandb_run': False}, 'feature_type': '180x240_crpdstlhw24x51x130x130_1_D_2.0_msk_channels_EE_obj_mask_acthist_hst6_out32_dwnkrnl3_dwnstrd2_dwnpd1', 'save_buffer': True, 'num_eval': 5, 'random_start': False, 'eval_starts': '/home/leonmkim/fish_leon/FISH/eval_starts/frankagym_pixels/FrankaInsertion-v1', 'num_valid_demos': None, 'load_checkpoint': True, 'checkpoint_epoch': 7500, 'load_residual_weight': False, 'checkpoint_root_dir': '/home/leonmkim/fish_leon/FISH', 'checkpoint_weight_dir': '/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0', 'residual_weight': '/home/leonmkim/fish_leon/FISH/weights/frankagym_pixels/FrankaInsertion-v1/weight.pt', 'final_experiment_dir': './exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0'}
14
+ 2025-01-21 21:13:39,115 INFO MainThread:2647330 [wandb_init.py:init():619] starting backend
15
+ 2025-01-21 21:13:39,115 INFO MainThread:2647330 [wandb_init.py:init():623] setting up manager
16
+ 2025-01-21 21:13:39,119 INFO MainThread:2647330 [backend.py:_multiprocessing_setup():105] multiprocessing start_methods=fork,spawn,forkserver, using: spawn
17
+ 2025-01-21 21:13:39,120 INFO MainThread:2647330 [wandb_init.py:init():631] backend started and connected
18
+ 2025-01-21 21:13:39,132 INFO MainThread:2647330 [wandb_init.py:init():720] updated telemetry
19
+ 2025-01-21 21:13:39,139 INFO MainThread:2647330 [wandb_init.py:init():753] communicating run to backend with 90.0 second timeout
20
+ 2025-01-21 21:13:39,462 INFO MainThread:2647330 [wandb_run.py:_on_init():2435] communicating current version
21
+ 2025-01-21 21:13:39,533 INFO MainThread:2647330 [wandb_run.py:_on_init():2444] got version response upgrade_message: "wandb version 0.19.4 is available! To upgrade, please run:\n $ pip install wandb --upgrade"
22
+
23
+ 2025-01-21 21:13:39,534 INFO MainThread:2647330 [wandb_init.py:init():804] starting run threads in backend
24
+ 2025-01-21 21:13:39,898 INFO MainThread:2647330 [wandb_run.py:_console_start():2413] atexit reg
25
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26
+ 2025-01-21 21:13:39,898 INFO MainThread:2647330 [wandb_run.py:_redirect():2320] Wrapping output streams.
27
+ 2025-01-21 21:13:39,898 INFO MainThread:2647330 [wandb_run.py:_redirect():2345] Redirects installed.
28
+ 2025-01-21 21:13:39,900 INFO MainThread:2647330 [wandb_init.py:init():847] run started, returning control to user process
29
+ 2025-01-21 21:13:39,900 INFO MainThread:2647330 [wandb_run.py:_tensorboard_callback():1544] tensorboard callback: /home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/tb, True
30
+ 2025-01-21 21:13:53,109 INFO MainThread:2647330 [wandb_run.py:_config_callback():1382] config_cb None None {'grasped_obj_name': 'greece', 'left_book_slot': 'twodim'}
31
+ 2025-01-21 21:18:27,367 WARNING MsgRouterThr:2647330 [router.py:message_loop():77] message_loop has been closed
2o1us5j0/wandb/run-20250121_211339-2o1us5j0/files/code/FISH/eval_robot.py ADDED
@@ -0,0 +1,606 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ #%%
2
+ import warnings
3
+ import os
4
+
5
+ os.environ['MKL_SERVICE_FORCE_INTEL'] = '1'
6
+ os.environ['MUJOCO_GL'] = 'egl'
7
+ from pathlib import Path
8
+ #%%
9
+ import hydra
10
+ import numpy as np
11
+ import torch
12
+
13
+ import utils
14
+ from utils import get_feature_dirname_from_configs
15
+
16
+ from video import VideoRecorder
17
+ import pickle
18
+ import time
19
+ import threading
20
+ import shutil
21
+ from logger import Logger
22
+
23
+ import wandb
24
+ from omegaconf import OmegaConf, open_dict
25
+
26
+ from replay_buffer_robot import RosbagEvalReplayBufferStorage
27
+ from lerobot.common.utils.utils import _relative_path_between
28
+
29
+ torch.backends.cudnn.benchmark = True
30
+ warnings.filterwarnings('ignore', category=DeprecationWarning)
31
+
32
+ # import specs for replay buffer
33
+ from dm_env import specs
34
+
35
+ import sys, signal
36
+ import yaml
37
+
38
+ import binomial_cis as bc
39
+
40
+ # get path of current file
41
+ current_path = os.path.dirname(os.path.realpath(__file__))
42
+ sys.path.append(os.path.join(current_path, os.pardir))
43
+ # from contact_estimation.src.utils.viz_utils import normalized_surface_normal_to_rgb, depth_map_to_im, grasped_env_dtc_map_to_im, contact_prob_map_to_im, desaturate_color_image, masked_overlay_im_list
44
+
45
+ def make_agent(obs_spec, action_spec, cfg):
46
+ cfg.obs_shape = obs_spec['pixels'].shape
47
+ dataset_statistics = None # this will be loaded from the checkpoint
48
+ try:
49
+ cfg.action_shape = action_spec.shape
50
+ except:
51
+ pass
52
+ return hydra.utils.instantiate(cfg, dataset_statistics)
53
+
54
+ class Workspace:
55
+ def __init__(self, cfg):
56
+ self.work_dir = Path.cwd()
57
+ print(f'workspace: {self.work_dir}')
58
+
59
+ signal.signal(signal.SIGINT, self.signal_handler)
60
+
61
+ self.cfg = cfg
62
+ self.loading_uncompiled_checkpoint_with_compile = False
63
+ self.loading_compiled_checkpoint_with_no_compile = False
64
+
65
+ snapshot_path = Path(self.cfg.checkpoint_weight_dir) / f'snapshot_{self.cfg.checkpoint_epoch}.pt'
66
+ self.load_checkpoint_conf(snapshot_path=snapshot_path)
67
+
68
+ # load config for action trajectories
69
+ utils.set_seed_everywhere(self.cfg.seed)
70
+ self.device = torch.device(self.cfg.device)
71
+ self.setup()
72
+
73
+ # self.agent = make_agent(self.eval_env.observation_spec(),
74
+ # self.eval_env.action_spec(), self.cfg.agent)
75
+ self.timer = utils.Timer()
76
+ # self._global_step = 0
77
+ self._global_episode = 0
78
+ self._global_epoch = 0
79
+ self.num_episode_successes = 0
80
+
81
+ self.alpha_range = [.01, .025, .05, .1]
82
+
83
+ # Need to convert hydra config to primitive container for wandb https://docs.wandb.ai/guides/integrations/hydra
84
+ with open_dict(self.cfg):
85
+ self.cfg.feature_type = get_feature_dirname_from_configs(
86
+ hydra.utils.instantiate(self.cfg.agent.config),
87
+ # hydra.utils.instantiate(self.cfg.agent.config.observation_cfg),
88
+ # self.cfg.agent.config.policy_cfg.input_shapes,
89
+ # hydra.utils.instantiate(self.cfg.agent.config.policy_cfg.action_history_encoder_config) if 'observation.action_history' in self.cfg.agent.config.policy_cfg.input_shapes else None,
90
+ )
91
+
92
+ wandb_config = OmegaConf.to_container(
93
+ self.cfg, resolve=True, throw_on_missing=True
94
+ )
95
+ # must be called before any tf summary writer is created
96
+ if self.cfg.use_wandb:
97
+ # get the run id from the final_experiment_dir directory
98
+ run_id = os.path.basename(os.path.normpath(self.cfg.final_experiment_dir))
99
+ wandb.init(project='extrinsic_contact_downstream', entity='serialexperimentsleon', job_type='eval', sync_tensorboard=self.cfg.use_tb, config=wandb_config, id=run_id)
100
+
101
+ self.logger = Logger(self.work_dir, use_tb=self.cfg.use_tb, use_wandb=self.cfg.use_wandb)
102
+
103
+ # if not self.loading_uncompiled_checkpoint_with_compile and self.cfg.agent.config.compile:
104
+ # self.agent.compile_modules()
105
+
106
+ # self.load_checkpoint(snapshot_path=snapshot_path)
107
+
108
+ # if self.loading_uncompiled_checkpoint_with_compile: # need to call compile after loading the checkpoint
109
+ # self.agent.compile_modules()
110
+
111
+ print(f"loaded agent with feature_type: {self.cfg.feature_type}")
112
+
113
+ def check_for_key_press(self):
114
+ while self.continue_keypress_thread:
115
+ inp = input("Press 'r' to restart current episode, 'n' to stop current episode and skip to next, 'q' to break entire eval\n")
116
+ if inp == 'n':
117
+ self.preempt_episode = True
118
+ print("preempting episode")
119
+ elif inp in ['', '0', '1']: # enter key
120
+ if inp in ['0', '1']:
121
+ self.num_episode_successes += int(inp)
122
+ self.proceed_after_env_reset_event.set()
123
+ print("proceeding to start episode!")
124
+ elif inp == 'q':
125
+ self.proceed_after_env_reset_event.set()
126
+ self.preempt_episode = True
127
+ self.exit_eval = True
128
+ self.continue_keypress_thread = False # will stop the keypress thread
129
+ print("quitting eval")
130
+ break
131
+ elif inp == 'r':
132
+ print('restarting episode')
133
+ self.preempt_episode = True
134
+ self.restart_episode = True
135
+ else:
136
+ print("Invalid key press, try again")
137
+
138
+ # self.keypress_input_thread.join() # wait for the keypress thread to finish
139
+
140
+ def signal_handler(self, signal, frame):
141
+ print("\nprogram exiting gracefully")
142
+ self.proceed_after_env_reset_event.set()
143
+ self.preempt_episode = True
144
+ self.exit_eval = True
145
+ self.continue_keypress_thread = False # will stop the keypress thread
146
+ self.keypress_input_thread.join() # wait for the keypress thread to finish
147
+ video_filepath = self.video_recorder.save()
148
+ # get the video file and convert to video tensor to log
149
+ self.logger.log_video('eval/video', video_filepath, self.global_step)
150
+ wandb.finish()
151
+ sys.exit(0)
152
+
153
+ def setup(self):
154
+ # create envs
155
+ self.eval_env = hydra.utils.call(self.cfg.suite.task_make_fn)
156
+ # expert_demo_config_path = os.path.join(os.path.dirname(self.cfg.expert_dataset), 'demo_config.yaml')
157
+ # self.expert_demo_config = yaml.load(open(expert_demo_config_path, 'r'), Loader=yaml.FullLoader)
158
+ # self.eval_env._env.action_trans_norm = expert_demo_config['max_translation_action_norm']
159
+ # self.eval_env._env.action_rot_norm = expert_demo_config['max_rotation_action_norm']
160
+ # self.eval_env._env.action_period = expert_demo_config['sample_period']
161
+ # print(f"setting max_translation_action_norm to {expert_demo_config['max_translation_action_norm']} and sample_period to {expert_demo_config['sample_period']}")
162
+ # print(f"setting max_rotation_action_norm to {expert_demo_config['max_rotation_action_norm']}")
163
+
164
+ # self.eval_env.set_demo_params(self.cfg.expert_dataset)
165
+
166
+ # Turn off random start
167
+ self.eval_env.random_start = False
168
+
169
+ # create replay buffer
170
+ # data_specs = [
171
+ # {
172
+ # 'observation': self.eval_env.observation_spec(),
173
+ # },
174
+ # # self.eval_env.observation_spec()['features'],
175
+ # self.eval_env.action_spec(),
176
+ # specs.Array(self.eval_env.action_spec().shape, self.eval_env.action_spec().dtype, 'vinn_action'),
177
+ # specs.Array((1, ), np.float32, 'reward'),
178
+ # specs.Array((1, ), np.float32, 'discount'),
179
+ # ]
180
+
181
+ # self.eval_replay_storage = ZarrEvalReplayBufferStorage(data_specs, self.work_dir / 'eval_buffer', debug_timestamps=self.cfg.debug_timestamps, save_buffer=self.cfg.save_buffer, debug_info_data_specs=self.eval_env.debug_info_data_specs, camera_info_dict=self.eval_env.get_camera_info_dict())
182
+ self.eval_replay_storage = RosbagEvalReplayBufferStorage(self.work_dir)
183
+
184
+ self.video_recorder = VideoRecorder(
185
+ self.work_dir if self.cfg.save_video else None,
186
+ ros_enabled=True,
187
+ fps=self.cfg.agent.config.policy_frequency,
188
+ )
189
+
190
+ print('workspace setup complete')
191
+
192
+ @property
193
+ def global_step(self):
194
+ # return self._global_step
195
+ return self.eval_env.get_global_step()
196
+
197
+ @property
198
+ def global_episode(self):
199
+ return self._global_episode
200
+
201
+ @property
202
+ def global_frame(self):
203
+ return self.global_step * self.cfg.action_repeat
204
+
205
+ @property
206
+ def global_epoch(self):
207
+ return self._global_epoch
208
+
209
+ def reset(self, eval_idx):
210
+ if not self.eval_env.enable_arm:
211
+ return np.array([0,0,0], dtype=np.float32)
212
+ self.eval_env.arm_refresh(reset=False)
213
+ # Set start position
214
+ try:
215
+ self.eval_env.set_position(self.start_pos[eval_idx])
216
+ except:
217
+ self.eval_env.arm.set_position(self.start_pos[eval_idx])
218
+ if self.eval_env.arm.keep_gripper_closed:
219
+ self.eval_env.arm.close_gripper_fully()
220
+ else:
221
+ self.eval_env.arm.open_gripper_fully()
222
+ time.sleep(0.1)
223
+ time_step = self.eval_env.step(np.zeros(self.eval_env.action_spec().shape[0], dtype=np.float32),
224
+ np.zeros(self.eval_env.action_spec().shape[0], dtype=np.float32))
225
+ return time_step
226
+
227
+ def eval(self):
228
+ # before evals start, prompt user for name of grasped object and the left book of the slot location
229
+ grasped_obj_name = input("Enter the name of the grasped object: ")
230
+ left_book_slot = input("Enter the left book slot location: ")
231
+ # update wandb config
232
+ if self.cfg.use_wandb:
233
+ wandb.config.update({'grasped_obj_name': grasped_obj_name, 'left_book_slot': left_book_slot})
234
+
235
+ self.preempt_episode = False
236
+ self.exit_eval = False
237
+ self.restart_episode = False
238
+
239
+ self.continue_keypress_thread = True
240
+ self.proceed_after_env_reset_event = threading.Event()
241
+ self.keypress_input_thread = threading.Thread(target=self.check_for_key_press)
242
+ self.keypress_input_thread.start()
243
+
244
+ # # Set model to eval mode
245
+ # self.agent.train(False)
246
+
247
+ eval_until_episode = utils.Until(self.cfg.num_eval)
248
+
249
+ self.use_action_history = False
250
+ # if "dp" in repr(self.agent) and "observation.action_history" in self.cfg.agent.config.policy_cfg.input_shapes:
251
+ if "observation.action_history" in self.cfg.agent.config.policy_cfg.input_shapes:
252
+ self.use_action_history = True
253
+
254
+ # self.eval_replay_storage._new_eval_step(0)
255
+
256
+ # if 'vinn' in repr(self.agent) or 'openloop' in repr(self.agent):
257
+ # with open(self.cfg.expert_dataset, 'rb') as f:
258
+ # if self.cfg.obs_type == 'pixels':
259
+ # self.expert_demo, _, self.expert_action, self.expert_reward = pickle.load(f)
260
+ # elif self.cfg.obs_type == 'features':
261
+ # _, self.expert_demo, self.expert_action, self.expert_reward = pickle.load(f)
262
+
263
+ # if self.cfg.action_trajectories:
264
+ # with open(self.cfg.expert_action_trajectories, 'rb') as f:
265
+ # self.expert_action = pickle.load(f)
266
+
267
+ # if isinstance(self.cfg.train_demo_idxs_list_or_num, int):
268
+ # if self.cfg.train_demo_idxs_list_or_num == -1:
269
+ # self.cfg.train_demo_idxs_list_or_num = len(self.expert_demo)
270
+ # train_demo_idxs_list_or_num = list(range(self.cfg.train_demo_idxs_list_or_num))
271
+
272
+ # self.expert_demo = self.expert_demo[train_demo_idxs_list_or_num]
273
+ # self.expert_action = self.expert_action[train_demo_idxs_list_or_num]
274
+ # self.expert_reward = self.expert_reward[train_demo_idxs_list_or_num]
275
+ # # if self.cfg.action_plans:
276
+ # # self.expert_action_plans = self.expert_action_plans[self.cfg.train_demo_idxs_list_or_num]
277
+ # # self.expert_demo = self.expert_demo[:self.cfg.num_demos]
278
+ # # self.expert_action = self.expert_action[:self.cfg.num_demos]
279
+ # # self.expert_reward = self.expert_reward[:self.cfg.num_demos]
280
+
281
+ # self.expert_demo = np.concatenate(self.expert_demo, axis=0)
282
+ # self.expert_rgb_obs = np.ascontiguousarray(np.transpose(self.expert_demo, (0,2,3,1))[:, :,:,:3].astype(np.uint8))
283
+ # self.expert_action = np.concatenate(self.expert_action, axis=0)
284
+
285
+ # self.agent.save_representations(self.expert_demo, self.expert_action, 128, config=self.expert_demo_config)
286
+
287
+ # Get start points
288
+ if self.cfg.random_start:
289
+ eval_starts = Path(self.cfg.eval_starts) / 'starts.pkl'
290
+ if eval_starts.exists():
291
+ with eval_starts.open('rb') as f:
292
+ self.start_pos = pickle.load(f)
293
+ else:
294
+ eval_starts = Path(self.cfg.eval_starts)
295
+ eval_starts.mkdir(parents=True, exist_ok=True)
296
+
297
+ # Generate start points
298
+ self.start_pos = []
299
+ try:
300
+ for _ in range(self.cfg.num_eval):
301
+ self.start_pos.append(self.eval_env.get_random_pos())
302
+ except:
303
+ for _ in range(self.cfg.num_eval):
304
+ self.start_pos.append(self.eval_env.arm.get_random_pos())
305
+
306
+ # Save start points for the task
307
+ eval_starts = eval_starts / 'starts.pkl'
308
+ with eval_starts.open('wb') as f:
309
+ pickle.dump(self.start_pos, f)
310
+
311
+ time_step = self.eval_env.reset()
312
+ # replay_thread = None
313
+ while eval_until_episode(self.global_episode) and not self.exit_eval:
314
+ # self.video_recorder.init(self.eval_env, video_filename=f'{self.global_episode}_eval.mp4')
315
+ print(f"Starting episode {self.global_episode}")
316
+ time_step = self.eval_env.reset() #Leon: need to call reset twice in case objects are trapped
317
+ self.video_recorder.init(self.eval_env, video_filename=f'{self.global_episode}_eval.mp4')
318
+ # x = input("Press Enter to continue... after reseting env")
319
+ print("Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success")
320
+ self.proceed_after_env_reset_event.clear() # clear the event flag
321
+ self.proceed_after_env_reset_event.wait() # blocking wait for the event flag to be set
322
+ if self.global_episode > 0:
323
+ self.logger.log_metrics({'num_success': self.num_episode_successes}, self.global_step, 'eval', episode=self.global_episode)
324
+ self.logger.log_metrics({'success_rate': self.num_episode_successes/self.global_episode}, self.global_step, 'eval', episode=self.global_episode)
325
+
326
+ # log confidence intervals for success rate
327
+ k = self.num_episode_successes # number of successes
328
+ n = self.global_episode # number of trials
329
+
330
+ table_columns = []
331
+ table_data = []
332
+ for alpha in self.alpha_range:
333
+ lb = bc.binom_ci(k, n, alpha, 'lb')
334
+ ub = bc.binom_ci(k, n, alpha, 'ub')
335
+
336
+ self.logger.log_metrics({f'success_rate_lb_{alpha}': lb}, self.global_step, 'eval', episode=self.global_episode)
337
+ self.logger.log_metrics({f'success_rate_ub_{alpha}': ub}, self.global_step, 'eval', episode=self.global_episode)
338
+
339
+ time_step = self.eval_env.reset()
340
+ # debug_info_dict = self.eval_env.debug_info_dict
341
+ # if replay_thread is not None:
342
+ # # wait for the last replay thread to finish
343
+ # replay_thread.join()
344
+
345
+ # self.eval_replay_storage.add(time_step._replace(observation=time_step.observation[self.cfg.obs_type]), debug_info_dict)
346
+ # replay_thread = threading.Thread(target=self.eval_replay_storage.add, args=(time_step._replace(observation=time_step.observation[self.cfg.obs_type]), debug_info_dict))
347
+ # replay_thread = threading.Thread(target=self.eval_replay_storage.add, args=(time_step, debug_info_dict))
348
+
349
+ # replay_thread.start()
350
+ if self.cfg.random_start:
351
+ time_step = self.reset(self.global_episode)
352
+ time.sleep(2) #5)
353
+ # if 'vinn' in repr(self.agent):
354
+ # self.agent.reset()
355
+ # # self.agent.buffer.reset()
356
+ # # if self.cfg.open_loop:
357
+ # # self.agent.current_step = 0
358
+ # if 'openloop' in repr(self.agent):
359
+ # self.agent.curr_step = 0
360
+ # at start of each episode, provide zero action for policies that use action history
361
+ # shape should be (T_o, T_a, action_dim)
362
+
363
+ # while not time_step.last() and not self.preempt_episode:
364
+ self.video_recorder.ros_start_recording()
365
+ self.eval_replay_storage.start_episode()
366
+ self.eval_env.start_policy_timer()
367
+ while not self.eval_env.episode_done() and not self.preempt_episode:
368
+ # with torch.no_grad(), utils.eval_mode(self.agent):
369
+ # # if self.cfg.agent.provide_topk:
370
+ # # action, vinn_action, topk = self.agent.act(
371
+ # # time_step.observation['pixels'],
372
+ # # self.global_step,
373
+ # # eval_mode=True)
374
+ # # elif self.cfg.agent.provide_obs:
375
+ # # action, vinn_action, obs = self.agent.act(
376
+ # # time_step.observation['pixels'],
377
+ # # self.global_step,
378
+ # # eval_mode=True)
379
+ # # else:
380
+ # action, vinn_action = self.agent.act(
381
+ # time_step.observation,
382
+ # self.global_step,
383
+ # eval_mode=True,
384
+ # obs_timestamp=time_step.observation['timestamp'],
385
+ # obs_seq=time_step.observation['seq'],
386
+ # action_history=action_history,
387
+ # action_history_start_timestamp=action_history_start_timestamp,
388
+ # )
389
+ # DONT WAIT FOR POLICY TO GET AN ACTION
390
+ # we dont want to slow down grabbing obs and passing to sam/contact features
391
+
392
+ self.eval_env.run_policy_threads() # this just does a rospy sleep
393
+
394
+ # if self.use_action_history:
395
+ # action_history_start_timestamp = time_step.observation['timestamp']
396
+ # # action_history = action[:self.cfg.agent.config.policy_cfg.action_history_encoder_config.history_length, ...]
397
+ # # add n_obs_steps dimension to action_history, for now we assume n_obs_steps = 1
398
+ # # TODO: handle n_obs_steps > 1
399
+ # action_history = action[np.newaxis, ...]
400
+
401
+ # time_step = self.eval_env.step(action, vinn_action) # obs, reward after action has been taken
402
+ # debug_info_dict = self.eval_env.debug_info_dict
403
+
404
+ # time_step = self.eval_env.ros_step()
405
+
406
+ # replay_thread.join()
407
+
408
+ # time how long it takes to execute the step
409
+ # time_before_add = time.perf_counter()
410
+ # self.eval_replay_storage.add(time_step._replace(observation=time_step.observation[self.cfg.obs_type]), debug_info_dict)
411
+ # use thread to call the add function in a separate thread
412
+ # replay_thread = threading.Thread(target=self.eval_replay_storage.add, args=(time_step._replace(observation=time_step.observation[self.cfg.obs_type]), debug_info_dict))
413
+
414
+ # replay_thread = threading.Thread(target=self.eval_replay_storage.add, args=(time_step, debug_info_dict))
415
+ # replay_thread.start()
416
+
417
+ # print(f"Time to add to replay buffer: {time.perf_counter() - time_before_add}")
418
+
419
+ # self.video_recorder.record(self.eval_env)
420
+ # self._global_step += 1
421
+
422
+ self.eval_env.stop_policy_timer()
423
+
424
+ if self.restart_episode:
425
+ # means we should delete the current episode and start again
426
+ self.restart_episode = False
427
+ self.eval_replay_storage.reset_current_episode()
428
+ self.video_recorder.reset_current_episode()
429
+
430
+ else:
431
+ self.eval_replay_storage.store_current_episode()
432
+ video_filepath = self.video_recorder.save()
433
+ self.logger.log_video(f"eval/{video_filepath.name.rstrip('.mp4')}", video_filepath, self.global_step)
434
+ self._global_episode += 1
435
+
436
+ self.preempt_episode = False # reset preempt_episode flag
437
+
438
+ # self.video_recorder.save(f'{episode}_eval.mp4')
439
+ # get the video file and convert to video tensor to log
440
+
441
+ self.eval_env.reset()
442
+
443
+ print("Evaluation finished. To wrap up, rate prev episode, press 0 for failure and 1 for success")
444
+ self.proceed_after_env_reset_event.clear() # clear the event flag
445
+ self.proceed_after_env_reset_event.wait() # blocking wait for the event flag to be set
446
+ if self.global_episode > 0:
447
+ # self.logger.log_metrics({'num_success': self.num_episode_successes}, self.global_step, 'eval', episode=self.global_episode)
448
+ self.logger.log_metrics({'num_success': self.num_episode_successes}, self.global_step, 'eval', episode=self.global_episode)
449
+ self.logger.log_metrics({'success_rate': self.num_episode_successes/self.global_episode}, self.global_step, 'eval', episode=self.global_episode)
450
+
451
+ # log confidence intervals for success rate
452
+ k = self.num_episode_successes # number of successes
453
+ n = self.global_episode # number of trials
454
+
455
+ table_columns = ['success_rate']
456
+ table_data = [self.num_episode_successes/self.global_episode]
457
+ for alpha in self.alpha_range:
458
+ lb = bc.binom_ci(k, n, alpha, 'lb')
459
+ ub = bc.binom_ci(k, n, alpha, 'ub')
460
+
461
+ self.logger.log_metrics({f'success_rate_lb_{alpha}': lb}, self.global_step, 'eval', episode=self.global_episode)
462
+ self.logger.log_metrics({f'success_rate_ub_{alpha}': ub}, self.global_step, 'eval', episode=self.global_episode)
463
+
464
+ table_columns.extend([f'success_rate_lb_{alpha}', f'success_rate_ub_{alpha}'])
465
+ table_data.extend([lb, ub])
466
+
467
+ table_data = [table_data]
468
+
469
+ # seperately log as a table
470
+ wandb.log({
471
+ "eval/success_rate_ci": wandb.Table(data=table_data, columns=table_columns)
472
+ })
473
+
474
+ # also accumulate eval metrics across previous eval runs
475
+ # TODO: change wandb init to resume from an existing run!!!
476
+ run_filter={
477
+ "jobType": "eval",
478
+ "config.wandb_run_id": self.cfg.wandb_run_id,
479
+ "summary_metrics.episode": {"$gte": 5},
480
+ "config.checkpoint_epoch": self.cfg.checkpoint_epoch,
481
+ "state": "finished",
482
+ # "config.grasped_obj_name": grasped_obj_name,
483
+ # "config.left_book_slot": left_book_slot,
484
+ }
485
+
486
+ api = wandb.Api()
487
+ filtered_runs = api.runs("serialexperimentsleon/extrinsic_contact_downstream", filters=run_filter)
488
+ total_num_successes = self.num_episode_successes
489
+ total_num_episodes = self.global_episode
490
+ list_of_historical_run_ids = []
491
+ if len(filtered_runs) > 0:
492
+ for filtered_run in filtered_runs:
493
+ total_num_successes += filtered_run.summary_metrics['eval/num_success']
494
+ # total_num_episodes += filtered_run.summary_metrics['episode']
495
+ total_num_episodes += filtered_run.config['num_eval']
496
+ list_of_historical_run_ids.append(filtered_run.id)
497
+
498
+ wandb.summary['total_num_successes'] = total_num_successes
499
+ wandb.summary['total_num_episodes'] = total_num_episodes
500
+ wandb.summary['total_success_rate'] = total_num_successes/total_num_episodes
501
+
502
+ # log the accumulated metrics as a table
503
+ total_table_columns = ['total_num_successes', 'total_num_episodes', 'total_success_rate']
504
+ total_table_data = [total_num_successes, total_num_episodes, total_num_successes/total_num_episodes]
505
+ self.logger.log_metrics({'total_success_rate': total_num_successes/total_num_episodes}, self.global_step, 'eval', episode=total_num_episodes)
506
+
507
+ for alpha in self.alpha_range:
508
+ lb = bc.binom_ci(total_num_successes, total_num_episodes, alpha, 'lb')
509
+ ub = bc.binom_ci(total_num_successes, total_num_episodes, alpha, 'ub')
510
+ total_table_columns.extend([f'total_success_rate_lb_{alpha}', f'total_success_rate_ub_{alpha}'])
511
+ total_table_data.extend([lb, ub])
512
+ wandb.summary[f'total_success_rate_lb_{alpha}'] = lb
513
+ wandb.summary[f'total_success_rate_ub_{alpha}'] = ub
514
+
515
+ self.logger.log_metrics({f'total_success_rate_lb_{alpha}': lb}, self.global_step, 'eval', episode=total_num_episodes)
516
+ self.logger.log_metrics({f'total_success_rate_ub_{alpha}': ub}, self.global_step, 'eval', episode=total_num_episodes)
517
+
518
+ total_table_data = [total_table_data]
519
+ wandb.log({
520
+ 'eval/total_success_rate_ci': wandb.Table(data=total_table_data, columns=total_table_columns)
521
+ })
522
+
523
+ self.continue_keypress_thread = False # will stop the keypress thread
524
+ self.keypress_input_thread.join() # wait for the keypress thread to finish
525
+
526
+ def load_checkpoint_conf(self, snapshot_path):
527
+ config_path = snapshot_path.parent / 'config.yaml'
528
+ if not config_path.exists():
529
+ raise FileNotFoundError(f'No snapshot conf found at {config_path}')
530
+ else:
531
+ # load the omegaconf config
532
+ hydra.core.global_hydra.GlobalHydra.instance().clear()
533
+ hydra.initialize(
534
+ str(_relative_path_between(Path(config_path).absolute().parent, Path(__file__).absolute().parent)),
535
+ )
536
+ cfg = hydra.compose(Path(config_path).stem)
537
+ from deepdiff import DeepDiff
538
+ from omegaconf import open_dict
539
+ diff = DeepDiff(OmegaConf.to_container(cfg), OmegaConf.to_container(self.cfg)) # old, new
540
+ # import re
541
+ overwriteable_keys = [f"root{overwritable_key}" for overwritable_key in ["['use_wandb']", "['path_to_depth_extrinsics']", "['eval']", "['root_dir']", "['wandb_notes']", "['agent']['config']['train_cfg']['use_amp']", "['agent']['config']['compile']", "['agent']['config']['policy_cfg']['num_inference_steps']"]]
542
+ if "values_changed" in diff:
543
+ # top_k_checkpoints, wandb_notes, agent.config.train_cfg.use_amp, save_snapshot_every_epochs_diffusion, check_topk_every_epochs_diffusion, validate_diffusion_on_action_loss_every_epochs, train_eval_diffusion_on_action_loss_every_epochs, validate_every_epochs_diffusion
544
+ # for keys above, overwrite the old config with the new config
545
+ for k, v in diff['values_changed'].items():
546
+ # replace any keys that are under "root['suite']"
547
+ if k in overwriteable_keys or k.startswith("root['suite']"):
548
+ print(f"Found changed key {k} with value {v}. Overwriting old checkpoint config")
549
+ if k == "root['agent']['config']['compile']":
550
+ if diff['values_changed'][k]['new_value']:
551
+ self.loading_uncompiled_checkpoint_with_compile = True
552
+ elif not diff['values_changed'][k]['new_value']:
553
+ # raise ValueError("Cannot load a compiled checkpoint without compile")
554
+ self.loading_compiled_checkpoint_with_no_compile = True
555
+ exec(f"{k.replace('root[', 'cfg[')} = {k.replace('root[', 'self.cfg[')}")
556
+ # for any new values, update the old checkpoint config
557
+ if "dictionary_item_added" in diff:
558
+ for new_key in diff['dictionary_item_added']: # this is a list
559
+ # if new_key == "root['suite']['task_make_fn']['observation_cfg']":
560
+ if new_key == "root['suite']['task_make_fn']['agent_policy_cfg']":
561
+ # pass the agents observation_cfg to the suite task_make_fn
562
+ with open_dict(cfg): # to allow addition of non-existing keys
563
+ # cfg.suite.task_make_fn.observation_cfg = cfg.agent.config.observation_cfg
564
+ cfg.suite.task_make_fn.agent_policy_cfg = cfg.agent.config
565
+ continue
566
+ elif "['agent']['config']['policy_cfg']['input_shapes']" in new_key:
567
+ # skip adding the new key if it is the input_shapes of the policy_cfg
568
+ continue
569
+ else:
570
+ print(f"Found new key {new_key} with value {eval(new_key.replace('root[', 'self.cfg['))}. Adding to checkpoint config")
571
+ # eval(new_key.replace('root', 'cfg')) = eval(new_key.replace('root', 'self.cfg'))
572
+ if new_key == "root['agent']['config']['compile']":
573
+ if self.cfg.agent.config.compile:
574
+ self.loading_uncompiled_checkpoint_with_compile = True
575
+
576
+ with open_dict(cfg):
577
+ exec(f"{new_key.replace('root[', 'cfg[')}={new_key.replace('root[', 'self.cfg[')}")
578
+ self.cfg = cfg
579
+
580
+ def load_checkpoint(self, snapshot_path, bc=False):
581
+ print(f'resuming {repr(self.agent)}: {snapshot_path}')
582
+ with snapshot_path.open('rb') as f:
583
+ payload = torch.load(f)
584
+ agent_payload = {}
585
+ for k, v in payload.items():
586
+ if k not in self.__dict__:
587
+ agent_payload[k] = v
588
+ elif k == '_global_epoch':
589
+ self._global_epoch = v
590
+ print(f'loaded epoch: {v}')
591
+ if self.cfg.use_wandb:
592
+ # add to config of wandb
593
+ wandb.config.update({'epoch': v})
594
+
595
+ # self.agent.load_snapshot_eval(agent_payload, bc)
596
+
597
+ @hydra.main(config_path='cfgs', config_name='config_eval')
598
+ def main(cfg):
599
+ from eval_robot import Workspace as W
600
+ root_dir = Path.cwd()
601
+ workspace = W(cfg)
602
+
603
+ workspace.eval()
604
+
605
+ if __name__ == '__main__':
606
+ main()
2o1us5j0/wandb/run-20250121_211339-2o1us5j0/files/config.yaml ADDED
@@ -0,0 +1,927 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ wandb_version: 1
2
+
3
+ root_dir:
4
+ desc: null
5
+ value: /home/leonmkim/fish_leon
6
+ replay_buffer_size:
7
+ desc: null
8
+ value: 150000
9
+ replay_buffer_num_workers:
10
+ desc: null
11
+ value: 2
12
+ nstep:
13
+ desc: null
14
+ value: 3
15
+ batch_size:
16
+ desc: null
17
+ value: 128
18
+ seed:
19
+ desc: null
20
+ value: 0
21
+ dataset_shuffle_seed:
22
+ desc: null
23
+ value: 0
24
+ device:
25
+ desc: null
26
+ value: cuda
27
+ save_video:
28
+ desc: null
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+ use_amp: true
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+ observation_cfg:
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+ _target_: agent.encoder.VisualFeatureSet
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+ use_depth: true
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+ use_color: false
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+ mask_input_dict:
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+ _target_: agent.encoder.MaskInputDict
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+ enable: true
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+ representation: channels
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+ mask_list:
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+ - EE_obj_mask
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+ crop_input_config:
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+ _target_: agent.encoder.CropInputConfig
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+ color_crop_type: null
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+ depth_crop_type: null
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+ segmask_crop_type: null
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+ crop_hw:
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+ - 144
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+ - 144
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+ crop_down_offset: 48
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+ add_crop_binary_mask: false
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+ add_coord_conv_map: false
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+ context_input_config:
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+ _target_: agent.encoder.ContextInputConfig
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+ use_color: false
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+ use_depth: false
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+ mask_input_dict:
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+ _target_: agent.encoder.MaskInputDict
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+ enable: false
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+ representation: channels
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+ mask_list:
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+ - EE_obj_mask
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+ crop_input_config:
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+ _target_: agent.encoder.CropInputConfig
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+ color_crop_type: null
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+ depth_crop_type: null
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+ segmask_crop_type: null
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+ crop_hw:
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+ - 144
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+ - 144
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+ add_crop_binary_mask: false
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+ mask_soft_approx_scheduler_config:
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+ _target_: agent.encoder.MaskSoftApproxSchedulerConfig
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+ num_steps: 40000
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+ initial_value: 10.0
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+ final_value: 1000.0
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+ interpolation_scheme: cosine
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+ use_sdf_maps: false
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+ use_normals_maps: false
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+ which_objects: both
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+ grasped_normals_mask_max_dtc_value: 0.2
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+ env_normals_mask_max_dtc_value: 0.4
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+ clamp_dtc: true
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+ max_contact_prob: 0.1
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+ mask_normals_within_sdf: true
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+ dtc_adaptive_normalization: false
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+ adaptive_normals_mask: true
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+ max_depth: 2.0
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+ - 240
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+ learning_rate: 0.0001
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+ contact_model_name: local_multitask_outhd64all_home_crop_h144w144d48_mask_ctxtmask_seed_220979_epoch_9
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+ true_action_history: false
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+ value: 1100000
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+ value: linear(1.0,0.1,100000)
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+ desc: null
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+ value: FrankaInsertion-v1
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+ value: 25000
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+ hostname: grasp-login1
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+ root_dir: ~/fish_leon
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+ expert_dataset_dirpath: ~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act
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+ semantic_demo_grouping_name: semantic_demo_grouping.yaml
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+ include_groups_list: all
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+ batch_size: 128
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+ store_dataset_in_memory: false
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+ use_tb: true
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+ local_snapshot_root_dir: /mnt/bighdd/fish_contact_backup
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+ local_snapshot_dir: /mnt/bighdd/fish_contact_backup/exp_local/frankagym_pixels/FrankaInsertion-v1
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+ desc: null
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+ value:
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+ code_path: code/FISH/eval_robot.py
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+ python_version: 3.10.14
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+ cli_version: 0.17.5
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+ framework: torch
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+ is_jupyter_run: false
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2o1us5j0/wandb/run-20250121_211339-2o1us5j0/files/diff.patch ADDED
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+ diff --git a/FISH/cfgs/config_eval.yaml b/FISH/cfgs/config_eval.yaml
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+ index bb5fa99..e77ad21 100644
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+ --- a/FISH/cfgs/config_eval.yaml
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+ +++ b/FISH/cfgs/config_eval.yaml
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+ @@ -82,7 +82,7 @@ contact_estimation_model_ckpt_path: '~/fish_leon/contact_estimation/artifacts/17
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+
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+ # Number of evaluation trajectories
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+ # num_eval: 10
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+ -num_eval: 20
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+ +num_eval: 5
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+
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+ debug_timestamps: False
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+ open_loop: False
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+ @@ -139,12 +139,12 @@ load_checkpoint: ${agent.load_checkpoint}
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+
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+ # all books, 06/20 demos per book
17
+ # crp_D+mask+act history
18
+ -# wandb_run_id: '3465_0'
19
+ +wandb_run_id: '3465_0'
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+ # wandb_run_id: '3465_1' # seed 1
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+ # wandb_run_id: '3465_2' # seed 2
22
+
23
+ # crp_D+mask+contact+act history
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+ -wandb_run_id: '4295_0'
25
+ +# wandb_run_id: '4295_0'
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+ # wandb_run_id: '4295_1' # seed 1
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+ # wandb_run_id: '4295_2' # seed 2
28
+
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+
2
+ loaded agent with feature_type: 180x240_crpdstlhw24x51x130x130_1_D_2.0_msk_channels_EE_obj_mask_acthist_hst6_out32_dwnkrnl3_dwnstrd2_dwnpd1
3
+ [INFO] [1737512033.110554]: resetting environment
4
+ [INFO] [1737512033.113997]: cleared current plan
5
+ [INFO] [1737512033.115028]: moving to home
6
+ [INFO] [1737512034.117288]: reached home
7
+ [INFO] [1737512034.118888]: reset action history
8
+ [INFO] [1737512036.826581]: environment reset
9
+ Starting episode 0
10
+ [INFO] [1737512036.828620]: resetting environment
11
+ [INFO] [1737512036.833621]: cleared current plan
12
+ [INFO] [1737512036.834777]: moving to home
13
+ [INFO] [1737512037.837212]: reached home
14
+ [INFO] [1737512037.838914]: reset action history
15
+ [INFO] [1737512040.547055]: environment reset
16
+ Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success
17
+ proceeding to start episode!
18
+ [INFO] [1737512051.317839]: resetting environment
19
+ [INFO] [1737512051.322533]: cleared current plan
20
+ [INFO] [1737512051.323405]: moving to home
21
+ [INFO] [1737512052.325258]: reached home
22
+ [INFO] [1737512052.327020]: reset action history
23
+ [INFO] [1737512055.033983]: environment reset
24
+ bag_path_name:=/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/episode_rosbags/episode_0_2025-01-21-21-14-15.bag
25
+ ... logging to /home/leonmkim/.ros/log/1b77c894-d3af-11ef-96d2-5defea869005/roslaunch-leonmkim-ROG-Strix-G15CS-G15CS-2647330.log
26
+ started roslaunch server http://158.130.50.37:38247/
27
+ SUMMARY
28
+ ========
29
+ PARAMETERS
30
+ * /rosdistro: noetic
31
+ * /rosversion: 1.16.0
32
+ NODES
33
+ /
34
+ print_text (rostopic/rostopic)
35
+ pub_text (rostopic/rostopic)
36
+ rosbag_record (rosbag/record)
37
+ ROS_MASTER_URI=http://localhost:11311
38
+ process[pub_text-1]: started with pid [2647608]
39
+ process[print_text-2]: started with pid [2647632]
40
+ process[rosbag_record-3]: started with pid [2647633]
41
+ started bagging!
42
+ [INFO] [1737512082.054680]: Storing episode...
43
+ [rosbag_record-3] killing on exit
44
+ [print_text-2] killing on exit
45
+ [pub_text-1] killing on exit
46
+ [INFO] [1737512082.800467]: Stored episode 1.
47
+ [INFO] [1737512082.801943]: Saving video...
48
+ [INFO] [1737512083.006385]: Video saved!
49
+ Starting episode 1
50
+ [INFO] [1737512083.026349]: resetting environment
51
+ [INFO] [1737512083.033767]: cleared current plan
52
+ [INFO] [1737512083.034043]: moving to home
53
+ [INFO] [1737512086.637258]: reached home
54
+ [INFO] [1737512086.637763]: reset action history
55
+ [INFO] [1737512089.345840]: environment reset
56
+ Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success
57
+ proceeding to start episode!Comuting lower confidence bound
58
+ Comuting upper confidence bound
59
+ Comuting lower confidence bound
60
+ Comuting upper confidence bound
61
+ Comuting lower confidence bound
62
+ Comuting upper confidence bound
63
+ Comuting lower confidence bound
64
+ Comuting upper confidence bound
65
+ [INFO] [1737512101.193393]: resetting environment
66
+ [INFO] [1737512101.195740]: cleared current plan
67
+ [INFO] [1737512101.195926]: moving to home
68
+ [INFO] [1737512102.197393]: reached home
69
+ [INFO] [1737512102.197916]: reset action history
70
+ [INFO] [1737512104.904283]: environment reset
71
+ bag_path_name:=/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/episode_rosbags/episode_1_2025-01-21-21-15-04.bag
72
+ ... logging to /home/leonmkim/.ros/log/1b77c894-d3af-11ef-96d2-5defea869005/roslaunch-leonmkim-ROG-Strix-G15CS-G15CS-2647330.log
73
+ started roslaunch server http://158.130.50.37:34789/
74
+ SUMMARY
75
+ ========
76
+ PARAMETERS
77
+ * /rosdistro: noetic
78
+ * /rosversion: 1.16.0
79
+ NODES
80
+ /
81
+ print_text (rostopic/rostopic)
82
+ pub_text (rostopic/rostopic)
83
+ rosbag_record (rosbag/record)
84
+ ROS_MASTER_URI=http://localhost:11311
85
+ process[pub_text-4]: started with pid [2647747]
86
+ process[print_text-5]: started with pid [2647748]
87
+ process[rosbag_record-6]: started with pid [2647772]
88
+ started bagging!
89
+ For topic gripper_width: timestamp difference is 113492089 for nearest: 1737512131712497550 - target: 1737512131599005461 at idx 249
90
+ [INFO] [1737512131.883751]: Storing episode...
91
+ [rosbag_record-6] killing on exit
92
+ [print_text-5] killing on exit
93
+ [pub_text-4] killing on exit
94
+ [INFO] [1737512132.626250]: Stored episode 2.
95
+ [INFO] [1737512132.626497]: Saving video...
96
+ [INFO] [1737512133.106348]: Video saved!
97
+ Starting episode 2
98
+ [INFO] [1737512133.125534]: resetting environment
99
+ [INFO] [1737512133.132223]: cleared current plan
100
+ [INFO] [1737512133.138080]: moving to home
101
+ [INFO] [1737512136.745794]: reached home
102
+ [INFO] [1737512136.749430]: reset action history
103
+ [INFO] [1737512139.526770]: environment reset
104
+ Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success
105
+ proceeding to start episode!
106
+ Comuting lower confidence bound
107
+ Comuting upper confidence bound
108
+ Comuting lower confidence bound
109
+ Comuting upper confidence bound
110
+ Comuting lower confidence bound
111
+ Comuting upper confidence bound
112
+ Comuting lower confidence bound
113
+ Comuting upper confidence bound
114
+ [INFO] [1737512143.314750]: resetting environment
115
+ [INFO] [1737512143.322287]: cleared current plan
116
+ [INFO] [1737512143.322573]: moving to home
117
+ [INFO] [1737512144.324523]: reached home
118
+ [INFO] [1737512144.324957]: reset action history
119
+ [INFO] [1737512147.032402]: environment reset
120
+ bag_path_name:=/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/episode_rosbags/episode_2_2025-01-21-21-15-47.bag
121
+ ... logging to /home/leonmkim/.ros/log/1b77c894-d3af-11ef-96d2-5defea869005/roslaunch-leonmkim-ROG-Strix-G15CS-G15CS-2647330.log
122
+ started roslaunch server http://158.130.50.37:41111/
123
+ SUMMARY
124
+ ========
125
+ PARAMETERS
126
+ * /rosdistro: noetic
127
+ * /rosversion: 1.16.0
128
+ NODES
129
+ /
130
+ print_text (rostopic/rostopic)
131
+ pub_text (rostopic/rostopic)
132
+ rosbag_record (rosbag/record)
133
+ ROS_MASTER_URI=http://localhost:11311
134
+ process[pub_text-7]: started with pid [2647895]
135
+ process[print_text-8]: started with pid [2647896]
136
+ process[rosbag_record-9]: started with pid [2647897]
137
+ started bagging!
138
+ For topic gripper_width: timestamp difference is 102022763 for nearest: 1737512161579163190 - target: 1737512161477140427 at idx 201
139
+ For topic gripper_width: timestamp difference is 110764396 for nearest: 1737512165979167831 - target: 1737512165868403435 at idx 249
140
+ [INFO] [1737512174.169350]: Storing episode...
141
+ [rosbag_record-9] killing on exit
142
+ [print_text-8] killing on exit
143
+ [pub_text-7] killing on exit
144
+ [INFO] [1737512175.003390]: Stored episode 3.
145
+ [INFO] [1737512175.010807]: Saving video...
146
+ [INFO] [1737512175.280802]: Video saved!
147
+ Starting episode 3
148
+ [INFO] [1737512175.336191]: resetting environment
149
+ [INFO] [1737512175.369285]: cleared current plan
150
+ [INFO] [1737512175.372890]: moving to home
151
+ [INFO] [1737512178.978209]: reached home
152
+ [INFO] [1737512178.987720]: reset action history
153
+ [INFO] [1737512181.765712]: environment reset
154
+ Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success
155
+ proceeding to start episode!
156
+ Comuting lower confidence bound
157
+ Comuting upper confidence bound
158
+ Comuting lower confidence bound
159
+ Comuting upper confidence bound
160
+ Comuting lower confidence bound
161
+ Comuting upper confidence bound
162
+ Comuting lower confidence bound
163
+ Comuting upper confidence bound
164
+ [INFO] [1737512184.808330]: resetting environment
165
+ [INFO] [1737512184.818248]: cleared current plan
166
+ [INFO] [1737512184.821200]: moving to home
167
+ [INFO] [1737512185.825378]: reached home
168
+ [INFO] [1737512185.826337]: reset action history
169
+ [INFO] [1737512188.609905]: environment reset
170
+ bag_path_name:=/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/episode_rosbags/episode_3_2025-01-21-21-16-28.bag
171
+ ... logging to /home/leonmkim/.ros/log/1b77c894-d3af-11ef-96d2-5defea869005/roslaunch-leonmkim-ROG-Strix-G15CS-G15CS-2647330.log
172
+ started roslaunch server http://158.130.50.37:41483/
173
+ SUMMARY
174
+ ========
175
+ PARAMETERS
176
+ * /rosdistro: noetic
177
+ * /rosversion: 1.16.0
178
+ NODES
179
+ /
180
+ print_text (rostopic/rostopic)
181
+ pub_text (rostopic/rostopic)
182
+ rosbag_record (rosbag/record)
183
+ ROS_MASTER_URI=http://localhost:11311
184
+ process[pub_text-10]: started with pid [2648051]
185
+ process[print_text-11]: started with pid [2648052]
186
+ process[rosbag_record-12]: started with pid [2648053]
187
+ started bagging!
188
+ [INFO] [1737512216.822376]: Storing episode...
189
+ [print_text-11] killing on exit
190
+ [rosbag_record-12] killing on exit
191
+ [pub_text-10] killing on exit
192
+ [INFO] [1737512217.589358]: Stored episode 4.
193
+ [INFO] [1737512217.594275]: Saving video...
194
+ [INFO] [1737512218.007750]: Video saved!
195
+ Starting episode 4
196
+ [INFO] [1737512218.057733]: resetting environment
197
+ [INFO] [1737512218.075688]: cleared current plan
198
+ [INFO] [1737512218.079482]: moving to home
199
+ [INFO] [1737512221.681863]: reached home
200
+ [INFO] [1737512221.684580]: reset action history
201
+ [INFO] [1737512224.466274]: environment reset
202
+ Press Enter to continue... after reseting env. To rate prev episode, press 0 for failure and 1 for success
203
+ proceeding to start episode!Comuting lower confidence bound
204
+ Comuting upper confidence bound
205
+ Comuting lower confidence bound
206
+ Comuting upper confidence bound
207
+ Comuting lower confidence bound
208
+ Comuting upper confidence bound
209
+ Comuting lower confidence bound
210
+ Comuting upper confidence bound
211
+ [INFO] [1737512234.196702]: resetting environment
212
+ [INFO] [1737512234.223496]: cleared current plan
213
+ [INFO] [1737512234.229446]: moving to home
214
+ [INFO] [1737512235.237252]: reached home
215
+ [INFO] [1737512235.248843]: reset action history
216
+ [INFO] [1737512237.969909]: environment reset
217
+ bag_path_name:=/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0/episode_rosbags/episode_4_2025-01-21-21-17-17.bag
218
+ ... logging to /home/leonmkim/.ros/log/1b77c894-d3af-11ef-96d2-5defea869005/roslaunch-leonmkim-ROG-Strix-G15CS-G15CS-2647330.log
219
+ started roslaunch server http://158.130.50.37:41211/
220
+ SUMMARY
221
+ ========
222
+ PARAMETERS
223
+ * /rosdistro: noetic
224
+ * /rosversion: 1.16.0
225
+ NODES
226
+ /
227
+ print_text (rostopic/rostopic)
228
+ pub_text (rostopic/rostopic)
229
+ rosbag_record (rosbag/record)
230
+ ROS_MASTER_URI=http://localhost:11311
231
+ process[pub_text-13]: started with pid [2648181]
232
+ process[print_text-14]: started with pid [2648182]
233
+ process[rosbag_record-15]: started with pid [2648206]
234
+ started bagging!
235
+ For topic gripper_width: timestamp difference is 106640949 for nearest: 1737512248179162874 - target: 1737512248072521925 at idx 129
236
+ For topic gripper_width: timestamp difference is 114048928 for nearest: 1737512254779164523 - target: 1737512254665115595 at idx 223
237
+ For topic gripper_width: timestamp difference is 117134755 for nearest: 1737512259979162877 - target: 1737512259862028122 at idx 249
238
+ [INFO] [1737512264.942516]: Storing episode...
239
+ [rosbag_record-15] killing on exit
240
+ [print_text-14] killing on exit
241
+ [pub_text-13] killing on exit
242
+ [INFO] [1737512265.738468]: Stored episode 5.
243
+ [INFO] [1737512265.743216]: Saving video...
244
+ [INFO] [1737512266.268509]: Video saved!
245
+ [INFO] [1737512266.333812]: resetting environment
246
+ [INFO] [1737512266.350100]: cleared current plan
247
+ [INFO] [1737512266.350394]: moving to home
248
+ [WARN] [1737512266.317165]: Plan exhausted
249
+ [INFO] [1737512269.953169]: reached home
250
+ [INFO] [1737512269.960403]: reset action history
251
+ [INFO] [1737512272.806027]: environment reset
252
+ Evaluation finished. To wrap up, rate prev episode, press 0 for failure and 1 for success
253
+ proceeding to start episode!Comuting lower confidence bound
254
+ Comuting upper confidence bound
255
+ Comuting lower confidence bound
256
+ Comuting upper confidence bound
257
+ Comuting lower confidence bound
258
+ Comuting upper confidence bound
259
+ Comuting lower confidence bound
260
+ Comuting upper confidence bound
261
+ Comuting lower confidence bound
262
+ Comuting upper confidence bound
263
+ Comuting lower confidence bound
264
+ Comuting upper confidence bound
265
+ Comuting lower confidence bound
266
+ Comuting upper confidence bound
267
+ Comuting lower confidence bound
268
+ Comuting upper confidence bound
269
+ proceeding to start episode!
2o1us5j0/wandb/run-20250121_211339-2o1us5j0/files/requirements.txt ADDED
@@ -0,0 +1,340 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ Cython==3.0.10
2
+ Farama-Notifications==0.0.4
3
+ GitPython==3.1.43
4
+ Jinja2==3.1.4
5
+ Markdown==3.6
6
+ MarkupSafe==2.1.5
7
+ POT==0.7.0
8
+ PyOpenGL==3.1.7
9
+ PySocks==1.7.1
10
+ PyYAML==6.0.1
11
+ Pygments==2.18.0
12
+ Rtree==1.3.0
13
+ Werkzeug==3.0.3
14
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15
+ accelerate==0.33.0
16
+ actionlib-msgs==1.13.0.post3
17
+ actionlib==1.12.0
18
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19
+ aiohttp==3.9.5
20
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21
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25
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26
+ attrs==23.2.0
27
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28
+ beartype==0.18.5
29
+ beautifulsoup4==4.12.3
30
+ binomial_cis==0.0.11
31
+ bondpy==1.8.6
32
+ byol-pytorch==0.8.0
33
+ cachetools==5.4.0
34
+ camera-calibration-parsers==1.12.0
35
+ camera-calibration==1.17.0
36
+ cascadio==0.0.13
37
+ catkin-pkg==1.0.0
38
+ catkin==0.7.18
39
+ catkin==0.8.10
40
+ certifi==2024.7.4
41
+ cffi==1.16.0
42
+ chardet==5.2.0
43
+ charset-normalizer==3.3.2
44
+ click==8.1.7
45
+ cloudpickle==3.0.0
46
+ cmake==3.30.1
47
+ colorlog==6.8.2
48
+ contourpy==1.2.1
49
+ controller-manager-msgs==0.20.0
50
+ controller-manager==0.20.0
51
+ coverage==7.6.0
52
+ coveralls==4.0.1
53
+ cv-bridge==1.16.2
54
+ cycler==0.12.1
55
+ datasets==2.20.0
56
+ decorator==4.4.2
57
+ deepdiff==7.0.1
58
+ defusedxml==0.7.1
59
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60
+ diagnostic-common-diagnostics==1.11.0
61
+ diagnostic-updater==1.11.0
62
+ diffusers==0.27.2
63
+ dill==0.3.8
64
+ distro==1.9.0
65
+ dm-control==1.0.8
66
+ dm-env==1.6
67
+ dm-tree==0.1.8
68
+ docker-pycreds==0.4.0
69
+ docopt==0.6.2
70
+ docutils==0.21.2
71
+ dynamic-reconfigure==1.7.3
72
+ einops==0.8.0
73
+ embreex==2.17.7.post5
74
+ empy==3.3.4
75
+ etils==1.7.0
76
+ exceptiongroup==1.2.2
77
+ ezdxf==1.3.2
78
+ fasteners==0.19
79
+ filelock==3.15.4
80
+ fonttools==4.53.1
81
+ freetype-py==2.4.0
82
+ frozenlist==1.4.1
83
+ fsspec==2024.5.0
84
+ gazebo_plugins==2.9.2
85
+ gazebo_ros==2.9.2
86
+ gdown==5.2.0
87
+ gencpp==0.7.0
88
+ geneus==3.0.0
89
+ genlisp==0.4.18
90
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91
+ genmsg==0.6.0
92
+ gennodejs==2.0.2
93
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94
+ genpy==0.6.15
95
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96
+ gitdb==4.0.11
97
+ glfw==2.7.0
98
+ glooey==0.3.6
99
+ gmsh==4.12.2
100
+ gnupg==2.3.1
101
+ google-auth-oauthlib==1.0.0
102
+ google-auth==2.32.0
103
+ grpcio==1.65.1
104
+ gym-envs==0.0.1
105
+ gym-notices==0.0.8
106
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107
+ gymnasium==0.29.1
108
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109
+ h5py==3.11.0
110
+ hf_transfer==0.1.8
111
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112
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113
+ huggingface-hub==0.23.5
114
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115
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116
+ idna==3.7
117
+ image-geometry==1.16.2
118
+ imageio-ffmpeg==0.5.1
119
+ imageio==2.34.2
120
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121
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122
+ iniconfig==2.0.0
123
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124
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125
+ joint-state-publisher==1.15.1
126
+ jsonschema-specifications==2023.12.1
127
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128
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129
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130
+ kornia_rs==0.1.5
131
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132
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133
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134
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135
+ lightning-utilities==0.11.6
136
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137
+ lxml==5.2.2
138
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139
+ mapbox-earcut==1.0.1
140
+ markdown-it-py==3.0.0
141
+ matplotlib==3.9.1
142
+ mdurl==0.1.2
143
+ meshio==5.3.5
144
+ message-filters==1.16.0
145
+ more-itertools==10.3.0
146
+ moviepy==1.0.3
147
+ mpmath==1.3.0
148
+ mujoco==3.2.0
149
+ multidict==6.0.5
150
+ multiprocess==0.70.16
151
+ natsort==8.4.0
152
+ netifaces==0.11.0
153
+ networkx==3.3
154
+ nodeenv==1.9.1
155
+ numba==0.60.0
156
+ numcodecs==0.13.0
157
+ numpy==1.26.4
158
+ nvidia-cublas-cu12==12.1.3.1
159
+ nvidia-cuda-cupti-cu12==12.1.105
160
+ nvidia-cuda-nvrtc-cu12==12.1.105
161
+ nvidia-cuda-runtime-cu12==12.1.105
162
+ nvidia-cudnn-cu12==9.1.0.70
163
+ nvidia-cufft-cu12==11.0.2.54
164
+ nvidia-curand-cu12==10.3.2.106
165
+ nvidia-cusolver-cu12==11.4.5.107
166
+ nvidia-cusparse-cu12==12.1.0.106
167
+ nvidia-nccl-cu12==2.20.5
168
+ nvidia-nvjitlink-cu12==12.5.82
169
+ nvidia-nvtx-cu12==12.1.105
170
+ oauthlib==3.2.2
171
+ omegaconf==2.3.0
172
+ openctm==0.0.5
173
+ opencv-python==4.10.0.84
174
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175
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176
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177
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178
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179
+ platformdirs==4.2.2
180
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181
+ proglog==0.1.10
182
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183
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184
+ pyarrow-hotfix==0.6
185
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186
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187
+ pyasn1_modules==0.4.0
188
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189
+ pycollada==0.8
190
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191
+ pycryptodomex==3.21.0
192
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193
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194
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195
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196
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197
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198
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199
+ pytest-beartype==0.0.2
200
+ pytest-cov==5.0.0
201
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202
+ python-dateutil==2.9.0.post0
203
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204
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205
+ pytorch-lightning==2.4.0
206
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207
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208
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209
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210
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211
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212
+ regex==2024.5.15
213
+ requests-oauthlib==2.0.0
214
+ requests==2.32.3
215
+ rerun-sdk==0.17.0
216
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217
+ rich==13.7.1
218
+ ros-numpy==0.0.5
219
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220
+ rosboost-cfg==1.15.8
221
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222
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223
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224
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225
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226
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227
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228
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229
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230
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231
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232
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233
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234
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235
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236
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237
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238
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239
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240
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241
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242
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243
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244
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245
+ rpds-py==0.19.1
246
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247
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248
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249
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250
+ rqt-reconfigure==0.5.5
251
+ rqt-robot-dashboard==0.5.8
252
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253
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254
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255
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256
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257
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258
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259
+ rqt_dep==0.4.12
260
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261
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262
+ rqt_gui_py==0.5.3
263
+ rqt_launch==0.4.9
264
+ rqt_msg==0.4.10
265
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266
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267
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268
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269
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270
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271
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272
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273
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274
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275
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276
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277
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278
+ rsa==4.9
279
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280
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281
+ safetensors==0.4.3
282
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283
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284
+ scipy==1.14.0
285
+ seaborn==0.13.2
286
+ sensor-msgs==1.13.1
287
+ sentry-sdk==2.11.0
288
+ setproctitle==1.3.3
289
+ setuptools==65.5.0
290
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291
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292
+ six==1.16.0
293
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294
+ smach==2.5.2
295
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296
+ smmap==5.0.1
297
+ sniffio==1.3.1
298
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'use_sdf_maps': False, 'use_normals_maps': False, 'which_objects': 'both', 'grasped_dtc_max_value': 0.2, 'env_dtc_max_value': 0.4, 'grasped_normals_mask_max_dtc_value': 0.2, 'env_normals_mask_max_dtc_value': 0.4, 'clamp_dtc': True, 'max_contact_prob': 0.1, 'mask_normals_within_sdf': True, 'dtc_adaptive_normalization': False, 'adaptive_normals_mask': True, 'max_depth': 2.0, 'image_shape': [13, 180, 240], 'learnable_contact_preprocess_params': True, 'learning_rate': 0.0001, 'weight_decay': 0.0, 'contact_model_name': 'local_multitask_outhd64all_home_crop_h144w144d48_mask_ctxtmask_seed_220979_epoch_9', 'zero_centered': False, 'crop_distractors_tlhw': None}}}, 'suite': {'suite': 'frankagym', 'name': 'frankagym', 'frame_stack': 1, 'action_repeat': 1, 'discount': 0.99, 'hidden_dim': 1024, 'num_train_frames': 2010, 'num_seed_frames': 260, 'num_train_epochs': 5000, 'validate_every_epochs': 100, 'validate_diffusion_on_action_loss_every_epochs': 500, 'train_eval_diffusion_on_action_loss_every_epochs': 500, 'check_topk_every_epochs': 10, 'save_snapshot_every_epochs': 5000, 'eval_every_frames': 2000, 'num_eval_episodes': 5, 'save_snapshot': True, 'wait_for_user_to_start_episode': True, 'task_make_fn': {'_target_': 'suite.frankagym.make', 'name': 'FrankaInsertion-v1', 'height': 240, 'width': 320, 'frame_stack': 1, 'action_repeat': 1, 'seed': 0, 'enable_arm': True, 'enable_gripper': True, 'start_with_gripper_open': True, 'enable_camera': True, 'path_to_depth_extrinsics': '~/fish_leon/FISH/cfgs/camera_poses/camera_poses_L515/20240904-122305/color_tf_world.npy', 'contact_estimation_model_ckpt_path': '~/fish_leon/contact_estimation/artifacts/175604_2/checkpoints/epoch=09-val_loss=0.00.ckpt', 'x_limit': [0.2, 0.7], 'y_limit': [-0.4, 0.4], 'z_limit': [-0.05, 0.55], 'device': 'cuda', 'interpolation_frequency': 25, 'policy_frequency': 5, 'debug_timestamps': False, 'stop_after_action': False, 'open_loop': False, 'wait_for_new_camera_frames': True, 'action_key': 'action_trajectory_25hz', 'action_trajectory_horizon': 36, 'action_trajectories': True, 'path_to_zarr_dataset': '/home/leonmkim/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/120_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act/demos.zarr', 'agent_policy_cfg': {'_target_': 'agent.diffusion_policy.DiffusionPolicyAgentConfig', 'compile': False, 'device': 'cuda', 'cam_resize_shape': [13, 180, 240], 'orig_cam_shape': [3, 240, 320], 'policy_frequency': 5, 'interpolation_frequency': 25, 'policy_cfg': {'_target_': 'lerobot.common.policies.diffusion.configuration_diffusion.DiffusionConfig', 'n_obs_steps': 1, 'horizon': 36, 'n_action_steps': 36, 'output_shapes': {'action': [7]}, 'input_normalization_modes': {'observation.image': 'mean_std', 'observation.state': 'min_max', 'observation.action_history': 'min_max'}, 'output_normalization_modes': {'action': 'min_max'}, 'vision_backbone': 'resnet18', 'crop_distractors_tlhw': [32, 68, 174, 174], 'pretrained_backbone_weights': None, 'transforms': [{'_target_': 'torchaug.transforms.RandomAffine', 'degrees': [-5, 5], 'translate': [0.05, 0.05], 'batch_transform': True, 'num_chunks': -1, 'batch_inplace': True}, {'_target_': 'torchaug.transforms.RandomColorJitter', 'brightness': 0.3, 'contrast': 0.4, 'saturation': 0.5, 'hue': 0.08, 'batch_transform': True, 'num_chunks': -1, 'batch_inplace': True}], 'use_group_norm': True, 'spatial_softmax_num_keypoints': 32, 'action_history_encoder_config': {'_target_': 'lerobot.common.policies.diffusion.configuration_diffusion.Unet1dEncoderConfig', 'in_channels': 7, 'out_channels': 32, 'history_length': 6, 'kernel_size': 5, 'downsample_kernel_size': 3, 'downsample_stride': 2, 'downsample_padding': 1}, 'down_dims': [256, 512, 1024], 'kernel_size': 5, 'n_groups': 8, 'diffusion_step_embed_dim': 128, 'use_film_scale_modulation': True, 'noise_scheduler_type': 'DDIM', 'beta_schedule': 'squaredcos_cap_v2', 'beta_start': 0.0001, 'beta_end': 0.02, 'prediction_type': 'epsilon', 'clip_sample': True, 'clip_sample_range': 1.0, 'num_train_timesteps': 50, 'num_inference_steps': 10, 'do_mask_loss_for_padding': False, 'input_shapes': {'observation.image': [13, 180, 240], 'context_observation.image': [13, 180, 240], 'observation.state': [8], 'observation.action_history': [7]}}, 'train_cfg': {'_target_': 'utils.TrainConfig', 'lr': 0.0001, 'lr_scheduler': 'cosine', 'lr_warmup_steps': 500, 'adam_betas': [0.95, 0.999], 'adam_eps': 1e-08, 'adam_weight_decay': 1e-06, 'grad_clip_norm': 10, 'offline_steps': 1000000, 'use_amp': True}, 'observation_cfg': {'_target_': 'agent.encoder.VisualFeatureSet', 'use_depth': True, 'use_color': False, 'mask_input_dict': {'_target_': 'agent.encoder.MaskInputDict', 'enable': True, 'representation': 'channels', 'mask_list': ['EE_obj_mask']}, 'crop_input_config': {'_target_': 'agent.encoder.CropInputConfig', 'color_crop_type': None, 'depth_crop_type': None, 'segmask_crop_type': None, 'crop_hw': [144, 144], 'crop_down_offset': 48, 'add_crop_binary_mask': False, 'add_coord_conv_map': False}, 'context_input_config': {'_target_': 'agent.encoder.ContextInputConfig', 'use_color': False, 'use_depth': False, 'mask_input_dict': {'_target_': 'agent.encoder.MaskInputDict', 'enable': False, 'representation': 'channels', 'mask_list': ['EE_obj_mask']}, 'crop_input_config': {'_target_': 'agent.encoder.CropInputConfig', 'color_crop_type': None, 'depth_crop_type': None, 'segmask_crop_type': None, 'crop_hw': [144, 144], 'crop_down_offset': 48, 'add_crop_binary_mask': False, 'add_coord_conv_map': False}}, 'mask_soft_approx_scheduler_config': {'_target_': 'agent.encoder.MaskSoftApproxSchedulerConfig', 'num_steps': 40000, 'initial_value': 10.0, 'final_value': 1000.0, 'interpolation_scheme': 'cosine'}, 'use_contact_map': False, 'use_sdf_maps': False, 'use_normals_maps': False, 'which_objects': 'both', 'grasped_dtc_max_value': 0.2, 'env_dtc_max_value': 0.4, 'grasped_normals_mask_max_dtc_value': 0.2, 'env_normals_mask_max_dtc_value': 0.4, 'clamp_dtc': True, 'max_contact_prob': 0.1, 'mask_normals_within_sdf': True, 'dtc_adaptive_normalization': False, 'adaptive_normals_mask': True, 'max_depth': 2.0, 'image_shape': [13, 180, 240], 'learnable_contact_preprocess_params': True, 'learning_rate': 0.0001, 'weight_decay': 0.0, 'contact_model_name': 'local_multitask_outhd64all_home_crop_h144w144d48_mask_ctxtmask_seed_220979_epoch_9', 'zero_centered': False}}, 'true_action_history': False}}, 'num_train_frames_bc': 50000, 'num_train_frames_drq': 1100000, 'stddev_schedule_drq': 'linear(1.0,0.1,100000)', 'task_name': 'FrankaInsertion-v1', 'num_train_frames_vinn': 25000, 'num_train_frames_diffusion': 1000000, 'num_train_epochs_bc': 5000, 'num_train_epochs_diffusion': 15000, 'validate_every_epochs_bc': 5, 'validate_every_epochs_diffusion': 250, 'validate_diffusion_on_action_loss_every_epochs': 250, 'train_eval_diffusion_on_action_loss_every_epochs': 250, 'check_topk_every_epochs': 5, 'check_topk_every_epochs_diffusion': 250, 'save_snapshot_every_epochs_diffusion': 1500, 'x_limit': [0.2, 0.7], 'y_limit': [-0.4, 0.4], 'z_limit': [-0.05, 0.55], 'home_displacement': [0.55, 0.0, 0.55, 180.0, 0.0, 0.0], 'enable_gripper': True, 'start_with_gripper_open': True, 'offset_mask': [1, 1, 1, 1, 1, 1], 'path_to_depth_extrinsics': '~/fish_leon/FISH/cfgs/camera_poses/camera_poses_L515/20240904-122305/color_tf_world.npy', 'test': {'username': 'leonmkim', 'hostname': 'grasp-login1', 'name_of_expert_demo': '112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act', 'root_dir': '~/fish_leon', 'expert_dataset_dirpath': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act', 'expert_dataset': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act/demos.zarr', 'semantic_demo_grouping_name': 'semantic_demo_grouping.yaml', 'semantic_demo_grouping': '~/fish_leon/FISH/expert_demos/frankagym/FrankaInsertion-v1/112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act/semantic_demo_grouping.yaml', 'include_groups_list': 'all', 'batch_size': 128, 'store_dataset_in_memory': False, 'use_tb': True, 'local_snapshot_root_dir': '/mnt/bighdd/fish_contact_backup', 'local_snapshot_dir': '/mnt/bighdd/fish_contact_backup/exp_local/frankagym_pixels/FrankaInsertion-v1', 'resume_wandb_run': False}, 'feature_type': '180x240_crpdstlhw24x51x130x130_1_D_2.0_msk_channels_EE_obj_mask_acthist_hst6_out32_dwnkrnl3_dwnstrd2_dwnpd1', 'save_buffer': True, 'num_eval': 5, 'random_start': False, 'eval_starts': '/home/leonmkim/fish_leon/FISH/eval_starts/frankagym_pixels/FrankaInsertion-v1', 'num_valid_demos': None, 'load_checkpoint': True, 'checkpoint_epoch': 7500, 'load_residual_weight': False, 'checkpoint_root_dir': '/home/leonmkim/fish_leon/FISH', 'checkpoint_weight_dir': '/home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0', 'residual_weight': '/home/leonmkim/fish_leon/FISH/weights/frankagym_pixels/FrankaInsertion-v1/weight.pt', 'final_experiment_dir': './exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/2o1us5j0'}
14
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1
+ root_dir: /home/${oc.env:USER}/fish_leon
2
+ nstep: 3
3
+ seed: 41
4
+ dataset_shuffle_seed: ${seed}
5
+ device: cuda
6
+ save_video: true
7
+ save_buffer: true
8
+ use_tb: true
9
+ baseline: false
10
+ use_wandb: true
11
+ eval: true
12
+ process_contact_features: ${eval}
13
+ obs_type: pixels
14
+ use_color: true
15
+ use_depth: true
16
+ use_masks: false
17
+ mask_list:
18
+ - EE_obj_mask
19
+ mask_representation: channels
20
+ crop_hw:
21
+ - 144
22
+ - 144
23
+ crop_down_offset: 48
24
+ color_crop_type: null
25
+ depth_crop_type: null
26
+ segmask_crop_type: null
27
+ add_crop_binary_mask: false
28
+ add_coord_conv_map: false
29
+ use_context_color: false
30
+ use_context_depth: false
31
+ use_context_segmask: false
32
+ context_color_crop_type: null
33
+ context_depth_crop_type: null
34
+ context_segmask_crop_type: null
35
+ context_add_crop_binary_mask: false
36
+ context_add_coord_conv_map: false
37
+ use_contact_map: false
38
+ use_sdf_maps: false
39
+ use_normals_maps: false
40
+ which_objects: both
41
+ max_contact_prob: 0.1
42
+ max_depth: 2.0
43
+ grasped_dtc_max_value: 0.105
44
+ env_dtc_max_value: 0.425
45
+ grasped_normals_mask_max_dtc_value: 0.105
46
+ env_normals_mask_max_dtc_value: 0.425
47
+ clamp_dtc: true
48
+ dtc_adaptive_normalization: false
49
+ mask_normals_within_sdf: true
50
+ adaptive_normals_mask: true
51
+ learnable_contact_preprocess_params: false
52
+ contact_model_name: local_multitask_outhd64all_home_crop_h144w144d48_ctxt_seed_183386_epoch_9
53
+ contact_estimation_model_ckpt_path: ~/fish_leon/contact_estimation/artifacts/175604_2/checkpoints/epoch=09-val_loss=0.00.ckpt
54
+ num_eval: 20
55
+ debug_timestamps: false
56
+ open_loop: false
57
+ action_trajectories: true
58
+ stop_after_action: false
59
+ interpolation_frequency: 25
60
+ policy_frequency: 5
61
+ wait_for_new_camera_frames: true
62
+ random_start: false
63
+ eval_starts: ${root_dir}/FISH/eval_starts/${suite.name}_${obs_type}/${task_name}
64
+ train_demo_idxs_list_or_num: null
65
+ num_valid_demos: null
66
+ val_num_groups: 3
67
+ name_of_expert_demo: 112_240x320_all_twodim_left_to_right_annotated_start_idx_5hz_zstd7_EE_pxl_coords_expert_demos_imp_act
68
+ expert_dataset_dirpath: ${root_dir}/FISH/expert_demos/${suite.name}/${task_name}/${name_of_expert_demo}
69
+ expert_dataset: ${expert_dataset_dirpath}/demos.zarr
70
+ action_key: ${oc.if_else:${action_trajectories}, 'action_trajectory_${interpolation_frequency}hz',
71
+ 'action'}
72
+ semantic_demo_grouping_name: semantic_demo_grouping.yaml
73
+ semantic_demo_grouping: ${expert_dataset_dirpath}/${semantic_demo_grouping_name}
74
+ expert_dataset_config: ${expert_dataset_dirpath}/demo_config.yaml
75
+ bc_regularize: false
76
+ bc_weight_type: qfilter
77
+ load_checkpoint: ${agent.load_checkpoint}
78
+ wandb_run_id: '3465_0'
79
+ true_action_history: false
80
+ wandb_notes: null
81
+ checkpoint_epoch: 7500
82
+ load_residual_weight: false
83
+ checkpoint_root_dir: /home/${oc.env:USER}/fish_leon/FISH
84
+ checkpoint_weight_dir: ${checkpoint_root_dir}/exp_local/${suite.name}_${obs_type}/${task_name}/${wandb_run_id}
85
+ residual_weight: ${root_dir}/FISH/weights/${suite.name}_${obs_type}/${task_name}/weight.pt
86
+ experiment_dir: ./exp_local/${suite.name}_${obs_type}/${task_name}/${wandb_run_id}
87
+ final_experiment_dir: ${experiment_dir}/${oc.generate_run_id:}
88
+ agent:
89
+ _target_: agent.diffusion_policy.DiffusionPolicyAgent
90
+ name: diffusion_policy
91
+ load_checkpoint: ${eval}
92
+ device: ${device}
93
+ n_obs_steps: ${.config.policy_cfg.n_obs_steps}
94
+ suite_name: ${suite.name}
95
+ obs_type: ${obs_type}
96
+ enable_arm: ${eval}
97
+ enable_camera: ${eval}
98
+ use_tb: ${use_tb}
99
+ desired_image_shape:
100
+ - 13
101
+ - 180
102
+ - 240
103
+ orig_cam_shape:
104
+ - 3
105
+ - 240
106
+ - 320
107
+ config:
108
+ _target_: agent.diffusion_policy.DiffusionPolicyAgentConfig
109
+ compile: false
110
+ device: ${device}
111
+ cam_resize_shape: ${agent.desired_image_shape}
112
+ orig_cam_shape: ${agent.orig_cam_shape}
113
+ policy_frequency: ${policy_frequency}
114
+ interpolation_frequency: ${interpolation_frequency}
115
+ policy_cfg:
116
+ _target_: lerobot.common.policies.diffusion.configuration_diffusion.DiffusionConfig
117
+ n_obs_steps: 1
118
+ horizon: 36
119
+ n_action_steps: ${agent.config.policy_cfg.horizon}
120
+ input_shapes:
121
+ observation.image: ${agent.config.cam_resize_shape}
122
+ context_observation.image: ${agent.config.cam_resize_shape}
123
+ observation.state:
124
+ - 8
125
+ observation.action_history:
126
+ - 7
127
+ output_shapes:
128
+ action:
129
+ - 7
130
+ input_normalization_modes:
131
+ observation.image: mean_std
132
+ observation.state: min_max
133
+ observation.action_history: min_max
134
+ output_normalization_modes:
135
+ action: min_max
136
+ vision_backbone: resnet18
137
+ crop_distractors_tlhw: null
138
+ pretrained_backbone_weights: null
139
+ transforms:
140
+ - _target_: torchaug.transforms.RandomAffine
141
+ degrees:
142
+ - -5
143
+ - 5
144
+ translate:
145
+ - 0.05
146
+ - 0.05
147
+ batch_transform: true
148
+ num_chunks: -1
149
+ batch_inplace: true
150
+ - _target_: torchaug.transforms.RandomColorJitter
151
+ brightness: 0.3
152
+ contrast: 0.4
153
+ saturation: 0.5
154
+ hue: 0.08
155
+ batch_transform: true
156
+ num_chunks: -1
157
+ batch_inplace: true
158
+ use_group_norm: true
159
+ spatial_softmax_num_keypoints: 32
160
+ action_history_encoder_config:
161
+ _target_: lerobot.common.policies.diffusion.configuration_diffusion.Unet1dEncoderConfig
162
+ in_channels: 7
163
+ out_channels: 32
164
+ history_length: ${agent.config.policy_cfg.n_action_steps}
165
+ kernel_size: ${agent.config.policy_cfg.kernel_size}
166
+ downsample_kernel_size: 3
167
+ downsample_stride: 2
168
+ downsample_padding: 1
169
+ down_dims:
170
+ - 256
171
+ - 512
172
+ - 1024
173
+ kernel_size: 5
174
+ n_groups: 8
175
+ diffusion_step_embed_dim: 128
176
+ use_film_scale_modulation: true
177
+ noise_scheduler_type: DDIM
178
+ beta_schedule: squaredcos_cap_v2
179
+ beta_start: 0.0001
180
+ beta_end: 0.02
181
+ prediction_type: epsilon
182
+ clip_sample: true
183
+ clip_sample_range: 1.0
184
+ num_train_timesteps: 50
185
+ num_inference_steps: 10
186
+ do_mask_loss_for_padding: false
187
+ train_cfg:
188
+ _target_: utils.TrainConfig
189
+ lr: 0.0001
190
+ lr_scheduler: cosine
191
+ lr_warmup_steps: 500
192
+ adam_betas:
193
+ - 0.95
194
+ - 0.999
195
+ adam_eps: 1.0e-08
196
+ adam_weight_decay: 1.0e-06
197
+ grad_clip_norm: 10
198
+ offline_steps: ${num_train_frames_diffusion}
199
+ use_amp: true
200
+ observation_cfg:
201
+ _target_: agent.encoder.VisualFeatureSet
202
+ use_depth: ${use_depth}
203
+ use_color: ${use_color}
204
+ mask_input_dict:
205
+ _target_: agent.encoder.MaskInputDict
206
+ enable: ${use_masks}
207
+ representation: ${mask_representation}
208
+ mask_list: ${mask_list}
209
+ crop_input_config:
210
+ _target_: agent.encoder.CropInputConfig
211
+ color_crop_type: ${color_crop_type}
212
+ depth_crop_type: ${depth_crop_type}
213
+ segmask_crop_type: ${segmask_crop_type}
214
+ crop_hw: ${crop_hw}
215
+ crop_down_offset: ${crop_down_offset}
216
+ add_crop_binary_mask: ${add_crop_binary_mask}
217
+ add_coord_conv_map: ${add_coord_conv_map}
218
+ context_input_config:
219
+ _target_: agent.encoder.ContextInputConfig
220
+ use_color: ${use_context_color}
221
+ use_depth: ${use_context_depth}
222
+ mask_input_dict:
223
+ _target_: agent.encoder.MaskInputDict
224
+ enable: ${use_context_segmask}
225
+ representation: ${mask_representation}
226
+ mask_list: ${mask_list}
227
+ crop_input_config:
228
+ _target_: agent.encoder.CropInputConfig
229
+ color_crop_type: ${context_color_crop_type}
230
+ depth_crop_type: ${context_depth_crop_type}
231
+ segmask_crop_type: ${context_segmask_crop_type}
232
+ crop_hw: ${crop_hw}
233
+ crop_down_offset: ${crop_down_offset}
234
+ add_crop_binary_mask: ${context_add_crop_binary_mask}
235
+ add_coord_conv_map: ${context_add_coord_conv_map}
236
+ mask_soft_approx_scheduler_config:
237
+ _target_: agent.encoder.MaskSoftApproxSchedulerConfig
238
+ num_steps: 40000
239
+ initial_value: 10.0
240
+ final_value: 1000.0
241
+ interpolation_scheme: constant
242
+ use_contact_map: ${use_contact_map}
243
+ use_sdf_maps: ${use_sdf_maps}
244
+ use_normals_maps: ${use_normals_maps}
245
+ which_objects: ${which_objects}
246
+ grasped_dtc_max_value: ${grasped_dtc_max_value}
247
+ env_dtc_max_value: ${env_dtc_max_value}
248
+ grasped_normals_mask_max_dtc_value: ${grasped_normals_mask_max_dtc_value}
249
+ env_normals_mask_max_dtc_value: ${env_normals_mask_max_dtc_value}
250
+ clamp_dtc: ${clamp_dtc}
251
+ max_contact_prob: ${max_contact_prob}
252
+ mask_normals_within_sdf: ${mask_normals_within_sdf}
253
+ dtc_adaptive_normalization: ${dtc_adaptive_normalization}
254
+ adaptive_normals_mask: ${adaptive_normals_mask}
255
+ max_depth: ${max_depth}
256
+ image_shape: ${agent.desired_image_shape}
257
+ learnable_contact_preprocess_params: ${learnable_contact_preprocess_params}
258
+ learning_rate: ${agent.config.train_cfg.lr}
259
+ weight_decay: 0.0
260
+ contact_model_name: ${contact_model_name}
261
+ zero_centered: false
262
+ crop_distractors_tlhw: ${agent.config.policy_cfg.crop_distractors_tlhw}
263
+ suite:
264
+ suite: frankagym
265
+ name: frankagym
266
+ frame_stack: ${agent.n_obs_steps}
267
+ action_repeat: 1
268
+ discount: 0.99
269
+ hidden_dim: 1024
270
+ num_train_frames: 2010
271
+ num_seed_frames: 260
272
+ num_train_epochs: 5000
273
+ validate_every_epochs: 100
274
+ validate_diffusion_on_action_loss_every_epochs: 500
275
+ train_eval_diffusion_on_action_loss_every_epochs: 500
276
+ check_topk_every_epochs: 10
277
+ save_snapshot_every_epochs: 5000
278
+ eval_every_frames: 2000
279
+ num_eval_episodes: 5
280
+ save_snapshot: true
281
+ wait_for_user_to_start_episode: true
282
+ task_make_fn:
283
+ _target_: suite.frankagym.make
284
+ name: ${task_name}
285
+ height: 240
286
+ width: 320
287
+ frame_stack: ${suite.frame_stack}
288
+ action_repeat: ${suite.action_repeat}
289
+ seed: ${seed}
290
+ enable_arm: ${agent.enable_arm}
291
+ enable_gripper: ${enable_gripper}
292
+ start_with_gripper_open: ${start_with_gripper_open}
293
+ enable_camera: ${agent.enable_camera}
294
+ path_to_depth_extrinsics: ${path_to_depth_extrinsics}
295
+ contact_estimation_model_ckpt_path: ${contact_estimation_model_ckpt_path}
296
+ x_limit: ${x_limit}
297
+ y_limit: ${y_limit}
298
+ z_limit: ${z_limit}
299
+ device: ${device}
300
+ interpolation_frequency: ${interpolation_frequency}
301
+ policy_frequency: ${policy_frequency}
302
+ debug_timestamps: ${debug_timestamps}
303
+ stop_after_action: ${stop_after_action}
304
+ open_loop: ${open_loop}
305
+ wait_for_new_camera_frames: ${wait_for_new_camera_frames}
306
+ action_key: ${action_key}
307
+ action_trajectory_horizon: ${agent.config.policy_cfg.horizon}
308
+ action_trajectories: ${action_trajectories}
309
+ path_to_zarr_dataset: ${expert_dataset}
310
+ agent_policy_cfg: ???
311
+ true_action_history: ${true_action_history}
312
+ num_train_frames_bc: 50000
313
+ num_train_frames_drq: 1100000
314
+ stddev_schedule_drq: linear(1.0,0.1,100000)
315
+ task_name: FrankaInsertion-v1
316
+ num_train_frames_vinn: 25000
317
+ num_train_frames_diffusion: 1000000
318
+ num_train_epochs_bc: 5000
319
+ num_train_epochs_diffusion: 5000
320
+ validate_every_epochs_bc: 5
321
+ validate_every_epochs_diffusion: 25
322
+ validate_diffusion_on_action_loss_every_epochs: 50
323
+ train_eval_diffusion_on_action_loss_every_epochs: 500
324
+ check_topk_every_epochs: 5
325
+ check_topk_every_epochs_diffusion: ${validate_diffusion_on_action_loss_every_epochs}
326
+ save_snapshot_every_epochs_diffusion: 5000
327
+ x_limit:
328
+ - 0.2
329
+ - 0.7
330
+ y_limit:
331
+ - -0.4
332
+ - 0.4
333
+ z_limit:
334
+ - -0.05
335
+ - 0.55
336
+ home_displacement:
337
+ - 0.55
338
+ - 0.0
339
+ - 0.55
340
+ - 180.0
341
+ - 0.0
342
+ - 0.0
343
+ enable_gripper: true
344
+ start_with_gripper_open: true
345
+ offset_mask:
346
+ - 1
347
+ - 1
348
+ - 1
349
+ - 1
350
+ - 1
351
+ - 1
352
+ path_to_depth_extrinsics: ~/fish_leon/FISH/cfgs/camera_poses/camera_poses_L515/20240904-122305/color_tf_world.npy
mo0b6mh9/.hydra/hydra.yaml ADDED
@@ -0,0 +1,169 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ hydra:
2
+ run:
3
+ dir: ${final_experiment_dir}
4
+ sweep:
5
+ dir: ${final_experiment_dir}
6
+ subdir: ${hydra.job.num}
7
+ launcher:
8
+ submitit_folder: ${final_experiment_dir}/.slurm
9
+ timeout_min: 60
10
+ cpus_per_task: null
11
+ gpus_per_node: null
12
+ tasks_per_node: 1
13
+ mem_gb: null
14
+ nodes: 1
15
+ name: ${hydra.job.name}
16
+ stderr_to_stdout: false
17
+ _target_: hydra_plugins.hydra_submitit_launcher.submitit_launcher.LocalLauncher
18
+ sweeper:
19
+ _target_: hydra._internal.core_plugins.basic_sweeper.BasicSweeper
20
+ max_batch_size: null
21
+ params: null
22
+ help:
23
+ app_name: ${hydra.job.name}
24
+ header: '${hydra.help.app_name} is powered by Hydra.
25
+
26
+ '
27
+ footer: 'Powered by Hydra (https://hydra.cc)
28
+
29
+ Use --hydra-help to view Hydra specific help
30
+
31
+ '
32
+ template: '${hydra.help.header}
33
+
34
+ == Configuration groups ==
35
+
36
+ Compose your configuration from those groups (group=option)
37
+
38
+
39
+ $APP_CONFIG_GROUPS
40
+
41
+
42
+ == Config ==
43
+
44
+ Override anything in the config (foo.bar=value)
45
+
46
+
47
+ $CONFIG
48
+
49
+
50
+ ${hydra.help.footer}
51
+
52
+ '
53
+ hydra_help:
54
+ template: 'Hydra (${hydra.runtime.version})
55
+
56
+ See https://hydra.cc for more info.
57
+
58
+
59
+ == Flags ==
60
+
61
+ $FLAGS_HELP
62
+
63
+
64
+ == Configuration groups ==
65
+
66
+ Compose your configuration from those groups (For example, append hydra/job_logging=disabled
67
+ to command line)
68
+
69
+
70
+ $HYDRA_CONFIG_GROUPS
71
+
72
+
73
+ Use ''--cfg hydra'' to Show the Hydra config.
74
+
75
+ '
76
+ hydra_help: ???
77
+ hydra_logging:
78
+ version: 1
79
+ formatters:
80
+ simple:
81
+ format: '[%(asctime)s][HYDRA] %(message)s'
82
+ handlers:
83
+ console:
84
+ class: logging.StreamHandler
85
+ formatter: simple
86
+ stream: ext://sys.stdout
87
+ root:
88
+ level: INFO
89
+ handlers:
90
+ - console
91
+ loggers:
92
+ logging_example:
93
+ level: DEBUG
94
+ disable_existing_loggers: false
95
+ job_logging:
96
+ version: 1
97
+ formatters:
98
+ simple:
99
+ format: '[%(asctime)s][%(name)s][%(levelname)s] - %(message)s'
100
+ handlers:
101
+ console:
102
+ class: logging.StreamHandler
103
+ formatter: simple
104
+ stream: ext://sys.stdout
105
+ file:
106
+ class: logging.FileHandler
107
+ formatter: simple
108
+ filename: ${hydra.runtime.output_dir}/${hydra.job.name}.log
109
+ root:
110
+ level: INFO
111
+ handlers:
112
+ - console
113
+ - file
114
+ disable_existing_loggers: false
115
+ env: {}
116
+ mode: RUN
117
+ searchpath: []
118
+ callbacks: {}
119
+ output_subdir: .hydra
120
+ overrides:
121
+ hydra:
122
+ - hydra.mode=RUN
123
+ task:
124
+ - agent=diffusion
125
+ - suite=frankagym
126
+ - suite/frankagym_task@_global_=insertion
127
+ job:
128
+ name: eval_robot
129
+ chdir: true
130
+ override_dirname: agent=diffusion,suite/frankagym_task@_global_=insertion,suite=frankagym
131
+ id: ???
132
+ num: ???
133
+ config_name: config_eval
134
+ env_set: {}
135
+ env_copy: []
136
+ config:
137
+ override_dirname:
138
+ kv_sep: '='
139
+ item_sep: ','
140
+ exclude_keys: []
141
+ runtime:
142
+ version: 1.3.2
143
+ version_base: '1.1'
144
+ cwd: /home/leonmkim/fish_leon/FISH
145
+ config_sources:
146
+ - path: hydra.conf
147
+ schema: pkg
148
+ provider: hydra
149
+ - path: /home/leonmkim/fish_leon/FISH/cfgs
150
+ schema: file
151
+ provider: main
152
+ - path: ''
153
+ schema: structured
154
+ provider: schema
155
+ output_dir: /home/leonmkim/fish_leon/FISH/exp_local/frankagym_pixels/FrankaInsertion-v1/3465_0/mo0b6mh9
156
+ choices:
157
+ suite: frankagym
158
+ suite/frankagym_task@_global_: insertion
159
+ agent: diffusion
160
+ hydra/env: default
161
+ hydra/callbacks: null
162
+ hydra/job_logging: default
163
+ hydra/hydra_logging: default
164
+ hydra/hydra_help: default
165
+ hydra/help: default
166
+ hydra/sweeper: basic
167
+ hydra/launcher: submitit_local
168
+ hydra/output: default
169
+ verbose: false
mo0b6mh9/.hydra/overrides.yaml ADDED
@@ -0,0 +1,3 @@
 
 
 
 
1
+ - agent=diffusion
2
+ - suite=frankagym
3
+ - suite/frankagym_task@_global_=insertion
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+ size 200
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