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  1. README.md +60 -0
  2. all_results.json +9 -0
  3. checkpoint-190/config.json +29 -0
  4. checkpoint-190/generation_config.json +12 -0
  5. checkpoint-190/global_step190/bf16_zero_pp_rank_0_mp_rank_00_optim_states.pt +3 -0
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  44. special_tokens_map.json +17 -0
  45. tokenizer.json +0 -0
  46. tokenizer_config.json +2065 -0
  47. train_results.json +9 -0
  48. trainer_log.jsonl +191 -0
  49. trainer_state.json +1563 -0
  50. training_args.bin +3 -0
README.md ADDED
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+ ---
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+ license: other
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+ base_model: meta-llama/Meta-Llama-3-8B-Instruct
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+ tags:
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+ - llama-factory
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+ - full
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+ - generated_from_trainer
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+ model-index:
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+ - name: train_2024-07-16-09-46-28_llama3
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+ results: []
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+ ---
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+
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+ <!-- This model card has been generated automatically according to the information the Trainer had access to. You
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+ should probably proofread and complete it, then remove this comment. -->
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+
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+ # train_2024-07-16-09-46-28_llama3
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+
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+ This model is a fine-tuned version of [meta-llama/Meta-Llama-3-8B-Instruct](https://huggingface.co/meta-llama/Meta-Llama-3-8B-Instruct) on the truth_train_0716 dataset.
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+
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+ ## Model description
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+
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+ More information needed
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+
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+ ## Intended uses & limitations
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+
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+ More information needed
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+
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+ ## Training and evaluation data
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+
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+ More information needed
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+
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+ ## Training procedure
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+
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+ ### Training hyperparameters
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+
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+ The following hyperparameters were used during training:
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+ - learning_rate: 5e-06
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+ - train_batch_size: 2
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+ - eval_batch_size: 8
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+ - seed: 42
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+ - distributed_type: multi-GPU
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+ - num_devices: 8
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+ - gradient_accumulation_steps: 8
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+ - total_train_batch_size: 128
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+ - total_eval_batch_size: 64
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+ - optimizer: Adam with betas=(0.9,0.999) and epsilon=1e-08
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+ - lr_scheduler_type: cosine
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+ - lr_scheduler_warmup_steps: 10
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+ - num_epochs: 5.0
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+
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+ ### Training results
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+
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+
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+
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+ ### Framework versions
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+
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+ - Transformers 4.42.3
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+ - Pytorch 2.3.0a0+ebedce2
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+ - Datasets 2.20.0
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+ - Tokenizers 0.19.1
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+ "total_flos": 5.441370708980531e+16,
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+ "train_loss": 0.5078434096239538,
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+ "train_runtime": 2562.642,
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+ "train_samples_per_second": 9.693,
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+ "train_steps_per_second": 0.074
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+ }
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+ "architectures": [
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+ "LlamaForCausalLM"
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+ }
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checkpoint-190/zero_to_fp32.py ADDED
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1
+ #!/usr/bin/env python
2
+
3
+ # Copyright (c) Microsoft Corporation.
4
+ # SPDX-License-Identifier: Apache-2.0
5
+
6
+ # DeepSpeed Team
7
+
8
+ # This script extracts fp32 consolidated weights from a zero 1, 2 and 3 DeepSpeed checkpoints. It gets
9
+ # copied into the top level checkpoint dir, so the user can easily do the conversion at any point in
10
+ # the future. Once extracted, the weights don't require DeepSpeed and can be used in any
11
+ # application.
12
+ #
13
+ # example: python zero_to_fp32.py . pytorch_model.bin
14
+
15
+ import argparse
16
+ import torch
17
+ import glob
18
+ import math
19
+ import os
20
+ import re
21
+ from collections import OrderedDict
22
+ from dataclasses import dataclass
23
+
24
+ # while this script doesn't use deepspeed to recover data, since the checkpoints are pickled with
25
+ # DeepSpeed data structures it has to be available in the current python environment.
26
+ from deepspeed.utils import logger
27
+ from deepspeed.checkpoint.constants import (DS_VERSION, OPTIMIZER_STATE_DICT, SINGLE_PARTITION_OF_FP32_GROUPS,
28
+ FP32_FLAT_GROUPS, ZERO_STAGE, PARTITION_COUNT, PARAM_SHAPES, BUFFER_NAMES,
29
+ FROZEN_PARAM_SHAPES, FROZEN_PARAM_FRAGMENTS)
30
+
31
+
32
+ @dataclass
33
+ class zero_model_state:
34
+ buffers: dict()
35
+ param_shapes: dict()
36
+ shared_params: list
37
+ ds_version: int
38
+ frozen_param_shapes: dict()
39
+ frozen_param_fragments: dict()
40
+
41
+
42
+ debug = 0
43
+
44
+ # load to cpu
45
+ device = torch.device('cpu')
46
+
47
+
48
+ def atoi(text):
49
+ return int(text) if text.isdigit() else text
50
+
51
+
52
+ def natural_keys(text):
53
+ '''
54
+ alist.sort(key=natural_keys) sorts in human order
55
+ http://nedbatchelder.com/blog/200712/human_sorting.html
56
+ (See Toothy's implementation in the comments)
57
+ '''
58
+ return [atoi(c) for c in re.split(r'(\d+)', text)]
59
+
60
+
61
+ def get_model_state_file(checkpoint_dir, zero_stage):
62
+ if not os.path.isdir(checkpoint_dir):
63
+ raise FileNotFoundError(f"Directory '{checkpoint_dir}' doesn't exist")
64
+
65
+ # there should be only one file
66
+ if zero_stage <= 2:
67
+ file = os.path.join(checkpoint_dir, "mp_rank_00_model_states.pt")
68
+ elif zero_stage == 3:
69
+ file = os.path.join(checkpoint_dir, "zero_pp_rank_0_mp_rank_00_model_states.pt")
70
+
71
+ if not os.path.exists(file):
72
+ raise FileNotFoundError(f"can't find model states file at '{file}'")
73
+
74
+ return file
75
+
76
+
77
+ def get_checkpoint_files(checkpoint_dir, glob_pattern):
78
+ # XXX: need to test that this simple glob rule works for multi-node setup too
79
+ ckpt_files = sorted(glob.glob(os.path.join(checkpoint_dir, glob_pattern)), key=natural_keys)
80
+
81
+ if len(ckpt_files) == 0:
82
+ raise FileNotFoundError(f"can't find {glob_pattern} files in directory '{checkpoint_dir}'")
83
+
84
+ return ckpt_files
85
+
86
+
87
+ def get_optim_files(checkpoint_dir):
88
+ return get_checkpoint_files(checkpoint_dir, "*_optim_states.pt")
89
+
90
+
91
+ def get_model_state_files(checkpoint_dir):
92
+ return get_checkpoint_files(checkpoint_dir, "*_model_states.pt")
93
+
94
+
95
+ def parse_model_states(files):
96
+ zero_model_states = []
97
+ for file in files:
98
+ state_dict = torch.load(file, map_location=device)
99
+
100
+ if BUFFER_NAMES not in state_dict:
101
+ raise ValueError(f"{file} is not a model state checkpoint")
102
+ buffer_names = state_dict[BUFFER_NAMES]
103
+ if debug:
104
+ print("Found buffers:", buffer_names)
105
+
106
+ # recover just the buffers while restoring them to fp32 if they were saved in fp16
107
+ buffers = {k: v.float() for k, v in state_dict["module"].items() if k in buffer_names}
108
+ param_shapes = state_dict[PARAM_SHAPES]
109
+
110
+ # collect parameters that are included in param_shapes
111
+ param_names = []
112
+ for s in param_shapes:
113
+ for name in s.keys():
114
+ param_names.append(name)
115
+
116
+ # update with frozen parameters
117
+ frozen_param_shapes = state_dict.get(FROZEN_PARAM_SHAPES, None)
118
+ if frozen_param_shapes is not None:
119
+ if debug:
120
+ print(f"Found frozen_param_shapes: {frozen_param_shapes}")
121
+ param_names += list(frozen_param_shapes.keys())
122
+
123
+ # handle shared params
124
+ shared_params = [[k, v] for k, v in state_dict["shared_params"].items()]
125
+
126
+ ds_version = state_dict.get(DS_VERSION, None)
127
+
128
+ frozen_param_fragments = state_dict.get(FROZEN_PARAM_FRAGMENTS, None)
129
+
130
+ z_model_state = zero_model_state(buffers=buffers,
131
+ param_shapes=param_shapes,
132
+ shared_params=shared_params,
133
+ ds_version=ds_version,
134
+ frozen_param_shapes=frozen_param_shapes,
135
+ frozen_param_fragments=frozen_param_fragments)
136
+ zero_model_states.append(z_model_state)
137
+
138
+ return zero_model_states
139
+
140
+
141
+ def parse_optim_states(files, ds_checkpoint_dir):
142
+
143
+ total_files = len(files)
144
+ state_dicts = []
145
+ for f in files:
146
+ state_dict = torch.load(f, map_location=device)
147
+ # immediately discard the potentially huge 2 optimizer states as we only care for fp32 master weights
148
+ # and also handle the case where it was already removed by another helper script
149
+ state_dict["optimizer_state_dict"].pop("optimizer_state_dict", None)
150
+ state_dicts.append(state_dict)
151
+
152
+ if not ZERO_STAGE in state_dicts[0][OPTIMIZER_STATE_DICT]:
153
+ raise ValueError(f"{files[0]} is not a zero checkpoint")
154
+ zero_stage = state_dicts[0][OPTIMIZER_STATE_DICT][ZERO_STAGE]
155
+ world_size = state_dicts[0][OPTIMIZER_STATE_DICT][PARTITION_COUNT]
156
+
157
+ # For ZeRO-2 each param group can have different partition_count as data parallelism for expert
158
+ # parameters can be different from data parallelism for non-expert parameters. So we can just
159
+ # use the max of the partition_count to get the dp world_size.
160
+
161
+ if type(world_size) is list:
162
+ world_size = max(world_size)
163
+
164
+ if world_size != total_files:
165
+ raise ValueError(
166
+ f"Expected {world_size} of '*_optim_states.pt' under '{ds_checkpoint_dir}' but found {total_files} files. "
167
+ "Possibly due to an overwrite of an old checkpoint, or a checkpoint didn't get saved by one or more processes."
168
+ )
169
+
170
+ # the groups are named differently in each stage
171
+ if zero_stage <= 2:
172
+ fp32_groups_key = SINGLE_PARTITION_OF_FP32_GROUPS
173
+ elif zero_stage == 3:
174
+ fp32_groups_key = FP32_FLAT_GROUPS
175
+ else:
176
+ raise ValueError(f"unknown zero stage {zero_stage}")
177
+
178
+ if zero_stage <= 2:
179
+ fp32_flat_groups = [state_dicts[i][OPTIMIZER_STATE_DICT][fp32_groups_key] for i in range(len(state_dicts))]
180
+ elif zero_stage == 3:
181
+ # if there is more than one param group, there will be multiple flattened tensors - one
182
+ # flattened tensor per group - for simplicity merge them into a single tensor
183
+ #
184
+ # XXX: could make the script more memory efficient for when there are multiple groups - it
185
+ # will require matching the sub-lists of param_shapes for each param group flattened tensor
186
+
187
+ fp32_flat_groups = [
188
+ torch.cat(state_dicts[i][OPTIMIZER_STATE_DICT][fp32_groups_key], 0) for i in range(len(state_dicts))
189
+ ]
190
+
191
+ return zero_stage, world_size, fp32_flat_groups
192
+
193
+
194
+ def _get_fp32_state_dict_from_zero_checkpoint(ds_checkpoint_dir, exclude_frozen_parameters):
195
+ """
196
+ Returns fp32 state_dict reconstructed from ds checkpoint
197
+
198
+ Args:
199
+ - ``ds_checkpoint_dir``: path to the deepspeed checkpoint folder (where the optimizer files are)
200
+
201
+ """
202
+ print(f"Processing zero checkpoint '{ds_checkpoint_dir}'")
203
+
204
+ optim_files = get_optim_files(ds_checkpoint_dir)
205
+ zero_stage, world_size, fp32_flat_groups = parse_optim_states(optim_files, ds_checkpoint_dir)
206
+ print(f"Detected checkpoint of type zero stage {zero_stage}, world_size: {world_size}")
207
+
208
+ model_files = get_model_state_files(ds_checkpoint_dir)
209
+
210
+ zero_model_states = parse_model_states(model_files)
211
+ print(f'Parsing checkpoint created by deepspeed=={zero_model_states[0].ds_version}')
212
+
213
+ if zero_stage <= 2:
214
+ return _get_fp32_state_dict_from_zero2_checkpoint(world_size, fp32_flat_groups, zero_model_states,
215
+ exclude_frozen_parameters)
216
+ elif zero_stage == 3:
217
+ return _get_fp32_state_dict_from_zero3_checkpoint(world_size, fp32_flat_groups, zero_model_states,
218
+ exclude_frozen_parameters)
219
+
220
+
221
+ def _zero2_merge_frozen_params(state_dict, zero_model_states):
222
+ if zero_model_states[0].frozen_param_shapes is None or len(zero_model_states[0].frozen_param_shapes) == 0:
223
+ return
224
+
225
+ frozen_param_shapes = zero_model_states[0].frozen_param_shapes
226
+ frozen_param_fragments = zero_model_states[0].frozen_param_fragments
227
+
228
+ if debug:
229
+ num_elem = sum(s.numel() for s in frozen_param_shapes.values())
230
+ print(f'rank 0: {FROZEN_PARAM_SHAPES}.numel = {num_elem}')
231
+
232
+ wanted_params = len(frozen_param_shapes)
233
+ wanted_numel = sum(s.numel() for s in frozen_param_shapes.values())
234
+ avail_numel = sum([p.numel() for p in frozen_param_fragments.values()])
235
+ print(f'Frozen params: Have {avail_numel} numels to process.')
236
+ print(f'Frozen params: Need {wanted_numel} numels in {wanted_params} params')
237
+
238
+ total_params = 0
239
+ total_numel = 0
240
+ for name, shape in frozen_param_shapes.items():
241
+ total_params += 1
242
+ unpartitioned_numel = shape.numel()
243
+ total_numel += unpartitioned_numel
244
+
245
+ state_dict[name] = frozen_param_fragments[name]
246
+
247
+ if debug:
248
+ print(f"{name} full shape: {shape} unpartitioned numel {unpartitioned_numel} ")
249
+
250
+ print(f"Reconstructed Frozen fp32 state dict with {total_params} params {total_numel} elements")
251
+
252
+
253
+ def _has_callable(obj, fn):
254
+ attr = getattr(obj, fn, None)
255
+ return callable(attr)
256
+
257
+
258
+ def _zero2_merge_trainable_params(state_dict, world_size, fp32_flat_groups, zero_model_states):
259
+ param_shapes = zero_model_states[0].param_shapes
260
+
261
+ # Reconstruction protocol:
262
+ #
263
+ # XXX: document this
264
+
265
+ if debug:
266
+ for i in range(world_size):
267
+ for j in range(len(fp32_flat_groups[0])):
268
+ print(f"{FP32_FLAT_GROUPS}[{i}][{j}].shape={fp32_flat_groups[i][j].shape}")
269
+
270
+ # XXX: memory usage doubles here (zero2)
271
+ num_param_groups = len(fp32_flat_groups[0])
272
+ merged_single_partition_of_fp32_groups = []
273
+ for i in range(num_param_groups):
274
+ merged_partitions = [sd[i] for sd in fp32_flat_groups]
275
+ full_single_fp32_vector = torch.cat(merged_partitions, 0)
276
+ merged_single_partition_of_fp32_groups.append(full_single_fp32_vector)
277
+ avail_numel = sum(
278
+ [full_single_fp32_vector.numel() for full_single_fp32_vector in merged_single_partition_of_fp32_groups])
279
+
280
+ if debug:
281
+ wanted_params = sum([len(shapes) for shapes in param_shapes])
282
+ wanted_numel = sum([sum(shape.numel() for shape in shapes.values()) for shapes in param_shapes])
283
+ # not asserting if there is a mismatch due to possible padding
284
+ print(f"Have {avail_numel} numels to process.")
285
+ print(f"Need {wanted_numel} numels in {wanted_params} params.")
286
+
287
+ # params
288
+ # XXX: for huge models that can't fit into the host's RAM we will have to recode this to support
289
+ # out-of-core computing solution
290
+ total_numel = 0
291
+ total_params = 0
292
+ for shapes, full_single_fp32_vector in zip(param_shapes, merged_single_partition_of_fp32_groups):
293
+ offset = 0
294
+ avail_numel = full_single_fp32_vector.numel()
295
+ for name, shape in shapes.items():
296
+
297
+ unpartitioned_numel = shape.numel() if _has_callable(shape, 'numel') else math.prod(shape)
298
+ total_numel += unpartitioned_numel
299
+ total_params += 1
300
+
301
+ if debug:
302
+ print(f"{name} full shape: {shape} unpartitioned numel {unpartitioned_numel} ")
303
+ state_dict[name] = full_single_fp32_vector.narrow(0, offset, unpartitioned_numel).view(shape)
304
+ offset += unpartitioned_numel
305
+
306
+ # Z2 started to align to 2*world_size to improve nccl performance. Therefore both offset and
307
+ # avail_numel can differ by anywhere between 0..2*world_size. Due to two unrelated complex
308
+ # paddings performed in the code it's almost impossible to predict the exact numbers w/o the
309
+ # live optimizer object, so we are checking that the numbers are within the right range
310
+ align_to = 2 * world_size
311
+
312
+ def zero2_align(x):
313
+ return align_to * math.ceil(x / align_to)
314
+
315
+ if debug:
316
+ print(f"original offset={offset}, avail_numel={avail_numel}")
317
+
318
+ offset = zero2_align(offset)
319
+ avail_numel = zero2_align(avail_numel)
320
+
321
+ if debug:
322
+ print(f"aligned offset={offset}, avail_numel={avail_numel}")
323
+
324
+ # Sanity check
325
+ if offset != avail_numel:
326
+ raise ValueError(f"consumed {offset} numels out of {avail_numel} - something is wrong")
327
+
328
+ print(f"Reconstructed fp32 state dict with {total_params} params {total_numel} elements")
329
+
330
+
331
+ def _get_fp32_state_dict_from_zero2_checkpoint(world_size, fp32_flat_groups, zero_model_states,
332
+ exclude_frozen_parameters):
333
+ state_dict = OrderedDict()
334
+
335
+ # buffers
336
+ buffers = zero_model_states[0].buffers
337
+ state_dict.update(buffers)
338
+ if debug:
339
+ print(f"added {len(buffers)} buffers")
340
+
341
+ if not exclude_frozen_parameters:
342
+ _zero2_merge_frozen_params(state_dict, zero_model_states)
343
+
344
+ _zero2_merge_trainable_params(state_dict, world_size, fp32_flat_groups, zero_model_states)
345
+
346
+ # recover shared parameters
347
+ for pair in zero_model_states[0].shared_params:
348
+ if pair[1] in state_dict:
349
+ state_dict[pair[0]] = state_dict[pair[1]]
350
+
351
+ return state_dict
352
+
353
+
354
+ def zero3_partitioned_param_info(unpartitioned_numel, world_size):
355
+ remainder = unpartitioned_numel % world_size
356
+ padding_numel = (world_size - remainder) if remainder else 0
357
+ partitioned_numel = math.ceil(unpartitioned_numel / world_size)
358
+ return partitioned_numel, padding_numel
359
+
360
+
361
+ def _zero3_merge_frozen_params(state_dict, world_size, zero_model_states):
362
+ if zero_model_states[0].frozen_param_shapes is None or len(zero_model_states[0].frozen_param_shapes) == 0:
363
+ return
364
+
365
+ if debug:
366
+ for i in range(world_size):
367
+ num_elem = sum(s.numel() for s in zero_model_states[i].frozen_param_fragments.values())
368
+ print(f'rank {i}: {FROZEN_PARAM_SHAPES}.numel = {num_elem}')
369
+
370
+ frozen_param_shapes = zero_model_states[0].frozen_param_shapes
371
+ wanted_params = len(frozen_param_shapes)
372
+ wanted_numel = sum(s.numel() for s in frozen_param_shapes.values())
373
+ avail_numel = sum([p.numel() for p in zero_model_states[0].frozen_param_fragments.values()]) * world_size
374
+ print(f'Frozen params: Have {avail_numel} numels to process.')
375
+ print(f'Frozen params: Need {wanted_numel} numels in {wanted_params} params')
376
+
377
+ total_params = 0
378
+ total_numel = 0
379
+ for name, shape in zero_model_states[0].frozen_param_shapes.items():
380
+ total_params += 1
381
+ unpartitioned_numel = shape.numel()
382
+ total_numel += unpartitioned_numel
383
+
384
+ param_frags = tuple(model_state.frozen_param_fragments[name] for model_state in zero_model_states)
385
+ state_dict[name] = torch.cat(param_frags, 0).narrow(0, 0, unpartitioned_numel).view(shape)
386
+
387
+ partitioned_numel, partitioned_padding_numel = zero3_partitioned_param_info(unpartitioned_numel, world_size)
388
+
389
+ if debug:
390
+ print(
391
+ f"Frozen params: {total_params} {name} full shape: {shape} partition0 numel={partitioned_numel} partitioned_padding_numel={partitioned_padding_numel}"
392
+ )
393
+
394
+ print(f"Reconstructed Frozen fp32 state dict with {total_params} params {total_numel} elements")
395
+
396
+
397
+ def _zero3_merge_trainable_params(state_dict, world_size, fp32_flat_groups, zero_model_states):
398
+ param_shapes = zero_model_states[0].param_shapes
399
+ avail_numel = fp32_flat_groups[0].numel() * world_size
400
+ # Reconstruction protocol: For zero3 we need to zip the partitions together at boundary of each
401
+ # param, re-consolidating each param, while dealing with padding if any
402
+
403
+ # merge list of dicts, preserving order
404
+ param_shapes = {k: v for d in param_shapes for k, v in d.items()}
405
+
406
+ if debug:
407
+ for i in range(world_size):
408
+ print(f"{FP32_FLAT_GROUPS}[{i}].shape={fp32_flat_groups[i].shape}")
409
+
410
+ wanted_params = len(param_shapes)
411
+ wanted_numel = sum(shape.numel() for shape in param_shapes.values())
412
+ # not asserting if there is a mismatch due to possible padding
413
+ avail_numel = fp32_flat_groups[0].numel() * world_size
414
+ print(f"Trainable params: Have {avail_numel} numels to process.")
415
+ print(f"Trainable params: Need {wanted_numel} numels in {wanted_params} params.")
416
+
417
+ # params
418
+ # XXX: for huge models that can't fit into the host's RAM we will have to recode this to support
419
+ # out-of-core computing solution
420
+ offset = 0
421
+ total_numel = 0
422
+ total_params = 0
423
+ for name, shape in param_shapes.items():
424
+
425
+ unpartitioned_numel = shape.numel()
426
+ total_numel += unpartitioned_numel
427
+ total_params += 1
428
+
429
+ partitioned_numel, partitioned_padding_numel = zero3_partitioned_param_info(unpartitioned_numel, world_size)
430
+
431
+ if debug:
432
+ print(
433
+ f"Trainable params: {total_params} {name} full shape: {shape} partition0 numel={partitioned_numel} partitioned_padding_numel={partitioned_padding_numel}"
434
+ )
435
+
436
+ # XXX: memory usage doubles here
437
+ state_dict[name] = torch.cat(
438
+ tuple(fp32_flat_groups[i].narrow(0, offset, partitioned_numel) for i in range(world_size)),
439
+ 0).narrow(0, 0, unpartitioned_numel).view(shape)
440
+ offset += partitioned_numel
441
+
442
+ offset *= world_size
443
+
444
+ # Sanity check
445
+ if offset != avail_numel:
446
+ raise ValueError(f"consumed {offset} numels out of {avail_numel} - something is wrong")
447
+
448
+ print(f"Reconstructed Trainable fp32 state dict with {total_params} params {total_numel} elements")
449
+
450
+
451
+ def _get_fp32_state_dict_from_zero3_checkpoint(world_size, fp32_flat_groups, zero_model_states,
452
+ exclude_frozen_parameters):
453
+ state_dict = OrderedDict()
454
+
455
+ # buffers
456
+ buffers = zero_model_states[0].buffers
457
+ state_dict.update(buffers)
458
+ if debug:
459
+ print(f"added {len(buffers)} buffers")
460
+
461
+ if not exclude_frozen_parameters:
462
+ _zero3_merge_frozen_params(state_dict, world_size, zero_model_states)
463
+
464
+ _zero3_merge_trainable_params(state_dict, world_size, fp32_flat_groups, zero_model_states)
465
+
466
+ # recover shared parameters
467
+ for pair in zero_model_states[0].shared_params:
468
+ if pair[1] in state_dict:
469
+ state_dict[pair[0]] = state_dict[pair[1]]
470
+
471
+ return state_dict
472
+
473
+
474
+ def get_fp32_state_dict_from_zero_checkpoint(checkpoint_dir, tag=None, exclude_frozen_parameters=False):
475
+ """
476
+ Convert ZeRO 2 or 3 checkpoint into a single fp32 consolidated state_dict that can be loaded with
477
+ ``load_state_dict()`` and used for training without DeepSpeed or shared with others, for example
478
+ via a model hub.
479
+
480
+ Args:
481
+ - ``checkpoint_dir``: path to the desired checkpoint folder
482
+ - ``tag``: checkpoint tag used as a unique identifier for checkpoint. If not provided will attempt to load tag in 'latest' file. e.g., ``global_step14``
483
+ - ``exclude_frozen_parameters``: exclude frozen parameters
484
+
485
+ Returns:
486
+ - pytorch ``state_dict``
487
+
488
+ Note: this approach may not work if your application doesn't have sufficient free CPU memory and
489
+ you may need to use the offline approach using the ``zero_to_fp32.py`` script that is saved with
490
+ the checkpoint.
491
+
492
+ A typical usage might be ::
493
+
494
+ from deepspeed.utils.zero_to_fp32 import get_fp32_state_dict_from_zero_checkpoint
495
+ # do the training and checkpoint saving
496
+ state_dict = get_fp32_state_dict_from_zero_checkpoint(checkpoint_dir) # already on cpu
497
+ model = model.cpu() # move to cpu
498
+ model.load_state_dict(state_dict)
499
+ # submit to model hub or save the model to share with others
500
+
501
+ In this example the ``model`` will no longer be usable in the deepspeed context of the same
502
+ application. i.e. you will need to re-initialize the deepspeed engine, since
503
+ ``model.load_state_dict(state_dict)`` will remove all the deepspeed magic from it.
504
+
505
+ If you want it all done for you, use ``load_state_dict_from_zero_checkpoint`` instead.
506
+
507
+ """
508
+ if tag is None:
509
+ latest_path = os.path.join(checkpoint_dir, 'latest')
510
+ if os.path.isfile(latest_path):
511
+ with open(latest_path, 'r') as fd:
512
+ tag = fd.read().strip()
513
+ else:
514
+ raise ValueError(f"Unable to find 'latest' file at {latest_path}")
515
+
516
+ ds_checkpoint_dir = os.path.join(checkpoint_dir, tag)
517
+
518
+ if not os.path.isdir(ds_checkpoint_dir):
519
+ raise FileNotFoundError(f"Directory '{ds_checkpoint_dir}' doesn't exist")
520
+
521
+ return _get_fp32_state_dict_from_zero_checkpoint(ds_checkpoint_dir, exclude_frozen_parameters)
522
+
523
+
524
+ def convert_zero_checkpoint_to_fp32_state_dict(checkpoint_dir, output_file, tag=None, exclude_frozen_parameters=False):
525
+ """
526
+ Convert ZeRO 2 or 3 checkpoint into a single fp32 consolidated ``state_dict`` file that can be
527
+ loaded with ``torch.load(file)`` + ``load_state_dict()`` and used for training without DeepSpeed.
528
+
529
+ Args:
530
+ - ``checkpoint_dir``: path to the desired checkpoint folder. (one that contains the tag-folder, like ``global_step14``)
531
+ - ``output_file``: path to the pytorch fp32 state_dict output file (e.g. path/pytorch_model.bin)
532
+ - ``tag``: checkpoint tag used as a unique identifier for checkpoint. If not provided will attempt to load tag in the file named ``latest`` in the checkpoint folder, e.g., ``global_step14``
533
+ - ``exclude_frozen_parameters``: exclude frozen parameters
534
+ """
535
+
536
+ state_dict = get_fp32_state_dict_from_zero_checkpoint(checkpoint_dir, tag, exclude_frozen_parameters)
537
+ print(f"Saving fp32 state dict to {output_file}")
538
+ torch.save(state_dict, output_file)
539
+
540
+
541
+ def load_state_dict_from_zero_checkpoint(model, checkpoint_dir, tag=None):
542
+ """
543
+ 1. Put the provided model to cpu
544
+ 2. Convert ZeRO 2 or 3 checkpoint into a single fp32 consolidated ``state_dict``
545
+ 3. Load it into the provided model
546
+
547
+ Args:
548
+ - ``model``: the model object to update
549
+ - ``checkpoint_dir``: path to the desired checkpoint folder. (one that contains the tag-folder, like ``global_step14``)
550
+ - ``tag``: checkpoint tag used as a unique identifier for checkpoint. If not provided will attempt to load tag in the file named ``latest`` in the checkpoint folder, e.g., ``global_step14``
551
+
552
+ Returns:
553
+ - ``model`: modified model
554
+
555
+ Make sure you have plenty of CPU memory available before you call this function. If you don't
556
+ have enough use the ``zero_to_fp32.py`` utility to do the conversion. You will find it
557
+ conveniently placed for you in the checkpoint folder.
558
+
559
+ A typical usage might be ::
560
+
561
+ from deepspeed.utils.zero_to_fp32 import load_state_dict_from_zero_checkpoint
562
+ model = load_state_dict_from_zero_checkpoint(trainer.model, checkpoint_dir)
563
+ # submit to model hub or save the model to share with others
564
+
565
+ Note, that once this was run, the ``model`` will no longer be usable in the deepspeed context
566
+ of the same application. i.e. you will need to re-initialize the deepspeed engine, since
567
+ ``model.load_state_dict(state_dict)`` will remove all the deepspeed magic from it.
568
+
569
+ """
570
+ logger.info(f"Extracting fp32 weights")
571
+ state_dict = get_fp32_state_dict_from_zero_checkpoint(checkpoint_dir, tag)
572
+
573
+ logger.info(f"Overwriting model with fp32 weights")
574
+ model = model.cpu()
575
+ model.load_state_dict(state_dict, strict=False)
576
+
577
+ return model
578
+
579
+
580
+ if __name__ == "__main__":
581
+
582
+ parser = argparse.ArgumentParser()
583
+ parser.add_argument("checkpoint_dir",
584
+ type=str,
585
+ help="path to the desired checkpoint folder, e.g., path/checkpoint-12")
586
+ parser.add_argument(
587
+ "output_file",
588
+ type=str,
589
+ help="path to the pytorch fp32 state_dict output file (e.g. path/checkpoint-12/pytorch_model.bin)")
590
+ parser.add_argument("-t",
591
+ "--tag",
592
+ type=str,
593
+ default=None,
594
+ help="checkpoint tag used as a unique identifier for checkpoint. e.g., global_step1")
595
+ parser.add_argument("--exclude_frozen_parameters", action='store_true', help="exclude frozen parameters")
596
+ parser.add_argument("-d", "--debug", action='store_true', help="enable debug")
597
+ args = parser.parse_args()
598
+
599
+ debug = args.debug
600
+
601
+ convert_zero_checkpoint_to_fp32_state_dict(args.checkpoint_dir,
602
+ args.output_file,
603
+ tag=args.tag,
604
+ exclude_frozen_parameters=args.exclude_frozen_parameters)
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+ "_name_or_path": "meta-llama/Meta-Llama-3-8B-Instruct",
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+ "_name_or_path": "meta-llama/Meta-Llama-3-8B-Instruct",
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+ "architectures": [
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+ "LlamaForCausalLM"
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+ ],
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+ "attention_bias": false,
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+ "attention_dropout": 0.0,
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+ "bos_token_id": 128000,
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+ "eos_token_id": 128009,
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+ "hidden_act": "silu",
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+ "hidden_size": 4096,
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+ "initializer_range": 0.02,
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+ "intermediate_size": 14336,
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+ "max_position_embeddings": 8192,
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+ "mlp_bias": false,
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+ "model_type": "llama",
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+ "num_attention_heads": 32,
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+ "num_hidden_layers": 32,
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+ "num_key_value_heads": 8,
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+ "pretraining_tp": 1,
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+ "rms_norm_eps": 1e-05,
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+ "rope_scaling": null,
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+ "rope_theta": 500000.0,
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+ "tie_word_embeddings": false,
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+ "torch_dtype": "bfloat16",
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+ "transformers_version": "4.42.3",
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+ "use_cache": true,
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+ "vocab_size": 128256
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+ }
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+ [INFO|modeling_utils.py:3556] 2024-07-16 09:48:00,330 >> loading weights file model.safetensors from cache at /root/.cache/huggingface/hub/models--meta-llama--Meta-Llama-3-8B-Instruct/snapshots/e1945c40cd546c78e41f1151f4db032b271faeaa/model.safetensors.index.json
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+ "bos_token_id": 128000,
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+ "eos_token_id": 128009
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+ }
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+ "bos_token_id": 128000,
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+ "do_sample": true,
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+ "eos_token_id": [
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+ 128001,
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+ ],
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+ "max_length": 4096,
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+ "temperature": 0.6,
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+ "top_p": 0.9
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+ }
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+ [INFO|trainer.py:2128] 2024-07-16 09:48:27,728 >> ***** Running training *****
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+ [INFO|trainer.py:2129] 2024-07-16 09:48:27,728 >> Num examples = 4,968
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+ [INFO|trainer.py:2130] 2024-07-16 09:48:27,728 >> Num Epochs = 5
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+
329
+ [INFO|callbacks.py:310] 2024-07-16 09:57:14,986 >> {'loss': 0.1072, 'learning_rate': 4.6651e-06, 'epoch': 1.03, 'throughput': 483.77}
330
+
331
+ [INFO|callbacks.py:310] 2024-07-16 09:57:28,147 >> {'loss': 0.0357, 'learning_rate': 4.6429e-06, 'epoch': 1.05, 'throughput': 484.04}
332
+
333
+ [INFO|callbacks.py:310] 2024-07-16 09:57:41,316 >> {'loss': 0.0600, 'learning_rate': 4.6201e-06, 'epoch': 1.08, 'throughput': 484.18}
334
+
335
+ [INFO|callbacks.py:310] 2024-07-16 09:57:54,470 >> {'loss': 0.0902, 'learning_rate': 4.5967e-06, 'epoch': 1.11, 'throughput': 484.46}
336
+
337
+ [INFO|callbacks.py:310] 2024-07-16 09:58:07,621 >> {'loss': 0.0202, 'learning_rate': 4.5726e-06, 'epoch': 1.13, 'throughput': 484.51}
338
+
339
+ [INFO|callbacks.py:310] 2024-07-16 09:58:20,803 >> {'loss': 0.0380, 'learning_rate': 4.5479e-06, 'epoch': 1.16, 'throughput': 484.10}
340
+
341
+ [INFO|callbacks.py:310] 2024-07-16 09:58:33,969 >> {'loss': 0.0379, 'learning_rate': 4.5225e-06, 'epoch': 1.18, 'throughput': 484.17}
342
+
343
+ [INFO|callbacks.py:310] 2024-07-16 09:58:47,129 >> {'loss': 0.0742, 'learning_rate': 4.4966e-06, 'epoch': 1.21, 'throughput': 484.24}
344
+
345
+ [INFO|callbacks.py:310] 2024-07-16 09:59:00,303 >> {'loss': 0.0658, 'learning_rate': 4.4700e-06, 'epoch': 1.23, 'throughput': 483.64}
346
+
347
+ [INFO|callbacks.py:310] 2024-07-16 09:59:13,461 >> {'loss': 0.0336, 'learning_rate': 4.4429e-06, 'epoch': 1.26, 'throughput': 483.99}
348
+
349
+ [INFO|callbacks.py:310] 2024-07-16 09:59:26,622 >> {'loss': 0.1021, 'learning_rate': 4.4151e-06, 'epoch': 1.29, 'throughput': 483.77}
350
+
351
+ [INFO|callbacks.py:310] 2024-07-16 09:59:39,766 >> {'loss': 0.1312, 'learning_rate': 4.3868e-06, 'epoch': 1.31, 'throughput': 483.74}
352
+
353
+ [INFO|callbacks.py:310] 2024-07-16 09:59:52,949 >> {'loss': 0.0665, 'learning_rate': 4.3579e-06, 'epoch': 1.34, 'throughput': 483.68}
354
+
355
+ [INFO|callbacks.py:310] 2024-07-16 10:00:06,104 >> {'loss': 0.0679, 'learning_rate': 4.3284e-06, 'epoch': 1.36, 'throughput': 483.66}
356
+
357
+ [INFO|callbacks.py:310] 2024-07-16 10:00:19,266 >> {'loss': 0.0579, 'learning_rate': 4.2983e-06, 'epoch': 1.39, 'throughput': 483.46}
358
+
359
+ [INFO|callbacks.py:310] 2024-07-16 10:00:32,433 >> {'loss': 0.0542, 'learning_rate': 4.2678e-06, 'epoch': 1.41, 'throughput': 483.69}
360
+
361
+ [INFO|callbacks.py:310] 2024-07-16 10:00:45,598 >> {'loss': 0.0476, 'learning_rate': 4.2366e-06, 'epoch': 1.44, 'throughput': 483.69}
362
+
363
+ [INFO|callbacks.py:310] 2024-07-16 10:00:58,749 >> {'loss': 0.0613, 'learning_rate': 4.2050e-06, 'epoch': 1.47, 'throughput': 483.84}
364
+
365
+ [INFO|callbacks.py:310] 2024-07-16 10:01:11,904 >> {'loss': 0.0995, 'learning_rate': 4.1728e-06, 'epoch': 1.49, 'throughput': 483.76}
366
+
367
+ [INFO|callbacks.py:310] 2024-07-16 10:01:25,086 >> {'loss': 0.0532, 'learning_rate': 4.1401e-06, 'epoch': 1.52, 'throughput': 483.57}
368
+
369
+ [INFO|callbacks.py:310] 2024-07-16 10:01:38,265 >> {'loss': 0.0824, 'learning_rate': 4.1070e-06, 'epoch': 1.54, 'throughput': 483.60}
370
+
371
+ [INFO|callbacks.py:310] 2024-07-16 10:01:51,421 >> {'loss': 0.0499, 'learning_rate': 4.0733e-06, 'epoch': 1.57, 'throughput': 483.63}
372
+
373
+ [INFO|callbacks.py:310] 2024-07-16 10:02:04,575 >> {'loss': 0.0413, 'learning_rate': 4.0392e-06, 'epoch': 1.59, 'throughput': 483.75}
374
+
375
+ [INFO|callbacks.py:310] 2024-07-16 10:02:17,738 >> {'loss': 0.0637, 'learning_rate': 4.0045e-06, 'epoch': 1.62, 'throughput': 484.01}
376
+
377
+ [INFO|callbacks.py:310] 2024-07-16 10:02:30,912 >> {'loss': 0.0529, 'learning_rate': 3.9695e-06, 'epoch': 1.65, 'throughput': 483.77}
378
+
379
+ [INFO|callbacks.py:310] 2024-07-16 10:02:44,068 >> {'loss': 0.0474, 'learning_rate': 3.9339e-06, 'epoch': 1.67, 'throughput': 483.73}
380
+
381
+ [INFO|callbacks.py:310] 2024-07-16 10:02:57,237 >> {'loss': 0.0649, 'learning_rate': 3.8980e-06, 'epoch': 1.70, 'throughput': 483.55}
382
+
383
+ [INFO|callbacks.py:310] 2024-07-16 10:03:10,409 >> {'loss': 0.0505, 'learning_rate': 3.8616e-06, 'epoch': 1.72, 'throughput': 483.51}
384
+
385
+ [INFO|callbacks.py:310] 2024-07-16 10:03:23,580 >> {'loss': 0.0621, 'learning_rate': 3.8248e-06, 'epoch': 1.75, 'throughput': 483.14}
386
+
387
+ [INFO|callbacks.py:310] 2024-07-16 10:03:36,735 >> {'loss': 0.0769, 'learning_rate': 3.7876e-06, 'epoch': 1.77, 'throughput': 483.20}
388
+
389
+ [INFO|callbacks.py:310] 2024-07-16 10:03:49,897 >> {'loss': 0.0435, 'learning_rate': 3.7500e-06, 'epoch': 1.80, 'throughput': 483.42}
390
+
391
+ [INFO|callbacks.py:310] 2024-07-16 10:04:03,040 >> {'loss': 0.0673, 'learning_rate': 3.7120e-06, 'epoch': 1.83, 'throughput': 483.69}
392
+
393
+ [INFO|callbacks.py:310] 2024-07-16 10:04:16,202 >> {'loss': 0.1316, 'learning_rate': 3.6737e-06, 'epoch': 1.85, 'throughput': 483.44}
394
+
395
+ [INFO|callbacks.py:310] 2024-07-16 10:04:29,356 >> {'loss': 0.0531, 'learning_rate': 3.6350e-06, 'epoch': 1.88, 'throughput': 483.53}
396
+
397
+ [INFO|callbacks.py:310] 2024-07-16 10:04:42,540 >> {'loss': 0.0287, 'learning_rate': 3.5959e-06, 'epoch': 1.90, 'throughput': 483.62}
398
+
399
+ [INFO|callbacks.py:310] 2024-07-16 10:04:55,704 >> {'loss': 0.0648, 'learning_rate': 3.5565e-06, 'epoch': 1.93, 'throughput': 483.59}
400
+
401
+ [INFO|callbacks.py:310] 2024-07-16 10:05:08,874 >> {'loss': 0.1211, 'learning_rate': 3.5168e-06, 'epoch': 1.95, 'throughput': 483.54}
402
+
403
+ [INFO|callbacks.py:310] 2024-07-16 10:05:22,046 >> {'loss': 0.0879, 'learning_rate': 3.4768e-06, 'epoch': 1.98, 'throughput': 483.26}
404
+
405
+ [INFO|callbacks.py:310] 2024-07-16 10:05:35,205 >> {'loss': 0.0227, 'learning_rate': 3.4365e-06, 'epoch': 2.01, 'throughput': 483.39}
406
+
407
+ [INFO|callbacks.py:310] 2024-07-16 10:05:48,359 >> {'loss': 0.0228, 'learning_rate': 3.3959e-06, 'epoch': 2.03, 'throughput': 483.45}
408
+
409
+ [INFO|callbacks.py:310] 2024-07-16 10:06:01,518 >> {'loss': 0.0360, 'learning_rate': 3.3551e-06, 'epoch': 2.06, 'throughput': 483.47}
410
+
411
+ [INFO|callbacks.py:310] 2024-07-16 10:06:14,696 >> {'loss': 0.0138, 'learning_rate': 3.3139e-06, 'epoch': 2.08, 'throughput': 483.36}
412
+
413
+ [INFO|callbacks.py:310] 2024-07-16 10:06:27,870 >> {'loss': 0.0697, 'learning_rate': 3.2725e-06, 'epoch': 2.11, 'throughput': 483.18}
414
+
415
+ [INFO|callbacks.py:310] 2024-07-16 10:06:41,041 >> {'loss': 0.0508, 'learning_rate': 3.2309e-06, 'epoch': 2.14, 'throughput': 482.89}
416
+
417
+ [INFO|callbacks.py:310] 2024-07-16 10:06:54,208 >> {'loss': 0.0088, 'learning_rate': 3.1891e-06, 'epoch': 2.16, 'throughput': 483.18}
418
+
419
+ [INFO|callbacks.py:310] 2024-07-16 10:07:07,375 >> {'loss': 0.0158, 'learning_rate': 3.1470e-06, 'epoch': 2.19, 'throughput': 483.34}
420
+
421
+ [INFO|callbacks.py:310] 2024-07-16 10:07:20,542 >> {'loss': 0.0060, 'learning_rate': 3.1048e-06, 'epoch': 2.21, 'throughput': 483.30}
422
+
423
+ [INFO|callbacks.py:310] 2024-07-16 10:07:33,693 >> {'loss': 0.0380, 'learning_rate': 3.0624e-06, 'epoch': 2.24, 'throughput': 483.67}
424
+
425
+ [INFO|callbacks.py:310] 2024-07-16 10:07:46,864 >> {'loss': 0.0004, 'learning_rate': 3.0198e-06, 'epoch': 2.26, 'throughput': 483.58}
426
+
427
+ [INFO|callbacks.py:310] 2024-07-16 10:08:00,047 >> {'loss': 0.0111, 'learning_rate': 2.9770e-06, 'epoch': 2.29, 'throughput': 483.47}
428
+
429
+ [INFO|callbacks.py:310] 2024-07-16 10:08:13,201 >> {'loss': 0.0008, 'learning_rate': 2.9341e-06, 'epoch': 2.32, 'throughput': 483.64}
430
+
431
+ [INFO|callbacks.py:310] 2024-07-16 10:08:26,357 >> {'loss': 0.0182, 'learning_rate': 2.8911e-06, 'epoch': 2.34, 'throughput': 483.70}
432
+
433
+ [INFO|callbacks.py:310] 2024-07-16 10:08:39,526 >> {'loss': 0.0491, 'learning_rate': 2.8479e-06, 'epoch': 2.37, 'throughput': 483.66}
434
+
435
+ [INFO|callbacks.py:310] 2024-07-16 10:08:52,691 >> {'loss': 0.0040, 'learning_rate': 2.8047e-06, 'epoch': 2.39, 'throughput': 483.71}
436
+
437
+ [INFO|callbacks.py:310] 2024-07-16 10:09:05,854 >> {'loss': 0.0176, 'learning_rate': 2.7613e-06, 'epoch': 2.42, 'throughput': 483.76}
438
+
439
+ [INFO|callbacks.py:310] 2024-07-16 10:09:19,001 >> {'loss': 0.0190, 'learning_rate': 2.7179e-06, 'epoch': 2.44, 'throughput': 483.69}
440
+
441
+ [INFO|callbacks.py:310] 2024-07-16 10:09:32,181 >> {'loss': 0.0270, 'learning_rate': 2.6744e-06, 'epoch': 2.47, 'throughput': 483.49}
442
+
443
+ [INFO|callbacks.py:310] 2024-07-16 10:09:45,346 >> {'loss': 0.0354, 'learning_rate': 2.6308e-06, 'epoch': 2.50, 'throughput': 483.49}
444
+
445
+ [INFO|callbacks.py:310] 2024-07-16 10:09:58,504 >> {'loss': 0.0741, 'learning_rate': 2.5872e-06, 'epoch': 2.52, 'throughput': 483.59}
446
+
447
+ [INFO|callbacks.py:310] 2024-07-16 10:10:11,684 >> {'loss': 0.0582, 'learning_rate': 2.5436e-06, 'epoch': 2.55, 'throughput': 483.53}
448
+
449
+ [INFO|callbacks.py:310] 2024-07-16 10:10:24,850 >> {'loss': 0.0096, 'learning_rate': 2.5000e-06, 'epoch': 2.57, 'throughput': 483.66}
450
+
451
+ [INFO|callbacks.py:310] 2024-07-16 10:10:38,015 >> {'loss': 0.0263, 'learning_rate': 2.4564e-06, 'epoch': 2.60, 'throughput': 483.71}
452
+
453
+ [INFO|callbacks.py:310] 2024-07-16 10:10:51,176 >> {'loss': 0.0121, 'learning_rate': 2.4128e-06, 'epoch': 2.62, 'throughput': 483.65}
454
+
455
+ [INFO|callbacks.py:310] 2024-07-16 10:11:04,355 >> {'loss': 0.0204, 'learning_rate': 2.3692e-06, 'epoch': 2.65, 'throughput': 483.62}
456
+
457
+ [INFO|callbacks.py:310] 2024-07-16 10:11:17,518 >> {'loss': 0.0325, 'learning_rate': 2.3256e-06, 'epoch': 2.68, 'throughput': 483.74}
458
+
459
+ [INFO|callbacks.py:310] 2024-07-16 10:11:30,679 >> {'loss': 0.0076, 'learning_rate': 2.2821e-06, 'epoch': 2.70, 'throughput': 483.58}
460
+
461
+ [INFO|callbacks.py:310] 2024-07-16 10:11:43,845 >> {'loss': 0.0485, 'learning_rate': 2.2387e-06, 'epoch': 2.73, 'throughput': 483.48}
462
+
463
+ [INFO|callbacks.py:310] 2024-07-16 10:11:57,010 >> {'loss': 0.0070, 'learning_rate': 2.1953e-06, 'epoch': 2.75, 'throughput': 483.31}
464
+
465
+ [INFO|callbacks.py:310] 2024-07-16 10:12:10,178 >> {'loss': 0.0347, 'learning_rate': 2.1521e-06, 'epoch': 2.78, 'throughput': 483.23}
466
+
467
+ [INFO|callbacks.py:310] 2024-07-16 10:12:23,333 >> {'loss': 0.0142, 'learning_rate': 2.1089e-06, 'epoch': 2.80, 'throughput': 483.41}
468
+
469
+ [INFO|callbacks.py:310] 2024-07-16 10:12:36,503 >> {'loss': 0.0414, 'learning_rate': 2.0659e-06, 'epoch': 2.83, 'throughput': 483.41}
470
+
471
+ [INFO|callbacks.py:310] 2024-07-16 10:12:49,670 >> {'loss': 0.0419, 'learning_rate': 2.0230e-06, 'epoch': 2.86, 'throughput': 483.45}
472
+
473
+ [INFO|callbacks.py:310] 2024-07-16 10:13:02,837 >> {'loss': 0.0430, 'learning_rate': 1.9802e-06, 'epoch': 2.88, 'throughput': 483.52}
474
+
475
+ [INFO|callbacks.py:310] 2024-07-16 10:13:15,995 >> {'loss': 0.0192, 'learning_rate': 1.9376e-06, 'epoch': 2.91, 'throughput': 483.49}
476
+
477
+ [INFO|callbacks.py:310] 2024-07-16 10:13:29,163 >> {'loss': 0.0427, 'learning_rate': 1.8952e-06, 'epoch': 2.93, 'throughput': 483.53}
478
+
479
+ [INFO|callbacks.py:310] 2024-07-16 10:13:42,332 >> {'loss': 0.0116, 'learning_rate': 1.8530e-06, 'epoch': 2.96, 'throughput': 483.44}
480
+
481
+ [INFO|callbacks.py:310] 2024-07-16 10:13:55,503 >> {'loss': 0.0135, 'learning_rate': 1.8109e-06, 'epoch': 2.98, 'throughput': 483.38}
482
+
483
+ [INFO|callbacks.py:310] 2024-07-16 10:14:08,655 >> {'loss': 0.0128, 'learning_rate': 1.7691e-06, 'epoch': 3.01, 'throughput': 483.40}
484
+
485
+ [INFO|callbacks.py:310] 2024-07-16 10:14:21,830 >> {'loss': 0.0021, 'learning_rate': 1.7275e-06, 'epoch': 3.04, 'throughput': 483.50}
486
+
487
+ [INFO|callbacks.py:310] 2024-07-16 10:14:35,006 >> {'loss': 0.0057, 'learning_rate': 1.6861e-06, 'epoch': 3.06, 'throughput': 483.41}
488
+
489
+ [INFO|callbacks.py:310] 2024-07-16 10:14:48,169 >> {'loss': 0.0197, 'learning_rate': 1.6449e-06, 'epoch': 3.09, 'throughput': 483.37}
490
+
491
+ [INFO|callbacks.py:310] 2024-07-16 10:15:01,334 >> {'loss': 0.0017, 'learning_rate': 1.6041e-06, 'epoch': 3.11, 'throughput': 483.22}
492
+
493
+ [INFO|callbacks.py:310] 2024-07-16 10:15:14,501 >> {'loss': 0.0068, 'learning_rate': 1.5635e-06, 'epoch': 3.14, 'throughput': 483.07}
494
+
495
+ [INFO|callbacks.py:310] 2024-07-16 10:15:27,662 >> {'loss': 0.0022, 'learning_rate': 1.5232e-06, 'epoch': 3.16, 'throughput': 483.02}
496
+
497
+ [INFO|callbacks.py:310] 2024-07-16 10:15:40,803 >> {'loss': 0.0162, 'learning_rate': 1.4832e-06, 'epoch': 3.19, 'throughput': 483.18}
498
+
499
+ [INFO|callbacks.py:310] 2024-07-16 10:15:53,978 >> {'loss': 0.0014, 'learning_rate': 1.4435e-06, 'epoch': 3.22, 'throughput': 483.24}
500
+
501
+ [INFO|callbacks.py:310] 2024-07-16 10:16:07,150 >> {'loss': 0.0063, 'learning_rate': 1.4041e-06, 'epoch': 3.24, 'throughput': 483.23}
502
+
503
+ [INFO|callbacks.py:310] 2024-07-16 10:16:20,313 >> {'loss': 0.0282, 'learning_rate': 1.3650e-06, 'epoch': 3.27, 'throughput': 483.34}
504
+
505
+ [INFO|callbacks.py:310] 2024-07-16 10:16:33,471 >> {'loss': 0.0003, 'learning_rate': 1.3263e-06, 'epoch': 3.29, 'throughput': 483.41}
506
+
507
+ [INFO|callbacks.py:310] 2024-07-16 10:16:46,637 >> {'loss': 0.0002, 'learning_rate': 1.2880e-06, 'epoch': 3.32, 'throughput': 483.37}
508
+
509
+ [INFO|callbacks.py:310] 2024-07-16 10:16:59,801 >> {'loss': 0.0004, 'learning_rate': 1.2500e-06, 'epoch': 3.34, 'throughput': 483.38}
510
+
511
+ [INFO|callbacks.py:310] 2024-07-16 10:17:12,952 >> {'loss': 0.0169, 'learning_rate': 1.2124e-06, 'epoch': 3.37, 'throughput': 483.44}
512
+
513
+ [INFO|callbacks.py:310] 2024-07-16 10:17:26,129 >> {'loss': 0.0127, 'learning_rate': 1.1752e-06, 'epoch': 3.40, 'throughput': 483.34}
514
+
515
+ [INFO|callbacks.py:310] 2024-07-16 10:17:39,308 >> {'loss': 0.0045, 'learning_rate': 1.1384e-06, 'epoch': 3.42, 'throughput': 483.25}
516
+
517
+ [INFO|callbacks.py:310] 2024-07-16 10:17:52,479 >> {'loss': 0.0924, 'learning_rate': 1.1020e-06, 'epoch': 3.45, 'throughput': 483.31}
518
+
519
+ [INFO|callbacks.py:310] 2024-07-16 10:18:05,645 >> {'loss': 0.0067, 'learning_rate': 1.0661e-06, 'epoch': 3.47, 'throughput': 483.33}
520
+
521
+ [INFO|callbacks.py:310] 2024-07-16 10:18:18,814 >> {'loss': 0.0030, 'learning_rate': 1.0305e-06, 'epoch': 3.50, 'throughput': 483.19}
522
+
523
+ [INFO|callbacks.py:310] 2024-07-16 10:18:31,962 >> {'loss': 0.0164, 'learning_rate': 9.9546e-07, 'epoch': 3.52, 'throughput': 483.29}
524
+
525
+ [INFO|callbacks.py:310] 2024-07-16 10:18:45,120 >> {'loss': 0.0018, 'learning_rate': 9.6085e-07, 'epoch': 3.55, 'throughput': 483.30}
526
+
527
+ [INFO|callbacks.py:310] 2024-07-16 10:18:58,287 >> {'loss': 0.0226, 'learning_rate': 9.2670e-07, 'epoch': 3.58, 'throughput': 483.32}
528
+
529
+ [INFO|callbacks.py:310] 2024-07-16 10:19:11,468 >> {'loss': 0.0008, 'learning_rate': 8.9303e-07, 'epoch': 3.60, 'throughput': 483.26}
530
+
531
+ [INFO|callbacks.py:310] 2024-07-16 10:19:24,632 >> {'loss': 0.0004, 'learning_rate': 8.5985e-07, 'epoch': 3.63, 'throughput': 483.13}
532
+
533
+ [INFO|callbacks.py:310] 2024-07-16 10:19:37,805 >> {'loss': 0.0008, 'learning_rate': 8.2717e-07, 'epoch': 3.65, 'throughput': 483.16}
534
+
535
+ [INFO|callbacks.py:310] 2024-07-16 10:19:50,961 >> {'loss': 0.0256, 'learning_rate': 7.9500e-07, 'epoch': 3.68, 'throughput': 483.12}
536
+
537
+ [INFO|callbacks.py:310] 2024-07-16 10:20:04,127 >> {'loss': 0.0005, 'learning_rate': 7.6335e-07, 'epoch': 3.70, 'throughput': 483.08}
538
+
539
+ [INFO|callbacks.py:310] 2024-07-16 10:20:17,283 >> {'loss': 0.0045, 'learning_rate': 7.3223e-07, 'epoch': 3.73, 'throughput': 483.15}
540
+
541
+ [INFO|callbacks.py:310] 2024-07-16 10:20:30,443 >> {'loss': 0.0005, 'learning_rate': 7.0165e-07, 'epoch': 3.76, 'throughput': 482.98}
542
+
543
+ [INFO|callbacks.py:310] 2024-07-16 10:20:43,619 >> {'loss': 0.0069, 'learning_rate': 6.7162e-07, 'epoch': 3.78, 'throughput': 483.23}
544
+
545
+ [INFO|callbacks.py:310] 2024-07-16 10:20:56,776 >> {'loss': 0.0150, 'learning_rate': 6.4214e-07, 'epoch': 3.81, 'throughput': 483.29}
546
+
547
+ [INFO|callbacks.py:310] 2024-07-16 10:21:09,946 >> {'loss': 0.0012, 'learning_rate': 6.1323e-07, 'epoch': 3.83, 'throughput': 483.32}
548
+
549
+ [INFO|callbacks.py:310] 2024-07-16 10:21:23,109 >> {'loss': 0.0095, 'learning_rate': 5.8489e-07, 'epoch': 3.86, 'throughput': 483.33}
550
+
551
+ [INFO|callbacks.py:310] 2024-07-16 10:21:36,282 >> {'loss': 0.0271, 'learning_rate': 5.5714e-07, 'epoch': 3.88, 'throughput': 483.39}
552
+
553
+ [INFO|callbacks.py:310] 2024-07-16 10:21:49,454 >> {'loss': 0.0201, 'learning_rate': 5.2997e-07, 'epoch': 3.91, 'throughput': 483.30}
554
+
555
+ [INFO|callbacks.py:310] 2024-07-16 10:22:02,608 >> {'loss': 0.0120, 'learning_rate': 5.0341e-07, 'epoch': 3.94, 'throughput': 483.25}
556
+
557
+ [INFO|callbacks.py:310] 2024-07-16 10:22:15,786 >> {'loss': 0.0230, 'learning_rate': 4.7746e-07, 'epoch': 3.96, 'throughput': 483.29}
558
+
559
+ [INFO|callbacks.py:310] 2024-07-16 10:22:28,957 >> {'loss': 0.0156, 'learning_rate': 4.5212e-07, 'epoch': 3.99, 'throughput': 483.22}
560
+
561
+ [INFO|callbacks.py:310] 2024-07-16 10:22:42,130 >> {'loss': 0.0009, 'learning_rate': 4.2741e-07, 'epoch': 4.01, 'throughput': 483.29}
562
+
563
+ [INFO|callbacks.py:310] 2024-07-16 10:22:55,293 >> {'loss': 0.0017, 'learning_rate': 4.0332e-07, 'epoch': 4.04, 'throughput': 483.27}
564
+
565
+ [INFO|callbacks.py:310] 2024-07-16 10:23:08,453 >> {'loss': 0.0015, 'learning_rate': 3.7988e-07, 'epoch': 4.06, 'throughput': 483.28}
566
+
567
+ [INFO|callbacks.py:310] 2024-07-16 10:23:21,618 >> {'loss': 0.0035, 'learning_rate': 3.5708e-07, 'epoch': 4.09, 'throughput': 483.18}
568
+
569
+ [INFO|callbacks.py:310] 2024-07-16 10:23:34,786 >> {'loss': 0.0016, 'learning_rate': 3.3494e-07, 'epoch': 4.12, 'throughput': 483.27}
570
+
571
+ [INFO|callbacks.py:310] 2024-07-16 10:23:47,940 >> {'loss': 0.0028, 'learning_rate': 3.1345e-07, 'epoch': 4.14, 'throughput': 483.30}
572
+
573
+ [INFO|callbacks.py:310] 2024-07-16 10:24:01,115 >> {'loss': 0.0006, 'learning_rate': 2.9263e-07, 'epoch': 4.17, 'throughput': 483.34}
574
+
575
+ [INFO|callbacks.py:310] 2024-07-16 10:24:14,287 >> {'loss': 0.0013, 'learning_rate': 2.7248e-07, 'epoch': 4.19, 'throughput': 483.39}
576
+
577
+ [INFO|callbacks.py:310] 2024-07-16 10:24:27,446 >> {'loss': 0.0006, 'learning_rate': 2.5301e-07, 'epoch': 4.22, 'throughput': 483.37}
578
+
579
+ [INFO|callbacks.py:310] 2024-07-16 10:24:40,617 >> {'loss': 0.0017, 'learning_rate': 2.3423e-07, 'epoch': 4.24, 'throughput': 483.25}
580
+
581
+ [INFO|callbacks.py:310] 2024-07-16 10:24:53,794 >> {'loss': 0.0004, 'learning_rate': 2.1614e-07, 'epoch': 4.27, 'throughput': 483.29}
582
+
583
+ [INFO|callbacks.py:310] 2024-07-16 10:25:06,960 >> {'loss': 0.0049, 'learning_rate': 1.9874e-07, 'epoch': 4.30, 'throughput': 483.28}
584
+
585
+ [INFO|callbacks.py:310] 2024-07-16 10:25:20,117 >> {'loss': 0.0071, 'learning_rate': 1.8204e-07, 'epoch': 4.32, 'throughput': 483.25}
586
+
587
+ [INFO|callbacks.py:310] 2024-07-16 10:25:33,302 >> {'loss': 0.0011, 'learning_rate': 1.6605e-07, 'epoch': 4.35, 'throughput': 483.17}
588
+
589
+ [INFO|callbacks.py:310] 2024-07-16 10:25:46,468 >> {'loss': 0.0004, 'learning_rate': 1.5077e-07, 'epoch': 4.37, 'throughput': 483.17}
590
+
591
+ [INFO|callbacks.py:310] 2024-07-16 10:25:59,629 >> {'loss': 0.0007, 'learning_rate': 1.3620e-07, 'epoch': 4.40, 'throughput': 483.20}
592
+
593
+ [INFO|callbacks.py:310] 2024-07-16 10:26:12,794 >> {'loss': 0.0017, 'learning_rate': 1.2236e-07, 'epoch': 4.42, 'throughput': 483.21}
594
+
595
+ [INFO|callbacks.py:310] 2024-07-16 10:26:25,961 >> {'loss': 0.0007, 'learning_rate': 1.0924e-07, 'epoch': 4.45, 'throughput': 483.29}
596
+
597
+ [INFO|callbacks.py:310] 2024-07-16 10:26:39,133 >> {'loss': 0.0003, 'learning_rate': 9.6846e-08, 'epoch': 4.48, 'throughput': 483.18}
598
+
599
+ [INFO|callbacks.py:310] 2024-07-16 10:26:52,302 >> {'loss': 0.0046, 'learning_rate': 8.5185e-08, 'epoch': 4.50, 'throughput': 483.13}
600
+
601
+ [INFO|callbacks.py:310] 2024-07-16 10:27:05,483 >> {'loss': 0.0038, 'learning_rate': 7.4261e-08, 'epoch': 4.53, 'throughput': 483.04}
602
+
603
+ [INFO|callbacks.py:310] 2024-07-16 10:27:18,649 >> {'loss': 0.0036, 'learning_rate': 6.4075e-08, 'epoch': 4.55, 'throughput': 483.09}
604
+
605
+ [INFO|callbacks.py:310] 2024-07-16 10:27:31,802 >> {'loss': 0.0056, 'learning_rate': 5.4631e-08, 'epoch': 4.58, 'throughput': 483.09}
606
+
607
+ [INFO|callbacks.py:310] 2024-07-16 10:27:44,968 >> {'loss': 0.0057, 'learning_rate': 4.5932e-08, 'epoch': 4.60, 'throughput': 483.12}
608
+
609
+ [INFO|callbacks.py:310] 2024-07-16 10:27:58,128 >> {'loss': 0.0020, 'learning_rate': 3.7981e-08, 'epoch': 4.63, 'throughput': 483.19}
610
+
611
+ [INFO|callbacks.py:310] 2024-07-16 10:28:11,283 >> {'loss': 0.0003, 'learning_rate': 3.0779e-08, 'epoch': 4.66, 'throughput': 483.12}
612
+
613
+ [INFO|callbacks.py:310] 2024-07-16 10:28:24,450 >> {'loss': 0.0002, 'learning_rate': 2.4330e-08, 'epoch': 4.68, 'throughput': 483.03}
614
+
615
+ [INFO|callbacks.py:310] 2024-07-16 10:28:37,620 >> {'loss': 0.0043, 'learning_rate': 1.8635e-08, 'epoch': 4.71, 'throughput': 482.89}
616
+
617
+ [INFO|callbacks.py:310] 2024-07-16 10:28:50,799 >> {'loss': 0.0002, 'learning_rate': 1.3695e-08, 'epoch': 4.73, 'throughput': 482.81}
618
+
619
+ [INFO|callbacks.py:310] 2024-07-16 10:29:03,962 >> {'loss': 0.0013, 'learning_rate': 9.5133e-09, 'epoch': 4.76, 'throughput': 482.82}
620
+
621
+ [INFO|callbacks.py:310] 2024-07-16 10:29:17,116 >> {'loss': 0.0023, 'learning_rate': 6.0899e-09, 'epoch': 4.78, 'throughput': 482.85}
622
+
623
+ [INFO|callbacks.py:310] 2024-07-16 10:29:30,281 >> {'loss': 0.0002, 'learning_rate': 3.4262e-09, 'epoch': 4.81, 'throughput': 482.98}
624
+
625
+ [INFO|callbacks.py:310] 2024-07-16 10:29:43,438 >> {'loss': 0.0015, 'learning_rate': 1.5229e-09, 'epoch': 4.84, 'throughput': 482.95}
626
+
627
+ [INFO|callbacks.py:310] 2024-07-16 10:29:56,602 >> {'loss': 0.0002, 'learning_rate': 3.8076e-10, 'epoch': 4.86, 'throughput': 482.96}
628
+
629
+ [INFO|callbacks.py:310] 2024-07-16 10:30:09,755 >> {'loss': 0.0028, 'learning_rate': 0.0000e+00, 'epoch': 4.89, 'throughput': 482.97}
630
+
631
+ [INFO|trainer.py:3478] 2024-07-16 10:30:17,367 >> Saving model checkpoint to saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190
632
+
633
+ [INFO|configuration_utils.py:472] 2024-07-16 10:30:17,370 >> Configuration saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190/config.json
634
+
635
+ [INFO|configuration_utils.py:769] 2024-07-16 10:30:17,371 >> Configuration saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190/generation_config.json
636
+
637
+ [INFO|modeling_utils.py:2698] 2024-07-16 10:30:33,564 >> The model is bigger than the maximum size per checkpoint (5GB) and is going to be split in 4 checkpoint shards. You can find where each parameters has been saved in the index located at saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190/model.safetensors.index.json.
638
+
639
+ [INFO|tokenization_utils_base.py:2574] 2024-07-16 10:30:33,568 >> tokenizer config file saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190/tokenizer_config.json
640
+
641
+ [INFO|tokenization_utils_base.py:2583] 2024-07-16 10:30:33,568 >> Special tokens file saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/checkpoint-190/special_tokens_map.json
642
+
643
+ [INFO|trainer.py:2383] 2024-07-16 10:31:10,372 >>
644
+
645
+ Training completed. Do not forget to share your model on huggingface.co/models =)
646
+
647
+
648
+
649
+ [INFO|trainer.py:3478] 2024-07-16 10:31:17,984 >> Saving model checkpoint to saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3
650
+
651
+ [INFO|configuration_utils.py:472] 2024-07-16 10:31:17,987 >> Configuration saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/config.json
652
+
653
+ [INFO|configuration_utils.py:769] 2024-07-16 10:31:17,988 >> Configuration saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/generation_config.json
654
+
655
+ [INFO|modeling_utils.py:2698] 2024-07-16 10:31:35,440 >> The model is bigger than the maximum size per checkpoint (5GB) and is going to be split in 4 checkpoint shards. You can find where each parameters has been saved in the index located at saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/model.safetensors.index.json.
656
+
657
+ [INFO|tokenization_utils_base.py:2574] 2024-07-16 10:31:35,443 >> tokenizer config file saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/tokenizer_config.json
658
+
659
+ [INFO|tokenization_utils_base.py:2583] 2024-07-16 10:31:35,444 >> Special tokens file saved in saves/LLaMA3-8B-Chat/full/train_2024-07-16-09-46-28_llama3/special_tokens_map.json
660
+
661
+ [WARNING|ploting.py:89] 2024-07-16 10:31:36,770 >> No metric eval_loss to plot.
662
+
663
+ [WARNING|ploting.py:89] 2024-07-16 10:31:36,770 >> No metric eval_accuracy to plot.
664
+
665
+ [INFO|modelcard.py:449] 2024-07-16 10:31:36,770 >> Dropping the following result as it does not have all the necessary fields:
666
+ {'task': {'name': 'Causal Language Modeling', 'type': 'text-generation'}}
667
+
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+ "pad_token": "<|eot_id|>"
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+ }
tokenizer.json ADDED
The diff for this file is too large to render. See raw diff
 
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+ },
2052
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2053
+ "chat_template": "{{ '<|begin_of_text|>' }}{% if messages[0]['role'] == 'system' %}{% set system_message = messages[0]['content'] %}{% endif %}{% if system_message is defined %}{{ '<|start_header_id|>system<|end_header_id|>\n\n' + system_message + '<|eot_id|>' }}{% endif %}{% for message in messages %}{% set content = message['content'] %}{% if message['role'] == 'user' %}{{ '<|start_header_id|>user<|end_header_id|>\n\n' + content + '<|eot_id|><|start_header_id|>assistant<|end_header_id|>\n\n' }}{% elif message['role'] == 'assistant' %}{{ content + '<|eot_id|>' }}{% endif %}{% endfor %}",
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+ "eos_token": "<|eot_id|>",
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+ "model_input_names": [
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+ "input_ids",
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+ "attention_mask"
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+ ],
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+ "model_max_length": 1000000000000000019884624838656,
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+ "pad_token": "<|eot_id|>",
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+ "padding_side": "right",
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+ "split_special_tokens": false,
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+ "tokenizer_class": "PreTrainedTokenizerFast"
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+ }
train_results.json ADDED
@@ -0,0 +1,9 @@
 
 
 
 
 
 
 
 
 
 
1
+ {
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+ "epoch": 4.887459807073955,
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+ "num_input_tokens_seen": 1208400,
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+ "total_flos": 5.441370708980531e+16,
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+ "train_loss": 0.5078434096239538,
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+ "train_runtime": 2562.642,
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+ "train_samples_per_second": 9.693,
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+ "train_steps_per_second": 0.074
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+ }
trainer_log.jsonl ADDED
@@ -0,0 +1,191 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {"current_steps": 1, "total_steps": 190, "loss": 14.1364, "learning_rate": 5.000000000000001e-07, "epoch": 0.02572347266881029, "percentage": 0.53, "elapsed_time": "0:00:13", "remaining_time": "0:43:08", "throughput": "475.41", "total_tokens": 6512}
2
+ {"current_steps": 2, "total_steps": 190, "loss": 13.7804, "learning_rate": 1.0000000000000002e-06, "epoch": 0.05144694533762058, "percentage": 1.05, "elapsed_time": "0:00:26", "remaining_time": "0:42:08", "throughput": "477.72", "total_tokens": 12848}
3
+ {"current_steps": 3, "total_steps": 190, "loss": 13.4871, "learning_rate": 1.5e-06, "epoch": 0.07717041800643087, "percentage": 1.58, "elapsed_time": "0:00:40", "remaining_time": "0:41:38", "throughput": "480.28", "total_tokens": 19248}
4
+ {"current_steps": 4, "total_steps": 190, "loss": 12.79, "learning_rate": 2.0000000000000003e-06, "epoch": 0.10289389067524116, "percentage": 2.11, "elapsed_time": "0:00:53", "remaining_time": "0:41:16", "throughput": "475.82", "total_tokens": 25344}
5
+ {"current_steps": 5, "total_steps": 190, "loss": 9.2748, "learning_rate": 2.5e-06, "epoch": 0.12861736334405144, "percentage": 2.63, "elapsed_time": "0:01:06", "remaining_time": "0:40:57", "throughput": "481.26", "total_tokens": 31968}
6
+ {"current_steps": 6, "total_steps": 190, "loss": 6.5585, "learning_rate": 3e-06, "epoch": 0.15434083601286175, "percentage": 3.16, "elapsed_time": "0:01:19", "remaining_time": "0:40:40", "throughput": "479.46", "total_tokens": 38160}
7
+ {"current_steps": 7, "total_steps": 190, "loss": 5.3984, "learning_rate": 3.5e-06, "epoch": 0.18006430868167203, "percentage": 3.68, "elapsed_time": "0:01:32", "remaining_time": "0:40:24", "throughput": "475.92", "total_tokens": 44144}
8
+ {"current_steps": 8, "total_steps": 190, "loss": 1.9363, "learning_rate": 4.000000000000001e-06, "epoch": 0.2057877813504823, "percentage": 4.21, "elapsed_time": "0:01:45", "remaining_time": "0:40:10", "throughput": "476.05", "total_tokens": 50432}
9
+ {"current_steps": 9, "total_steps": 190, "loss": 0.6783, "learning_rate": 4.5e-06, "epoch": 0.2315112540192926, "percentage": 4.74, "elapsed_time": "0:01:59", "remaining_time": "0:39:55", "throughput": "477.93", "total_tokens": 56928}
10
+ {"current_steps": 10, "total_steps": 190, "loss": 2.9945, "learning_rate": 5e-06, "epoch": 0.2572347266881029, "percentage": 5.26, "elapsed_time": "0:02:12", "remaining_time": "0:39:40", "throughput": "478.89", "total_tokens": 63344}
11
+ {"current_steps": 11, "total_steps": 190, "loss": 0.2916, "learning_rate": 4.9996192378909785e-06, "epoch": 0.2829581993569132, "percentage": 5.79, "elapsed_time": "0:02:25", "remaining_time": "0:39:26", "throughput": "478.35", "total_tokens": 69568}
12
+ {"current_steps": 12, "total_steps": 190, "loss": 2.2775, "learning_rate": 4.99847706754774e-06, "epoch": 0.3086816720257235, "percentage": 6.32, "elapsed_time": "0:02:38", "remaining_time": "0:39:12", "throughput": "478.05", "total_tokens": 75824}
13
+ {"current_steps": 13, "total_steps": 190, "loss": 0.3757, "learning_rate": 4.9965738368864345e-06, "epoch": 0.33440514469453375, "percentage": 6.84, "elapsed_time": "0:02:51", "remaining_time": "0:38:58", "throughput": "478.29", "total_tokens": 82160}
14
+ {"current_steps": 14, "total_steps": 190, "loss": 1.9543, "learning_rate": 4.993910125649561e-06, "epoch": 0.36012861736334406, "percentage": 7.37, "elapsed_time": "0:03:04", "remaining_time": "0:38:44", "throughput": "479.20", "total_tokens": 88624}
15
+ {"current_steps": 15, "total_steps": 190, "loss": 0.7398, "learning_rate": 4.990486745229364e-06, "epoch": 0.3858520900321543, "percentage": 7.89, "elapsed_time": "0:03:18", "remaining_time": "0:38:31", "throughput": "478.49", "total_tokens": 94800}
16
+ {"current_steps": 16, "total_steps": 190, "loss": 1.1868, "learning_rate": 4.986304738420684e-06, "epoch": 0.4115755627009646, "percentage": 8.42, "elapsed_time": "0:03:31", "remaining_time": "0:38:17", "throughput": "479.67", "total_tokens": 101360}
17
+ {"current_steps": 17, "total_steps": 190, "loss": 0.5418, "learning_rate": 4.981365379103306e-06, "epoch": 0.43729903536977494, "percentage": 8.95, "elapsed_time": "0:03:44", "remaining_time": "0:38:04", "throughput": "478.83", "total_tokens": 107488}
18
+ {"current_steps": 18, "total_steps": 190, "loss": 0.2263, "learning_rate": 4.975670171853926e-06, "epoch": 0.4630225080385852, "percentage": 9.47, "elapsed_time": "0:03:57", "remaining_time": "0:37:50", "throughput": "479.37", "total_tokens": 113920}
19
+ {"current_steps": 19, "total_steps": 190, "loss": 0.1612, "learning_rate": 4.9692208514878445e-06, "epoch": 0.4887459807073955, "percentage": 10.0, "elapsed_time": "0:04:10", "remaining_time": "0:37:37", "throughput": "479.86", "total_tokens": 120352}
20
+ {"current_steps": 20, "total_steps": 190, "loss": 0.3299, "learning_rate": 4.962019382530521e-06, "epoch": 0.5144694533762058, "percentage": 10.53, "elapsed_time": "0:04:23", "remaining_time": "0:37:23", "throughput": "480.64", "total_tokens": 126880}
21
+ {"current_steps": 21, "total_steps": 190, "loss": 0.2013, "learning_rate": 4.9540679586191605e-06, "epoch": 0.5401929260450161, "percentage": 11.05, "elapsed_time": "0:04:37", "remaining_time": "0:37:10", "throughput": "481.12", "total_tokens": 133344}
22
+ {"current_steps": 22, "total_steps": 190, "loss": 0.2446, "learning_rate": 4.9453690018345144e-06, "epoch": 0.5659163987138264, "percentage": 11.58, "elapsed_time": "0:04:50", "remaining_time": "0:36:56", "throughput": "481.36", "total_tokens": 139744}
23
+ {"current_steps": 23, "total_steps": 190, "loss": 0.2235, "learning_rate": 4.935925161963089e-06, "epoch": 0.5916398713826366, "percentage": 12.11, "elapsed_time": "0:05:03", "remaining_time": "0:36:43", "throughput": "481.55", "total_tokens": 146144}
24
+ {"current_steps": 24, "total_steps": 190, "loss": 0.116, "learning_rate": 4.925739315689991e-06, "epoch": 0.617363344051447, "percentage": 12.63, "elapsed_time": "0:05:16", "remaining_time": "0:36:30", "throughput": "480.78", "total_tokens": 152240}
25
+ {"current_steps": 25, "total_steps": 190, "loss": 0.2179, "learning_rate": 4.914814565722671e-06, "epoch": 0.6430868167202572, "percentage": 13.16, "elapsed_time": "0:05:29", "remaining_time": "0:36:16", "throughput": "480.61", "total_tokens": 158512}
26
+ {"current_steps": 26, "total_steps": 190, "loss": 0.1414, "learning_rate": 4.903154239845798e-06, "epoch": 0.6688102893890675, "percentage": 13.68, "elapsed_time": "0:05:42", "remaining_time": "0:36:03", "throughput": "480.45", "total_tokens": 164784}
27
+ {"current_steps": 27, "total_steps": 190, "loss": 0.1181, "learning_rate": 4.890761889907589e-06, "epoch": 0.6945337620578779, "percentage": 14.21, "elapsed_time": "0:05:56", "remaining_time": "0:35:49", "throughput": "481.03", "total_tokens": 171312}
28
+ {"current_steps": 28, "total_steps": 190, "loss": 0.2753, "learning_rate": 4.8776412907378845e-06, "epoch": 0.7202572347266881, "percentage": 14.74, "elapsed_time": "0:06:09", "remaining_time": "0:35:36", "throughput": "481.61", "total_tokens": 177856}
29
+ {"current_steps": 29, "total_steps": 190, "loss": 0.3255, "learning_rate": 4.863796438998293e-06, "epoch": 0.7459807073954984, "percentage": 15.26, "elapsed_time": "0:06:22", "remaining_time": "0:35:23", "throughput": "482.08", "total_tokens": 184368}
30
+ {"current_steps": 30, "total_steps": 190, "loss": 0.2352, "learning_rate": 4.849231551964771e-06, "epoch": 0.7717041800643086, "percentage": 15.79, "elapsed_time": "0:06:35", "remaining_time": "0:35:09", "throughput": "482.60", "total_tokens": 190928}
31
+ {"current_steps": 31, "total_steps": 190, "loss": 0.063, "learning_rate": 4.833951066243004e-06, "epoch": 0.797427652733119, "percentage": 16.32, "elapsed_time": "0:06:48", "remaining_time": "0:34:56", "throughput": "482.48", "total_tokens": 197232}
32
+ {"current_steps": 32, "total_steps": 190, "loss": 0.2042, "learning_rate": 4.817959636416969e-06, "epoch": 0.8231511254019293, "percentage": 16.84, "elapsed_time": "0:07:01", "remaining_time": "0:34:43", "throughput": "482.50", "total_tokens": 203584}
33
+ {"current_steps": 33, "total_steps": 190, "loss": 0.1364, "learning_rate": 4.801262133631101e-06, "epoch": 0.8488745980707395, "percentage": 17.37, "elapsed_time": "0:07:15", "remaining_time": "0:34:30", "throughput": "482.93", "total_tokens": 210128}
34
+ {"current_steps": 34, "total_steps": 190, "loss": 0.0934, "learning_rate": 4.783863644106502e-06, "epoch": 0.8745980707395499, "percentage": 17.89, "elapsed_time": "0:07:28", "remaining_time": "0:34:16", "throughput": "482.98", "total_tokens": 216512}
35
+ {"current_steps": 35, "total_steps": 190, "loss": 0.1332, "learning_rate": 4.765769467591626e-06, "epoch": 0.9003215434083601, "percentage": 18.42, "elapsed_time": "0:07:41", "remaining_time": "0:34:03", "throughput": "483.11", "total_tokens": 222928}
36
+ {"current_steps": 36, "total_steps": 190, "loss": 0.1595, "learning_rate": 4.746985115747918e-06, "epoch": 0.9260450160771704, "percentage": 18.95, "elapsed_time": "0:07:54", "remaining_time": "0:33:50", "throughput": "483.00", "total_tokens": 229232}
37
+ {"current_steps": 37, "total_steps": 190, "loss": 0.1528, "learning_rate": 4.72751631047092e-06, "epoch": 0.9517684887459807, "percentage": 19.47, "elapsed_time": "0:08:07", "remaining_time": "0:33:37", "throughput": "483.18", "total_tokens": 235680}
38
+ {"current_steps": 38, "total_steps": 190, "loss": 0.1342, "learning_rate": 4.707368982147318e-06, "epoch": 0.977491961414791, "percentage": 20.0, "elapsed_time": "0:08:20", "remaining_time": "0:33:23", "throughput": "483.48", "total_tokens": 242192}
39
+ {"current_steps": 39, "total_steps": 190, "loss": 0.1586, "learning_rate": 4.68654926784849e-06, "epoch": 1.0032154340836013, "percentage": 20.53, "elapsed_time": "0:08:34", "remaining_time": "0:33:10", "throughput": "483.71", "total_tokens": 248672}
40
+ {"current_steps": 40, "total_steps": 190, "loss": 0.1072, "learning_rate": 4.665063509461098e-06, "epoch": 1.0289389067524115, "percentage": 21.05, "elapsed_time": "0:08:47", "remaining_time": "0:32:57", "throughput": "483.77", "total_tokens": 255072}
41
+ {"current_steps": 41, "total_steps": 190, "loss": 0.0357, "learning_rate": 4.642918251755281e-06, "epoch": 1.0546623794212218, "percentage": 21.58, "elapsed_time": "0:09:00", "remaining_time": "0:32:43", "throughput": "484.04", "total_tokens": 261584}
42
+ {"current_steps": 42, "total_steps": 190, "loss": 0.06, "learning_rate": 4.620120240391065e-06, "epoch": 1.0803858520900322, "percentage": 22.11, "elapsed_time": "0:09:13", "remaining_time": "0:32:30", "throughput": "484.18", "total_tokens": 268032}
43
+ {"current_steps": 43, "total_steps": 190, "loss": 0.0902, "learning_rate": 4.596676419863561e-06, "epoch": 1.1061093247588425, "percentage": 22.63, "elapsed_time": "0:09:26", "remaining_time": "0:32:17", "throughput": "484.46", "total_tokens": 274560}
44
+ {"current_steps": 44, "total_steps": 190, "loss": 0.0202, "learning_rate": 4.572593931387604e-06, "epoch": 1.1318327974276527, "percentage": 23.16, "elapsed_time": "0:09:39", "remaining_time": "0:32:04", "throughput": "484.51", "total_tokens": 280960}
45
+ {"current_steps": 45, "total_steps": 190, "loss": 0.038, "learning_rate": 4.54788011072248e-06, "epoch": 1.157556270096463, "percentage": 23.68, "elapsed_time": "0:09:53", "remaining_time": "0:31:51", "throughput": "484.10", "total_tokens": 287104}
46
+ {"current_steps": 46, "total_steps": 190, "loss": 0.0379, "learning_rate": 4.522542485937369e-06, "epoch": 1.1832797427652733, "percentage": 24.21, "elapsed_time": "0:10:06", "remaining_time": "0:31:37", "throughput": "484.17", "total_tokens": 293520}
47
+ {"current_steps": 47, "total_steps": 190, "loss": 0.0742, "learning_rate": 4.496588775118232e-06, "epoch": 1.2090032154340835, "percentage": 24.74, "elapsed_time": "0:10:19", "remaining_time": "0:31:24", "throughput": "484.24", "total_tokens": 299936}
48
+ {"current_steps": 48, "total_steps": 190, "loss": 0.0658, "learning_rate": 4.470026884016805e-06, "epoch": 1.234726688102894, "percentage": 25.26, "elapsed_time": "0:10:32", "remaining_time": "0:31:11", "throughput": "483.64", "total_tokens": 305936}
49
+ {"current_steps": 49, "total_steps": 190, "loss": 0.0336, "learning_rate": 4.442864903642428e-06, "epoch": 1.2604501607717042, "percentage": 25.79, "elapsed_time": "0:10:45", "remaining_time": "0:30:58", "throughput": "483.99", "total_tokens": 312528}
50
+ {"current_steps": 50, "total_steps": 190, "loss": 0.1021, "learning_rate": 4.415111107797445e-06, "epoch": 1.2861736334405145, "percentage": 26.32, "elapsed_time": "0:10:58", "remaining_time": "0:30:44", "throughput": "483.77", "total_tokens": 318752}
51
+ {"current_steps": 51, "total_steps": 190, "loss": 0.1312, "learning_rate": 4.386773950556931e-06, "epoch": 1.3118971061093248, "percentage": 26.84, "elapsed_time": "0:11:12", "remaining_time": "0:30:31", "throughput": "483.74", "total_tokens": 325088}
52
+ {"current_steps": 52, "total_steps": 190, "loss": 0.0665, "learning_rate": 4.357862063693486e-06, "epoch": 1.337620578778135, "percentage": 27.37, "elapsed_time": "0:11:25", "remaining_time": "0:30:18", "throughput": "483.68", "total_tokens": 331424}
53
+ {"current_steps": 53, "total_steps": 190, "loss": 0.0679, "learning_rate": 4.328384254047927e-06, "epoch": 1.3633440514469453, "percentage": 27.89, "elapsed_time": "0:11:38", "remaining_time": "0:30:05", "throughput": "483.66", "total_tokens": 337776}
54
+ {"current_steps": 54, "total_steps": 190, "loss": 0.0579, "learning_rate": 4.2983495008466285e-06, "epoch": 1.3890675241157555, "percentage": 28.42, "elapsed_time": "0:11:51", "remaining_time": "0:29:52", "throughput": "483.46", "total_tokens": 344000}
55
+ {"current_steps": 55, "total_steps": 190, "loss": 0.0542, "learning_rate": 4.267766952966369e-06, "epoch": 1.414790996784566, "percentage": 28.95, "elapsed_time": "0:12:04", "remaining_time": "0:29:38", "throughput": "483.69", "total_tokens": 350528}
56
+ {"current_steps": 56, "total_steps": 190, "loss": 0.0476, "learning_rate": 4.236645926147493e-06, "epoch": 1.4405144694533762, "percentage": 29.47, "elapsed_time": "0:12:17", "remaining_time": "0:29:25", "throughput": "483.69", "total_tokens": 356896}
57
+ {"current_steps": 57, "total_steps": 190, "loss": 0.0613, "learning_rate": 4.204995900156247e-06, "epoch": 1.4662379421221865, "percentage": 30.0, "elapsed_time": "0:12:31", "remaining_time": "0:29:12", "throughput": "483.84", "total_tokens": 363376}
58
+ {"current_steps": 58, "total_steps": 190, "loss": 0.0995, "learning_rate": 4.172826515897146e-06, "epoch": 1.4919614147909968, "percentage": 30.53, "elapsed_time": "0:12:44", "remaining_time": "0:28:59", "throughput": "483.76", "total_tokens": 369680}
59
+ {"current_steps": 59, "total_steps": 190, "loss": 0.0532, "learning_rate": 4.140147572476269e-06, "epoch": 1.517684887459807, "percentage": 31.05, "elapsed_time": "0:12:57", "remaining_time": "0:28:45", "throughput": "483.57", "total_tokens": 375904}
60
+ {"current_steps": 60, "total_steps": 190, "loss": 0.0824, "learning_rate": 4.106969024216348e-06, "epoch": 1.5434083601286175, "percentage": 31.58, "elapsed_time": "0:13:10", "remaining_time": "0:28:32", "throughput": "483.60", "total_tokens": 382304}
61
+ {"current_steps": 61, "total_steps": 190, "loss": 0.0499, "learning_rate": 4.073300977624594e-06, "epoch": 1.5691318327974275, "percentage": 32.11, "elapsed_time": "0:13:23", "remaining_time": "0:28:19", "throughput": "483.63", "total_tokens": 388688}
62
+ {"current_steps": 62, "total_steps": 190, "loss": 0.0413, "learning_rate": 4.039153688314146e-06, "epoch": 1.594855305466238, "percentage": 32.63, "elapsed_time": "0:13:36", "remaining_time": "0:28:06", "throughput": "483.75", "total_tokens": 395152}
63
+ {"current_steps": 63, "total_steps": 190, "loss": 0.0637, "learning_rate": 4.0045375578801216e-06, "epoch": 1.6205787781350482, "percentage": 33.16, "elapsed_time": "0:13:50", "remaining_time": "0:27:53", "throughput": "484.01", "total_tokens": 401728}
64
+ {"current_steps": 64, "total_steps": 190, "loss": 0.0529, "learning_rate": 3.969463130731183e-06, "epoch": 1.6463022508038585, "percentage": 33.68, "elapsed_time": "0:14:03", "remaining_time": "0:27:40", "throughput": "483.77", "total_tokens": 407904}
65
+ {"current_steps": 65, "total_steps": 190, "loss": 0.0474, "learning_rate": 3.933941090877615e-06, "epoch": 1.6720257234726688, "percentage": 34.21, "elapsed_time": "0:14:16", "remaining_time": "0:27:26", "throughput": "483.73", "total_tokens": 414240}
66
+ {"current_steps": 66, "total_steps": 190, "loss": 0.0649, "learning_rate": 3.897982258676867e-06, "epoch": 1.697749196141479, "percentage": 34.74, "elapsed_time": "0:14:29", "remaining_time": "0:27:13", "throughput": "483.55", "total_tokens": 420448}
67
+ {"current_steps": 67, "total_steps": 190, "loss": 0.0505, "learning_rate": 3.861597587537568e-06, "epoch": 1.7234726688102895, "percentage": 35.26, "elapsed_time": "0:14:42", "remaining_time": "0:27:00", "throughput": "483.51", "total_tokens": 426784}
68
+ {"current_steps": 68, "total_steps": 190, "loss": 0.0621, "learning_rate": 3.824798160583012e-06, "epoch": 1.7491961414790995, "percentage": 35.79, "elapsed_time": "0:14:55", "remaining_time": "0:26:47", "throughput": "483.14", "total_tokens": 432816}
69
+ {"current_steps": 69, "total_steps": 190, "loss": 0.0769, "learning_rate": 3.787595187275136e-06, "epoch": 1.77491961414791, "percentage": 36.32, "elapsed_time": "0:15:09", "remaining_time": "0:26:34", "throughput": "483.20", "total_tokens": 439232}
70
+ {"current_steps": 70, "total_steps": 190, "loss": 0.0435, "learning_rate": 3.7500000000000005e-06, "epoch": 1.8006430868167203, "percentage": 36.84, "elapsed_time": "0:15:22", "remaining_time": "0:26:20", "throughput": "483.42", "total_tokens": 445792}
71
+ {"current_steps": 71, "total_steps": 190, "loss": 0.0673, "learning_rate": 3.7120240506158433e-06, "epoch": 1.8263665594855305, "percentage": 37.37, "elapsed_time": "0:15:35", "remaining_time": "0:26:07", "throughput": "483.69", "total_tokens": 452400}
72
+ {"current_steps": 72, "total_steps": 190, "loss": 0.1316, "learning_rate": 3.6736789069647273e-06, "epoch": 1.852090032154341, "percentage": 37.89, "elapsed_time": "0:15:48", "remaining_time": "0:25:54", "throughput": "483.44", "total_tokens": 458528}
73
+ {"current_steps": 73, "total_steps": 190, "loss": 0.0531, "learning_rate": 3.634976249348867e-06, "epoch": 1.877813504823151, "percentage": 38.42, "elapsed_time": "0:16:01", "remaining_time": "0:25:41", "throughput": "483.53", "total_tokens": 464976}
74
+ {"current_steps": 74, "total_steps": 190, "loss": 0.0287, "learning_rate": 3.595927866972694e-06, "epoch": 1.9035369774919615, "percentage": 38.95, "elapsed_time": "0:16:14", "remaining_time": "0:25:28", "throughput": "483.62", "total_tokens": 471440}
75
+ {"current_steps": 75, "total_steps": 190, "loss": 0.0648, "learning_rate": 3.556545654351749e-06, "epoch": 1.9292604501607717, "percentage": 39.47, "elapsed_time": "0:16:27", "remaining_time": "0:25:14", "throughput": "483.59", "total_tokens": 477776}
76
+ {"current_steps": 76, "total_steps": 190, "loss": 0.1211, "learning_rate": 3.516841607689501e-06, "epoch": 1.954983922829582, "percentage": 40.0, "elapsed_time": "0:16:41", "remaining_time": "0:25:01", "throughput": "483.54", "total_tokens": 484096}
77
+ {"current_steps": 77, "total_steps": 190, "loss": 0.0879, "learning_rate": 3.476827821223184e-06, "epoch": 1.9807073954983923, "percentage": 40.53, "elapsed_time": "0:16:54", "remaining_time": "0:24:48", "throughput": "483.26", "total_tokens": 490176}
78
+ {"current_steps": 78, "total_steps": 190, "loss": 0.0227, "learning_rate": 3.436516483539781e-06, "epoch": 2.0064308681672025, "percentage": 41.05, "elapsed_time": "0:17:07", "remaining_time": "0:24:35", "throughput": "483.39", "total_tokens": 496672}
79
+ {"current_steps": 79, "total_steps": 190, "loss": 0.0228, "learning_rate": 3.39591987386325e-06, "epoch": 2.032154340836013, "percentage": 41.58, "elapsed_time": "0:17:20", "remaining_time": "0:24:22", "throughput": "483.45", "total_tokens": 503088}
80
+ {"current_steps": 80, "total_steps": 190, "loss": 0.036, "learning_rate": 3.3550503583141726e-06, "epoch": 2.057877813504823, "percentage": 42.11, "elapsed_time": "0:17:33", "remaining_time": "0:24:08", "throughput": "483.47", "total_tokens": 509472}
81
+ {"current_steps": 81, "total_steps": 190, "loss": 0.0138, "learning_rate": 3.313920386142892e-06, "epoch": 2.0836012861736335, "percentage": 42.63, "elapsed_time": "0:17:46", "remaining_time": "0:23:55", "throughput": "483.36", "total_tokens": 515728}
82
+ {"current_steps": 82, "total_steps": 190, "loss": 0.0697, "learning_rate": 3.272542485937369e-06, "epoch": 2.1093247588424435, "percentage": 43.16, "elapsed_time": "0:18:00", "remaining_time": "0:23:42", "throughput": "483.18", "total_tokens": 521904}
83
+ {"current_steps": 83, "total_steps": 190, "loss": 0.0508, "learning_rate": 3.230929261806842e-06, "epoch": 2.135048231511254, "percentage": 43.68, "elapsed_time": "0:18:13", "remaining_time": "0:23:29", "throughput": "482.89", "total_tokens": 527952}
84
+ {"current_steps": 84, "total_steps": 190, "loss": 0.0088, "learning_rate": 3.189093389542498e-06, "epoch": 2.1607717041800645, "percentage": 44.21, "elapsed_time": "0:18:26", "remaining_time": "0:23:16", "throughput": "483.18", "total_tokens": 534624}
85
+ {"current_steps": 85, "total_steps": 190, "loss": 0.0158, "learning_rate": 3.147047612756302e-06, "epoch": 2.1864951768488745, "percentage": 44.74, "elapsed_time": "0:18:39", "remaining_time": "0:23:03", "throughput": "483.34", "total_tokens": 541168}
86
+ {"current_steps": 86, "total_steps": 190, "loss": 0.006, "learning_rate": 3.1048047389991693e-06, "epoch": 2.212218649517685, "percentage": 45.26, "elapsed_time": "0:18:52", "remaining_time": "0:22:49", "throughput": "483.30", "total_tokens": 547488}
87
+ {"current_steps": 87, "total_steps": 190, "loss": 0.038, "learning_rate": 3.062377635859663e-06, "epoch": 2.237942122186495, "percentage": 45.79, "elapsed_time": "0:19:05", "remaining_time": "0:22:36", "throughput": "483.67", "total_tokens": 554272}
88
+ {"current_steps": 88, "total_steps": 190, "loss": 0.0004, "learning_rate": 3.019779227044398e-06, "epoch": 2.2636655948553055, "percentage": 46.32, "elapsed_time": "0:19:19", "remaining_time": "0:22:23", "throughput": "483.58", "total_tokens": 560528}
89
+ {"current_steps": 89, "total_steps": 190, "loss": 0.0111, "learning_rate": 2.9770224884413625e-06, "epoch": 2.289389067524116, "percentage": 46.84, "elapsed_time": "0:19:32", "remaining_time": "0:22:10", "throughput": "483.47", "total_tokens": 566784}
90
+ {"current_steps": 90, "total_steps": 190, "loss": 0.0008, "learning_rate": 2.9341204441673267e-06, "epoch": 2.315112540192926, "percentage": 47.37, "elapsed_time": "0:19:45", "remaining_time": "0:21:57", "throughput": "483.64", "total_tokens": 573344}
91
+ {"current_steps": 91, "total_steps": 190, "loss": 0.0182, "learning_rate": 2.8910861626005774e-06, "epoch": 2.3408360128617365, "percentage": 47.89, "elapsed_time": "0:19:58", "remaining_time": "0:21:43", "throughput": "483.70", "total_tokens": 579776}
92
+ {"current_steps": 92, "total_steps": 190, "loss": 0.0491, "learning_rate": 2.847932752400164e-06, "epoch": 2.3665594855305465, "percentage": 48.42, "elapsed_time": "0:20:11", "remaining_time": "0:21:30", "throughput": "483.66", "total_tokens": 586096}
93
+ {"current_steps": 93, "total_steps": 190, "loss": 0.004, "learning_rate": 2.804673358512869e-06, "epoch": 2.392282958199357, "percentage": 48.95, "elapsed_time": "0:20:24", "remaining_time": "0:21:17", "throughput": "483.71", "total_tokens": 592528}
94
+ {"current_steps": 94, "total_steps": 190, "loss": 0.0176, "learning_rate": 2.761321158169134e-06, "epoch": 2.418006430868167, "percentage": 49.47, "elapsed_time": "0:20:38", "remaining_time": "0:21:04", "throughput": "483.76", "total_tokens": 598960}
95
+ {"current_steps": 95, "total_steps": 190, "loss": 0.019, "learning_rate": 2.717889356869146e-06, "epoch": 2.4437299035369775, "percentage": 50.0, "elapsed_time": "0:20:51", "remaining_time": "0:20:51", "throughput": "483.69", "total_tokens": 605232}
96
+ {"current_steps": 96, "total_steps": 190, "loss": 0.027, "learning_rate": 2.6743911843603134e-06, "epoch": 2.469453376205788, "percentage": 50.53, "elapsed_time": "0:21:04", "remaining_time": "0:20:38", "throughput": "483.49", "total_tokens": 611344}
97
+ {"current_steps": 97, "total_steps": 190, "loss": 0.0354, "learning_rate": 2.6308398906073603e-06, "epoch": 2.495176848874598, "percentage": 51.05, "elapsed_time": "0:21:17", "remaining_time": "0:20:24", "throughput": "483.49", "total_tokens": 617712}
98
+ {"current_steps": 98, "total_steps": 190, "loss": 0.0741, "learning_rate": 2.587248741756253e-06, "epoch": 2.5209003215434085, "percentage": 51.58, "elapsed_time": "0:21:30", "remaining_time": "0:20:11", "throughput": "483.59", "total_tokens": 624208}
99
+ {"current_steps": 99, "total_steps": 190, "loss": 0.0582, "learning_rate": 2.543631016093209e-06, "epoch": 2.5466237942122185, "percentage": 52.11, "elapsed_time": "0:21:43", "remaining_time": "0:19:58", "throughput": "483.53", "total_tokens": 630496}
100
+ {"current_steps": 100, "total_steps": 190, "loss": 0.0096, "learning_rate": 2.5e-06, "epoch": 2.572347266881029, "percentage": 52.63, "elapsed_time": "0:21:57", "remaining_time": "0:19:45", "throughput": "483.66", "total_tokens": 637040}
101
+ {"current_steps": 101, "total_steps": 190, "loss": 0.0263, "learning_rate": 2.4563689839067913e-06, "epoch": 2.598070739549839, "percentage": 53.16, "elapsed_time": "0:22:10", "remaining_time": "0:19:32", "throughput": "483.71", "total_tokens": 643472}
102
+ {"current_steps": 102, "total_steps": 190, "loss": 0.0121, "learning_rate": 2.4127512582437486e-06, "epoch": 2.6237942122186495, "percentage": 53.68, "elapsed_time": "0:22:23", "remaining_time": "0:19:19", "throughput": "483.65", "total_tokens": 649760}
103
+ {"current_steps": 103, "total_steps": 190, "loss": 0.0204, "learning_rate": 2.3691601093926406e-06, "epoch": 2.64951768488746, "percentage": 54.21, "elapsed_time": "0:22:36", "remaining_time": "0:19:05", "throughput": "483.62", "total_tokens": 656096}
104
+ {"current_steps": 104, "total_steps": 190, "loss": 0.0325, "learning_rate": 2.325608815639687e-06, "epoch": 2.67524115755627, "percentage": 54.74, "elapsed_time": "0:22:49", "remaining_time": "0:18:52", "throughput": "483.74", "total_tokens": 662624}
105
+ {"current_steps": 105, "total_steps": 190, "loss": 0.0076, "learning_rate": 2.2821106431308546e-06, "epoch": 2.7009646302250805, "percentage": 55.26, "elapsed_time": "0:23:02", "remaining_time": "0:18:39", "throughput": "483.58", "total_tokens": 668768}
106
+ {"current_steps": 106, "total_steps": 190, "loss": 0.0485, "learning_rate": 2.238678841830867e-06, "epoch": 2.7266881028938905, "percentage": 55.79, "elapsed_time": "0:23:16", "remaining_time": "0:18:26", "throughput": "483.48", "total_tokens": 674992}
107
+ {"current_steps": 107, "total_steps": 190, "loss": 0.007, "learning_rate": 2.195326641487132e-06, "epoch": 2.752411575562701, "percentage": 56.32, "elapsed_time": "0:23:29", "remaining_time": "0:18:13", "throughput": "483.31", "total_tokens": 681120}
108
+ {"current_steps": 108, "total_steps": 190, "loss": 0.0347, "learning_rate": 2.1520672475998374e-06, "epoch": 2.778135048231511, "percentage": 56.84, "elapsed_time": "0:23:42", "remaining_time": "0:18:00", "throughput": "483.23", "total_tokens": 687376}
109
+ {"current_steps": 109, "total_steps": 190, "loss": 0.0142, "learning_rate": 2.1089138373994226e-06, "epoch": 2.8038585209003215, "percentage": 57.37, "elapsed_time": "0:23:55", "remaining_time": "0:17:46", "throughput": "483.41", "total_tokens": 693984}
110
+ {"current_steps": 110, "total_steps": 190, "loss": 0.0414, "learning_rate": 2.0658795558326745e-06, "epoch": 2.829581993569132, "percentage": 57.89, "elapsed_time": "0:24:08", "remaining_time": "0:17:33", "throughput": "483.41", "total_tokens": 700352}
111
+ {"current_steps": 111, "total_steps": 190, "loss": 0.0419, "learning_rate": 2.022977511558638e-06, "epoch": 2.855305466237942, "percentage": 58.42, "elapsed_time": "0:24:21", "remaining_time": "0:17:20", "throughput": "483.45", "total_tokens": 706768}
112
+ {"current_steps": 112, "total_steps": 190, "loss": 0.043, "learning_rate": 1.9802207729556023e-06, "epoch": 2.8810289389067525, "percentage": 58.95, "elapsed_time": "0:24:35", "remaining_time": "0:17:07", "throughput": "483.52", "total_tokens": 713248}
113
+ {"current_steps": 113, "total_steps": 190, "loss": 0.0192, "learning_rate": 1.937622364140338e-06, "epoch": 2.906752411575563, "percentage": 59.47, "elapsed_time": "0:24:48", "remaining_time": "0:16:54", "throughput": "483.49", "total_tokens": 719568}
114
+ {"current_steps": 114, "total_steps": 190, "loss": 0.0427, "learning_rate": 1.895195261000831e-06, "epoch": 2.932475884244373, "percentage": 60.0, "elapsed_time": "0:25:01", "remaining_time": "0:16:40", "throughput": "483.53", "total_tokens": 725984}
115
+ {"current_steps": 115, "total_steps": 190, "loss": 0.0116, "learning_rate": 1.852952387243698e-06, "epoch": 2.958199356913183, "percentage": 60.53, "elapsed_time": "0:25:14", "remaining_time": "0:16:27", "throughput": "483.44", "total_tokens": 732224}
116
+ {"current_steps": 116, "total_steps": 190, "loss": 0.0135, "learning_rate": 1.8109066104575023e-06, "epoch": 2.9839228295819935, "percentage": 61.05, "elapsed_time": "0:25:27", "remaining_time": "0:16:14", "throughput": "483.38", "total_tokens": 738496}
117
+ {"current_steps": 117, "total_steps": 190, "loss": 0.0128, "learning_rate": 1.7690707381931585e-06, "epoch": 3.009646302250804, "percentage": 61.58, "elapsed_time": "0:25:40", "remaining_time": "0:16:01", "throughput": "483.40", "total_tokens": 744880}
118
+ {"current_steps": 118, "total_steps": 190, "loss": 0.0021, "learning_rate": 1.7274575140626318e-06, "epoch": 3.035369774919614, "percentage": 62.11, "elapsed_time": "0:25:54", "remaining_time": "0:15:48", "throughput": "483.50", "total_tokens": 751408}
119
+ {"current_steps": 119, "total_steps": 190, "loss": 0.0057, "learning_rate": 1.686079613857109e-06, "epoch": 3.0610932475884245, "percentage": 62.63, "elapsed_time": "0:26:07", "remaining_time": "0:15:35", "throughput": "483.41", "total_tokens": 757632}
120
+ {"current_steps": 120, "total_steps": 190, "loss": 0.0197, "learning_rate": 1.6449496416858285e-06, "epoch": 3.0868167202572345, "percentage": 63.16, "elapsed_time": "0:26:20", "remaining_time": "0:15:21", "throughput": "483.37", "total_tokens": 763936}
121
+ {"current_steps": 121, "total_steps": 190, "loss": 0.0017, "learning_rate": 1.6040801261367494e-06, "epoch": 3.112540192926045, "percentage": 63.68, "elapsed_time": "0:26:33", "remaining_time": "0:15:08", "throughput": "483.22", "total_tokens": 770064}
122
+ {"current_steps": 122, "total_steps": 190, "loss": 0.0068, "learning_rate": 1.56348351646022e-06, "epoch": 3.1382636655948555, "percentage": 64.21, "elapsed_time": "0:26:46", "remaining_time": "0:14:55", "throughput": "483.07", "total_tokens": 776176}
123
+ {"current_steps": 123, "total_steps": 190, "loss": 0.0022, "learning_rate": 1.5231721787768162e-06, "epoch": 3.1639871382636655, "percentage": 64.74, "elapsed_time": "0:26:59", "remaining_time": "0:14:42", "throughput": "483.02", "total_tokens": 782464}
124
+ {"current_steps": 124, "total_steps": 190, "loss": 0.0162, "learning_rate": 1.4831583923105e-06, "epoch": 3.189710610932476, "percentage": 65.26, "elapsed_time": "0:27:13", "remaining_time": "0:14:29", "throughput": "483.18", "total_tokens": 789072}
125
+ {"current_steps": 125, "total_steps": 190, "loss": 0.0014, "learning_rate": 1.443454345648252e-06, "epoch": 3.215434083601286, "percentage": 65.79, "elapsed_time": "0:27:26", "remaining_time": "0:14:16", "throughput": "483.24", "total_tokens": 795536}
126
+ {"current_steps": 126, "total_steps": 190, "loss": 0.0063, "learning_rate": 1.4040721330273063e-06, "epoch": 3.2411575562700965, "percentage": 66.32, "elapsed_time": "0:27:39", "remaining_time": "0:14:02", "throughput": "483.23", "total_tokens": 801888}
127
+ {"current_steps": 127, "total_steps": 190, "loss": 0.0282, "learning_rate": 1.3650237506511333e-06, "epoch": 3.266881028938907, "percentage": 66.84, "elapsed_time": "0:27:52", "remaining_time": "0:13:49", "throughput": "483.34", "total_tokens": 808432}
128
+ {"current_steps": 128, "total_steps": 190, "loss": 0.0003, "learning_rate": 1.3263210930352737e-06, "epoch": 3.292604501607717, "percentage": 67.37, "elapsed_time": "0:28:05", "remaining_time": "0:13:36", "throughput": "483.41", "total_tokens": 814896}
129
+ {"current_steps": 129, "total_steps": 190, "loss": 0.0002, "learning_rate": 1.2879759493841577e-06, "epoch": 3.3183279742765275, "percentage": 67.89, "elapsed_time": "0:28:18", "remaining_time": "0:13:23", "throughput": "483.37", "total_tokens": 821200}
130
+ {"current_steps": 130, "total_steps": 190, "loss": 0.0004, "learning_rate": 1.2500000000000007e-06, "epoch": 3.3440514469453375, "percentage": 68.42, "elapsed_time": "0:28:32", "remaining_time": "0:13:10", "throughput": "483.38", "total_tokens": 827584}
131
+ {"current_steps": 131, "total_steps": 190, "loss": 0.0169, "learning_rate": 1.2124048127248644e-06, "epoch": 3.369774919614148, "percentage": 68.95, "elapsed_time": "0:28:45", "remaining_time": "0:12:57", "throughput": "483.44", "total_tokens": 834048}
132
+ {"current_steps": 132, "total_steps": 190, "loss": 0.0127, "learning_rate": 1.1752018394169882e-06, "epoch": 3.395498392282958, "percentage": 69.47, "elapsed_time": "0:28:58", "remaining_time": "0:12:43", "throughput": "483.34", "total_tokens": 840240}
133
+ {"current_steps": 133, "total_steps": 190, "loss": 0.0045, "learning_rate": 1.1384024124624324e-06, "epoch": 3.4212218649517685, "percentage": 70.0, "elapsed_time": "0:29:11", "remaining_time": "0:12:30", "throughput": "483.25", "total_tokens": 846448}
134
+ {"current_steps": 134, "total_steps": 190, "loss": 0.0924, "learning_rate": 1.1020177413231334e-06, "epoch": 3.446945337620579, "percentage": 70.53, "elapsed_time": "0:29:24", "remaining_time": "0:12:17", "throughput": "483.31", "total_tokens": 852928}
135
+ {"current_steps": 135, "total_steps": 190, "loss": 0.0067, "learning_rate": 1.0660589091223854e-06, "epoch": 3.472668810289389, "percentage": 71.05, "elapsed_time": "0:29:37", "remaining_time": "0:12:04", "throughput": "483.33", "total_tokens": 859312}
136
+ {"current_steps": 136, "total_steps": 190, "loss": 0.003, "learning_rate": 1.0305368692688175e-06, "epoch": 3.4983922829581995, "percentage": 71.58, "elapsed_time": "0:29:51", "remaining_time": "0:11:51", "throughput": "483.19", "total_tokens": 865440}
137
+ {"current_steps": 137, "total_steps": 190, "loss": 0.0164, "learning_rate": 9.95462442119879e-07, "epoch": 3.5241157556270095, "percentage": 72.11, "elapsed_time": "0:30:04", "remaining_time": "0:11:37", "throughput": "483.29", "total_tokens": 871968}
138
+ {"current_steps": 138, "total_steps": 190, "loss": 0.0018, "learning_rate": 9.608463116858544e-07, "epoch": 3.54983922829582, "percentage": 72.63, "elapsed_time": "0:30:17", "remaining_time": "0:11:24", "throughput": "483.30", "total_tokens": 878352}
139
+ {"current_steps": 139, "total_steps": 190, "loss": 0.0226, "learning_rate": 9.266990223754069e-07, "epoch": 3.57556270096463, "percentage": 73.16, "elapsed_time": "0:30:30", "remaining_time": "0:11:11", "throughput": "483.32", "total_tokens": 884736}
140
+ {"current_steps": 140, "total_steps": 190, "loss": 0.0008, "learning_rate": 8.930309757836517e-07, "epoch": 3.6012861736334405, "percentage": 73.68, "elapsed_time": "0:30:43", "remaining_time": "0:10:58", "throughput": "483.26", "total_tokens": 891008}
141
+ {"current_steps": 141, "total_steps": 190, "loss": 0.0004, "learning_rate": 8.598524275237321e-07, "epoch": 3.627009646302251, "percentage": 74.21, "elapsed_time": "0:30:56", "remaining_time": "0:10:45", "throughput": "483.13", "total_tokens": 897120}
142
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143
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