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.ipynb_checkpoints/train_results-checkpoint.json ADDED
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1
+ {
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+ "epoch": 2.979631425800194,
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+ "num_input_tokens_seen": 100663296,
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+ "total_flos": 4.2827022437921587e+18,
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+ "train_loss": 0.3106601850595325,
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+ "train_runtime": 8133.8849,
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+ "train_samples_per_second": 12.157,
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+ "train_steps_per_second": 0.047
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+ }
.ipynb_checkpoints/trainer_log-checkpoint.jsonl ADDED
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1
+ {"current_steps": 2, "total_steps": 384, "loss": 0.831, "learning_rate": 0.0001, "epoch": 0.015518913676042677, "percentage": 0.52, "elapsed_time": "0:00:43", "remaining_time": "2:18:17", "throughput": "12068.40", "total_tokens": 524288}
2
+ {"current_steps": 4, "total_steps": 384, "loss": 0.7398, "learning_rate": 9.999323662872997e-05, "epoch": 0.031037827352085354, "percentage": 1.04, "elapsed_time": "0:01:25", "remaining_time": "2:15:43", "throughput": "12232.95", "total_tokens": 1048576}
3
+ {"current_steps": 6, "total_steps": 384, "loss": 0.6438, "learning_rate": 9.99729483446475e-05, "epoch": 0.04655674102812803, "percentage": 1.56, "elapsed_time": "0:02:08", "remaining_time": "2:14:25", "throughput": "12285.60", "total_tokens": 1572864}
4
+ {"current_steps": 8, "total_steps": 384, "loss": 0.6032, "learning_rate": 9.993914063644052e-05, "epoch": 0.06207565470417071, "percentage": 2.08, "elapsed_time": "0:02:50", "remaining_time": "2:13:28", "throughput": "12307.51", "total_tokens": 2097152}
5
+ {"current_steps": 10, "total_steps": 384, "loss": 0.5433, "learning_rate": 9.989182265027232e-05, "epoch": 0.07759456838021339, "percentage": 2.6, "elapsed_time": "0:03:32", "remaining_time": "2:12:35", "throughput": "12323.95", "total_tokens": 2621440}
6
+ {"current_steps": 12, "total_steps": 384, "loss": 0.5228, "learning_rate": 9.98310071873072e-05, "epoch": 0.09311348205625607, "percentage": 3.12, "elapsed_time": "0:04:15", "remaining_time": "2:11:47", "throughput": "12332.99", "total_tokens": 3145728}
7
+ {"current_steps": 14, "total_steps": 384, "loss": 0.4702, "learning_rate": 9.97567107002474e-05, "epoch": 0.10863239573229874, "percentage": 3.65, "elapsed_time": "0:04:57", "remaining_time": "2:10:58", "throughput": "12341.83", "total_tokens": 3670016}
8
+ {"current_steps": 16, "total_steps": 384, "loss": 0.4574, "learning_rate": 9.966895328888194e-05, "epoch": 0.12415130940834142, "percentage": 4.17, "elapsed_time": "0:05:39", "remaining_time": "2:10:13", "throughput": "12347.21", "total_tokens": 4194304}
9
+ {"current_steps": 18, "total_steps": 384, "loss": 0.5093, "learning_rate": 9.956775869464901e-05, "epoch": 0.1396702230843841, "percentage": 4.69, "elapsed_time": "0:06:22", "remaining_time": "2:09:28", "throughput": "12350.26", "total_tokens": 4718592}
10
+ {"current_steps": 20, "total_steps": 384, "loss": 0.4771, "learning_rate": 9.945315429421306e-05, "epoch": 0.15518913676042678, "percentage": 5.21, "elapsed_time": "0:07:04", "remaining_time": "2:08:44", "throughput": "12352.92", "total_tokens": 5242880}
11
+ {"current_steps": 22, "total_steps": 384, "loss": 0.4343, "learning_rate": 9.932517109205849e-05, "epoch": 0.17070805043646944, "percentage": 5.73, "elapsed_time": "0:07:46", "remaining_time": "2:08:00", "throughput": "12355.21", "total_tokens": 5767168}
12
+ {"current_steps": 24, "total_steps": 384, "loss": 0.4455, "learning_rate": 9.918384371210176e-05, "epoch": 0.18622696411251213, "percentage": 6.25, "elapsed_time": "0:08:29", "remaining_time": "2:07:17", "throughput": "12356.26", "total_tokens": 6291456}
13
+ {"current_steps": 26, "total_steps": 384, "loss": 0.4669, "learning_rate": 9.902921038832455e-05, "epoch": 0.2017458777885548, "percentage": 6.77, "elapsed_time": "0:09:11", "remaining_time": "2:06:35", "throughput": "12356.01", "total_tokens": 6815744}
14
+ {"current_steps": 28, "total_steps": 384, "loss": 0.4723, "learning_rate": 9.886131295443003e-05, "epoch": 0.21726479146459748, "percentage": 7.29, "elapsed_time": "0:09:53", "remaining_time": "2:05:51", "throughput": "12357.59", "total_tokens": 7340032}
15
+ {"current_steps": 30, "total_steps": 384, "loss": 0.4364, "learning_rate": 9.868019683252543e-05, "epoch": 0.23278370514064015, "percentage": 7.81, "elapsed_time": "0:10:36", "remaining_time": "2:05:09", "throughput": "12358.33", "total_tokens": 7864320}
16
+ {"current_steps": 32, "total_steps": 384, "loss": 0.4013, "learning_rate": 9.848591102083375e-05, "epoch": 0.24830261881668284, "percentage": 8.33, "elapsed_time": "0:11:18", "remaining_time": "2:04:25", "throughput": "12360.25", "total_tokens": 8388608}
17
+ {"current_steps": 34, "total_steps": 384, "loss": 0.3875, "learning_rate": 9.82785080804381e-05, "epoch": 0.2638215324927255, "percentage": 8.85, "elapsed_time": "0:12:01", "remaining_time": "2:03:42", "throughput": "12360.97", "total_tokens": 8912896}
18
+ {"current_steps": 36, "total_steps": 384, "loss": 0.4187, "learning_rate": 9.805804412106198e-05, "epoch": 0.2793404461687682, "percentage": 9.38, "elapsed_time": "0:12:43", "remaining_time": "2:02:59", "throughput": "12361.99", "total_tokens": 9437184}
19
+ {"current_steps": 38, "total_steps": 384, "loss": 0.3981, "learning_rate": 9.782457878588977e-05, "epoch": 0.2948593598448109, "percentage": 9.9, "elapsed_time": "0:13:25", "remaining_time": "2:02:16", "throughput": "12363.00", "total_tokens": 9961472}
20
+ {"current_steps": 40, "total_steps": 384, "loss": 0.4121, "learning_rate": 9.757817523543109e-05, "epoch": 0.31037827352085356, "percentage": 10.42, "elapsed_time": "0:14:08", "remaining_time": "2:01:34", "throughput": "12363.06", "total_tokens": 10485760}
21
+ {"current_steps": 42, "total_steps": 384, "loss": 0.392, "learning_rate": 9.731890013043368e-05, "epoch": 0.3258971871968962, "percentage": 10.94, "elapsed_time": "0:14:50", "remaining_time": "2:00:51", "throughput": "12363.66", "total_tokens": 11010048}
22
+ {"current_steps": 44, "total_steps": 384, "loss": 0.3845, "learning_rate": 9.704682361384941e-05, "epoch": 0.3414161008729389, "percentage": 11.46, "elapsed_time": "0:15:32", "remaining_time": "2:00:08", "throughput": "12365.26", "total_tokens": 11534336}
23
+ {"current_steps": 46, "total_steps": 384, "loss": 0.397, "learning_rate": 9.676201929185809e-05, "epoch": 0.3569350145489816, "percentage": 11.98, "elapsed_time": "0:16:15", "remaining_time": "1:59:25", "throughput": "12365.45", "total_tokens": 12058624}
24
+ {"current_steps": 48, "total_steps": 384, "loss": 0.3753, "learning_rate": 9.646456421395446e-05, "epoch": 0.37245392822502427, "percentage": 12.5, "elapsed_time": "0:16:57", "remaining_time": "1:58:42", "throughput": "12365.80", "total_tokens": 12582912}
25
+ {"current_steps": 50, "total_steps": 384, "loss": 0.387, "learning_rate": 9.615453885210369e-05, "epoch": 0.3879728419010669, "percentage": 13.02, "elapsed_time": "0:17:39", "remaining_time": "1:58:00", "throughput": "12366.58", "total_tokens": 13107200}
26
+ {"current_steps": 52, "total_steps": 384, "loss": 0.3724, "learning_rate": 9.583202707897074e-05, "epoch": 0.4034917555771096, "percentage": 13.54, "elapsed_time": "0:18:22", "remaining_time": "1:57:17", "throughput": "12367.11", "total_tokens": 13631488}
27
+ {"current_steps": 54, "total_steps": 384, "loss": 0.4394, "learning_rate": 9.549711614523007e-05, "epoch": 0.4190106692531523, "percentage": 14.06, "elapsed_time": "0:19:04", "remaining_time": "1:56:34", "throughput": "12367.54", "total_tokens": 14155776}
28
+ {"current_steps": 56, "total_steps": 384, "loss": 0.4177, "learning_rate": 9.514989665596114e-05, "epoch": 0.43452958292919497, "percentage": 14.58, "elapsed_time": "0:19:46", "remaining_time": "1:55:52", "throughput": "12368.03", "total_tokens": 14680064}
29
+ {"current_steps": 58, "total_steps": 384, "loss": 0.3939, "learning_rate": 9.479046254613673e-05, "epoch": 0.45004849660523766, "percentage": 15.1, "elapsed_time": "0:20:29", "remaining_time": "1:55:09", "throughput": "12368.21", "total_tokens": 15204352}
30
+ {"current_steps": 60, "total_steps": 384, "loss": 0.4207, "learning_rate": 9.441891105521006e-05, "epoch": 0.4655674102812803, "percentage": 15.62, "elapsed_time": "0:21:11", "remaining_time": "1:54:26", "throughput": "12368.89", "total_tokens": 15728640}
31
+ {"current_steps": 62, "total_steps": 384, "loss": 0.3653, "learning_rate": 9.403534270080829e-05, "epoch": 0.481086323957323, "percentage": 16.15, "elapsed_time": "0:21:53", "remaining_time": "1:53:44", "throughput": "12369.17", "total_tokens": 16252928}
32
+ {"current_steps": 64, "total_steps": 384, "loss": 0.3925, "learning_rate": 9.3639861251539e-05, "epoch": 0.49660523763336567, "percentage": 16.67, "elapsed_time": "0:22:36", "remaining_time": "1:53:01", "throughput": "12369.62", "total_tokens": 16777216}
33
+ {"current_steps": 66, "total_steps": 384, "loss": 0.3982, "learning_rate": 9.323257369891703e-05, "epoch": 0.5121241513094084, "percentage": 17.19, "elapsed_time": "0:23:18", "remaining_time": "1:52:19", "throughput": "12369.99", "total_tokens": 17301504}
34
+ {"current_steps": 68, "total_steps": 384, "loss": 0.3709, "learning_rate": 9.281359022841965e-05, "epoch": 0.527643064985451, "percentage": 17.71, "elapsed_time": "0:24:01", "remaining_time": "1:51:36", "throughput": "12370.31", "total_tokens": 17825792}
35
+ {"current_steps": 70, "total_steps": 384, "loss": 0.3744, "learning_rate": 9.238302418967756e-05, "epoch": 0.5431619786614937, "percentage": 18.23, "elapsed_time": "0:24:43", "remaining_time": "1:50:54", "throughput": "12370.44", "total_tokens": 18350080}
36
+ {"current_steps": 72, "total_steps": 384, "loss": 0.3929, "learning_rate": 9.194099206580982e-05, "epoch": 0.5586808923375364, "percentage": 18.75, "elapsed_time": "0:25:25", "remaining_time": "1:50:11", "throughput": "12370.64", "total_tokens": 18874368}
37
+ {"current_steps": 74, "total_steps": 384, "loss": 0.3716, "learning_rate": 9.148761344191109e-05, "epoch": 0.574199806013579, "percentage": 19.27, "elapsed_time": "0:26:08", "remaining_time": "1:49:29", "throughput": "12370.73", "total_tokens": 19398656}
38
+ {"current_steps": 76, "total_steps": 384, "loss": 0.3959, "learning_rate": 9.102301097269974e-05, "epoch": 0.5897187196896218, "percentage": 19.79, "elapsed_time": "0:26:50", "remaining_time": "1:48:46", "throughput": "12371.11", "total_tokens": 19922944}
39
+ {"current_steps": 78, "total_steps": 384, "loss": 0.3514, "learning_rate": 9.054731034933549e-05, "epoch": 0.6052376333656644, "percentage": 20.31, "elapsed_time": "0:27:32", "remaining_time": "1:48:04", "throughput": "12371.15", "total_tokens": 20447232}
40
+ {"current_steps": 80, "total_steps": 384, "loss": 0.3767, "learning_rate": 9.006064026541548e-05, "epoch": 0.6207565470417071, "percentage": 20.83, "elapsed_time": "0:28:15", "remaining_time": "1:47:21", "throughput": "12371.38", "total_tokens": 20971520}
41
+ {"current_steps": 82, "total_steps": 384, "loss": 0.371, "learning_rate": 8.956313238215824e-05, "epoch": 0.6362754607177498, "percentage": 21.35, "elapsed_time": "0:28:57", "remaining_time": "1:46:39", "throughput": "12371.34", "total_tokens": 21495808}
42
+ {"current_steps": 84, "total_steps": 384, "loss": 0.3529, "learning_rate": 8.905492129278478e-05, "epoch": 0.6517943743937924, "percentage": 21.88, "elapsed_time": "0:29:39", "remaining_time": "1:45:56", "throughput": "12371.72", "total_tokens": 22020096}
43
+ {"current_steps": 86, "total_steps": 384, "loss": 0.3044, "learning_rate": 8.853614448610631e-05, "epoch": 0.6673132880698351, "percentage": 22.4, "elapsed_time": "0:30:22", "remaining_time": "1:45:14", "throughput": "12371.87", "total_tokens": 22544384}
44
+ {"current_steps": 88, "total_steps": 384, "loss": 0.3532, "learning_rate": 8.800694230932884e-05, "epoch": 0.6828322017458778, "percentage": 22.92, "elapsed_time": "0:31:04", "remaining_time": "1:44:31", "throughput": "12372.26", "total_tokens": 23068672}
45
+ {"current_steps": 90, "total_steps": 384, "loss": 0.3461, "learning_rate": 8.74674579300843e-05, "epoch": 0.6983511154219205, "percentage": 23.44, "elapsed_time": "0:31:46", "remaining_time": "1:43:49", "throughput": "12371.97", "total_tokens": 23592960}
46
+ {"current_steps": 92, "total_steps": 384, "loss": 0.3513, "learning_rate": 8.691783729769874e-05, "epoch": 0.7138700290979632, "percentage": 23.96, "elapsed_time": "0:32:29", "remaining_time": "1:43:07", "throughput": "12371.69", "total_tokens": 24117248}
47
+ {"current_steps": 94, "total_steps": 384, "loss": 0.3842, "learning_rate": 8.635822910370792e-05, "epoch": 0.7293889427740058, "percentage": 24.48, "elapsed_time": "0:33:11", "remaining_time": "1:42:24", "throughput": "12371.92", "total_tokens": 24641536}
48
+ {"current_steps": 96, "total_steps": 384, "loss": 0.363, "learning_rate": 8.578878474163115e-05, "epoch": 0.7449078564500485, "percentage": 25.0, "elapsed_time": "0:33:54", "remaining_time": "1:41:42", "throughput": "12372.14", "total_tokens": 25165824}
49
+ {"current_steps": 98, "total_steps": 384, "loss": 0.3079, "learning_rate": 8.520965826601394e-05, "epoch": 0.7604267701260912, "percentage": 25.52, "elapsed_time": "0:34:36", "remaining_time": "1:40:59", "throughput": "12372.67", "total_tokens": 25690112}
50
+ {"current_steps": 100, "total_steps": 384, "loss": 0.3769, "learning_rate": 8.462100635075097e-05, "epoch": 0.7759456838021338, "percentage": 26.04, "elapsed_time": "0:35:18", "remaining_time": "1:40:17", "throughput": "12372.59", "total_tokens": 26214400}
51
+ {"current_steps": 102, "total_steps": 384, "loss": 0.3907, "learning_rate": 8.40229882467003e-05, "epoch": 0.7914645974781765, "percentage": 26.56, "elapsed_time": "0:36:01", "remaining_time": "1:39:34", "throughput": "12372.64", "total_tokens": 26738688}
52
+ {"current_steps": 104, "total_steps": 384, "loss": 0.3457, "learning_rate": 8.341576573860048e-05, "epoch": 0.8069835111542192, "percentage": 27.08, "elapsed_time": "0:36:43", "remaining_time": "1:38:52", "throughput": "12372.69", "total_tokens": 27262976}
53
+ {"current_steps": 106, "total_steps": 384, "loss": 0.3889, "learning_rate": 8.279950310130217e-05, "epoch": 0.8225024248302619, "percentage": 27.6, "elapsed_time": "0:37:25", "remaining_time": "1:38:09", "throughput": "12373.02", "total_tokens": 27787264}
54
+ {"current_steps": 108, "total_steps": 384, "loss": 0.3142, "learning_rate": 8.2174367055326e-05, "epoch": 0.8380213385063046, "percentage": 28.12, "elapsed_time": "0:38:08", "remaining_time": "1:37:27", "throughput": "12373.10", "total_tokens": 28311552}
55
+ {"current_steps": 110, "total_steps": 384, "loss": 0.3299, "learning_rate": 8.154052672175887e-05, "epoch": 0.8535402521823472, "percentage": 28.65, "elapsed_time": "0:38:50", "remaining_time": "1:36:45", "throughput": "12373.25", "total_tokens": 28835840}
56
+ {"current_steps": 112, "total_steps": 384, "loss": 0.3425, "learning_rate": 8.089815357650089e-05, "epoch": 0.8690591658583899, "percentage": 29.17, "elapsed_time": "0:39:32", "remaining_time": "1:36:02", "throughput": "12373.26", "total_tokens": 29360128}
57
+ {"current_steps": 114, "total_steps": 384, "loss": 0.3363, "learning_rate": 8.024742140387506e-05, "epoch": 0.8845780795344326, "percentage": 29.69, "elapsed_time": "0:40:15", "remaining_time": "1:35:20", "throughput": "12373.27", "total_tokens": 29884416}
58
+ {"current_steps": 116, "total_steps": 384, "loss": 0.3725, "learning_rate": 7.95885062496126e-05, "epoch": 0.9000969932104753, "percentage": 30.21, "elapsed_time": "0:40:57", "remaining_time": "1:34:37", "throughput": "12373.41", "total_tokens": 30408704}
59
+ {"current_steps": 118, "total_steps": 384, "loss": 0.3397, "learning_rate": 7.892158637322646e-05, "epoch": 0.915615906886518, "percentage": 30.73, "elapsed_time": "0:41:39", "remaining_time": "1:33:55", "throughput": "12373.69", "total_tokens": 30932992}
60
+ {"current_steps": 120, "total_steps": 384, "loss": 0.2812, "learning_rate": 7.824684219978591e-05, "epoch": 0.9311348205625606, "percentage": 31.25, "elapsed_time": "0:42:22", "remaining_time": "1:33:12", "throughput": "12373.85", "total_tokens": 31457280}
61
+ {"current_steps": 122, "total_steps": 384, "loss": 0.3555, "learning_rate": 7.756445627110523e-05, "epoch": 0.9466537342386033, "percentage": 31.77, "elapsed_time": "0:43:04", "remaining_time": "1:32:30", "throughput": "12373.80", "total_tokens": 31981568}
62
+ {"current_steps": 124, "total_steps": 384, "loss": 0.3362, "learning_rate": 7.687461319635981e-05, "epoch": 0.962172647914646, "percentage": 32.29, "elapsed_time": "0:43:46", "remaining_time": "1:31:48", "throughput": "12373.83", "total_tokens": 32505856}
63
+ {"current_steps": 126, "total_steps": 384, "loss": 0.3133, "learning_rate": 7.6177499602143e-05, "epoch": 0.9776915615906887, "percentage": 32.81, "elapsed_time": "0:44:29", "remaining_time": "1:31:05", "throughput": "12374.00", "total_tokens": 33030144}
64
+ {"current_steps": 128, "total_steps": 384, "loss": 0.3119, "learning_rate": 7.547330408197695e-05, "epoch": 0.9932104752667313, "percentage": 33.33, "elapsed_time": "0:45:11", "remaining_time": "1:30:23", "throughput": "12374.26", "total_tokens": 33554432}
65
+ {"current_steps": 130, "total_steps": 384, "loss": 0.3117, "learning_rate": 7.476221714529167e-05, "epoch": 1.008729388942774, "percentage": 33.85, "elapsed_time": "0:45:54", "remaining_time": "1:29:40", "throughput": "12374.25", "total_tokens": 34078720}
66
+ {"current_steps": 132, "total_steps": 384, "loss": 0.329, "learning_rate": 7.404443116588548e-05, "epoch": 1.0242483026188167, "percentage": 34.38, "elapsed_time": "0:46:36", "remaining_time": "1:28:58", "throughput": "12374.33", "total_tokens": 34603008}
67
+ {"current_steps": 134, "total_steps": 384, "loss": 0.279, "learning_rate": 7.332014032988123e-05, "epoch": 1.0397672162948595, "percentage": 34.9, "elapsed_time": "0:47:18", "remaining_time": "1:28:16", "throughput": "12374.33", "total_tokens": 35127296}
68
+ {"current_steps": 136, "total_steps": 384, "loss": 0.2682, "learning_rate": 7.258954058319216e-05, "epoch": 1.055286129970902, "percentage": 35.42, "elapsed_time": "0:48:01", "remaining_time": "1:27:33", "throughput": "12374.30", "total_tokens": 35651584}
69
+ {"current_steps": 138, "total_steps": 384, "loss": 0.293, "learning_rate": 7.185282957851175e-05, "epoch": 1.0708050436469447, "percentage": 35.94, "elapsed_time": "0:48:43", "remaining_time": "1:26:51", "throughput": "12374.23", "total_tokens": 36175872}
70
+ {"current_steps": 140, "total_steps": 384, "loss": 0.315, "learning_rate": 7.111020662184174e-05, "epoch": 1.0863239573229875, "percentage": 36.46, "elapsed_time": "0:49:25", "remaining_time": "1:26:08", "throughput": "12374.40", "total_tokens": 36700160}
71
+ {"current_steps": 142, "total_steps": 384, "loss": 0.289, "learning_rate": 7.036187261857289e-05, "epoch": 1.10184287099903, "percentage": 36.98, "elapsed_time": "0:50:08", "remaining_time": "1:25:26", "throughput": "12374.16", "total_tokens": 37224448}
72
+ {"current_steps": 144, "total_steps": 384, "loss": 0.2808, "learning_rate": 6.960803001913314e-05, "epoch": 1.1173617846750727, "percentage": 37.5, "elapsed_time": "0:50:50", "remaining_time": "1:24:44", "throughput": "12374.30", "total_tokens": 37748736}
73
+ {"current_steps": 146, "total_steps": 384, "loss": 0.318, "learning_rate": 6.884888276421766e-05, "epoch": 1.1328806983511155, "percentage": 38.02, "elapsed_time": "0:51:32", "remaining_time": "1:24:01", "throughput": "12374.33", "total_tokens": 38273024}
74
+ {"current_steps": 148, "total_steps": 384, "loss": 0.2685, "learning_rate": 6.808463622961578e-05, "epoch": 1.148399612027158, "percentage": 38.54, "elapsed_time": "0:52:15", "remaining_time": "1:23:19", "throughput": "12374.43", "total_tokens": 38797312}
75
+ {"current_steps": 150, "total_steps": 384, "loss": 0.3121, "learning_rate": 6.731549717064974e-05, "epoch": 1.1639185257032008, "percentage": 39.06, "elapsed_time": "0:52:57", "remaining_time": "1:22:37", "throughput": "12374.58", "total_tokens": 39321600}
76
+ {"current_steps": 152, "total_steps": 384, "loss": 0.2835, "learning_rate": 6.654167366624009e-05, "epoch": 1.1794374393792435, "percentage": 39.58, "elapsed_time": "0:53:39", "remaining_time": "1:21:54", "throughput": "12374.63", "total_tokens": 39845888}
77
+ {"current_steps": 154, "total_steps": 384, "loss": 0.2905, "learning_rate": 6.576337506261314e-05, "epoch": 1.1949563530552862, "percentage": 40.1, "elapsed_time": "0:54:22", "remaining_time": "1:21:12", "throughput": "12375.02", "total_tokens": 40370176}
78
+ {"current_steps": 156, "total_steps": 384, "loss": 0.3277, "learning_rate": 6.498081191666548e-05, "epoch": 1.2104752667313288, "percentage": 40.62, "elapsed_time": "0:55:04", "remaining_time": "1:20:29", "throughput": "12375.10", "total_tokens": 40894464}
79
+ {"current_steps": 158, "total_steps": 384, "loss": 0.2788, "learning_rate": 6.419419593900108e-05, "epoch": 1.2259941804073715, "percentage": 41.15, "elapsed_time": "0:55:46", "remaining_time": "1:19:47", "throughput": "12375.10", "total_tokens": 41418752}
80
+ {"current_steps": 160, "total_steps": 384, "loss": 0.2971, "learning_rate": 6.340373993665607e-05, "epoch": 1.2415130940834143, "percentage": 41.67, "elapsed_time": "0:56:29", "remaining_time": "1:19:05", "throughput": "12375.12", "total_tokens": 41943040}
81
+ {"current_steps": 162, "total_steps": 384, "loss": 0.287, "learning_rate": 6.260965775552712e-05, "epoch": 1.2570320077594568, "percentage": 42.19, "elapsed_time": "0:57:11", "remaining_time": "1:18:22", "throughput": "12374.98", "total_tokens": 42467328}
82
+ {"current_steps": 164, "total_steps": 384, "loss": 0.3196, "learning_rate": 6.181216422251862e-05, "epoch": 1.2725509214354995, "percentage": 42.71, "elapsed_time": "0:57:54", "remaining_time": "1:17:40", "throughput": "12375.00", "total_tokens": 42991616}
83
+ {"current_steps": 166, "total_steps": 384, "loss": 0.3021, "learning_rate": 6.101147508742455e-05, "epoch": 1.2880698351115423, "percentage": 43.23, "elapsed_time": "0:58:36", "remaining_time": "1:16:57", "throughput": "12375.01", "total_tokens": 43515904}
84
+ {"current_steps": 168, "total_steps": 384, "loss": 0.2329, "learning_rate": 6.0207806964560584e-05, "epoch": 1.3035887487875848, "percentage": 43.75, "elapsed_time": "0:59:18", "remaining_time": "1:16:15", "throughput": "12375.04", "total_tokens": 44040192}
85
+ {"current_steps": 170, "total_steps": 384, "loss": 0.2803, "learning_rate": 5.940137727416246e-05, "epoch": 1.3191076624636275, "percentage": 44.27, "elapsed_time": "1:00:01", "remaining_time": "1:15:33", "throughput": "12375.12", "total_tokens": 44564480}
86
+ {"current_steps": 172, "total_steps": 384, "loss": 0.2744, "learning_rate": 5.8592404183566144e-05, "epoch": 1.3346265761396703, "percentage": 44.79, "elapsed_time": "1:00:43", "remaining_time": "1:14:50", "throughput": "12375.21", "total_tokens": 45088768}
87
+ {"current_steps": 174, "total_steps": 384, "loss": 0.3332, "learning_rate": 5.778110654818601e-05, "epoch": 1.3501454898157128, "percentage": 45.31, "elapsed_time": "1:01:25", "remaining_time": "1:14:08", "throughput": "12375.49", "total_tokens": 45613056}
88
+ {"current_steps": 176, "total_steps": 384, "loss": 0.3223, "learning_rate": 5.6967703852306786e-05, "epoch": 1.3656644034917556, "percentage": 45.83, "elapsed_time": "1:02:08", "remaining_time": "1:13:25", "throughput": "12375.42", "total_tokens": 46137344}
89
+ {"current_steps": 178, "total_steps": 384, "loss": 0.3127, "learning_rate": 5.6152416149705455e-05, "epoch": 1.3811833171677983, "percentage": 46.35, "elapsed_time": "1:02:50", "remaining_time": "1:12:43", "throughput": "12375.48", "total_tokens": 46661632}
90
+ {"current_steps": 180, "total_steps": 384, "loss": 0.2908, "learning_rate": 5.5335464004118986e-05, "epoch": 1.3967022308438408, "percentage": 46.88, "elapsed_time": "1:03:32", "remaining_time": "1:12:01", "throughput": "12375.67", "total_tokens": 47185920}
91
+ {"current_steps": 182, "total_steps": 384, "loss": 0.2918, "learning_rate": 5.4517068429574215e-05, "epoch": 1.4122211445198836, "percentage": 47.4, "elapsed_time": "1:04:15", "remaining_time": "1:11:18", "throughput": "12375.66", "total_tokens": 47710208}
92
+ {"current_steps": 184, "total_steps": 384, "loss": 0.268, "learning_rate": 5.3697450830595774e-05, "epoch": 1.4277400581959263, "percentage": 47.92, "elapsed_time": "1:04:57", "remaining_time": "1:10:36", "throughput": "12375.75", "total_tokens": 48234496}
93
+ {"current_steps": 186, "total_steps": 384, "loss": 0.2862, "learning_rate": 5.287683294230855e-05, "epoch": 1.4432589718719688, "percentage": 48.44, "elapsed_time": "1:05:39", "remaining_time": "1:09:54", "throughput": "12375.71", "total_tokens": 48758784}
94
+ {"current_steps": 188, "total_steps": 384, "loss": 0.3054, "learning_rate": 5.205543677045049e-05, "epoch": 1.4587778855480116, "percentage": 48.96, "elapsed_time": "1:06:22", "remaining_time": "1:09:11", "throughput": "12375.67", "total_tokens": 49283072}
95
+ {"current_steps": 190, "total_steps": 384, "loss": 0.2814, "learning_rate": 5.1233484531312414e-05, "epoch": 1.4742967992240543, "percentage": 49.48, "elapsed_time": "1:07:04", "remaining_time": "1:08:29", "throughput": "12375.72", "total_tokens": 49807360}
96
+ {"current_steps": 192, "total_steps": 384, "loss": 0.2703, "learning_rate": 5.0411198591620676e-05, "epoch": 1.489815712900097, "percentage": 50.0, "elapsed_time": "1:07:46", "remaining_time": "1:07:46", "throughput": "12375.63", "total_tokens": 50331648}
97
+ {"current_steps": 194, "total_steps": 384, "loss": 0.2689, "learning_rate": 4.958880140837933e-05, "epoch": 1.5053346265761398, "percentage": 50.52, "elapsed_time": "1:08:29", "remaining_time": "1:07:04", "throughput": "12375.75", "total_tokens": 50855936}
98
+ {"current_steps": 196, "total_steps": 384, "loss": 0.3013, "learning_rate": 4.876651546868759e-05, "epoch": 1.5208535402521823, "percentage": 51.04, "elapsed_time": "1:09:11", "remaining_time": "1:06:22", "throughput": "12375.76", "total_tokens": 51380224}
99
+ {"current_steps": 198, "total_steps": 384, "loss": 0.2751, "learning_rate": 4.794456322954952e-05, "epoch": 1.536372453928225, "percentage": 51.56, "elapsed_time": "1:09:54", "remaining_time": "1:05:39", "throughput": "12375.72", "total_tokens": 51904512}
100
+ {"current_steps": 200, "total_steps": 384, "loss": 0.3178, "learning_rate": 4.712316705769145e-05, "epoch": 1.5518913676042678, "percentage": 52.08, "elapsed_time": "1:10:36", "remaining_time": "1:04:57", "throughput": "12375.77", "total_tokens": 52428800}
101
+ {"current_steps": 202, "total_steps": 384, "loss": 0.2742, "learning_rate": 4.630254916940424e-05, "epoch": 1.5674102812803103, "percentage": 52.6, "elapsed_time": "1:11:18", "remaining_time": "1:04:15", "throughput": "12375.80", "total_tokens": 52953088}
102
+ {"current_steps": 204, "total_steps": 384, "loss": 0.2751, "learning_rate": 4.548293157042581e-05, "epoch": 1.582929194956353, "percentage": 53.12, "elapsed_time": "1:12:01", "remaining_time": "1:03:32", "throughput": "12375.84", "total_tokens": 53477376}
103
+ {"current_steps": 206, "total_steps": 384, "loss": 0.3256, "learning_rate": 4.466453599588103e-05, "epoch": 1.5984481086323958, "percentage": 53.65, "elapsed_time": "1:12:43", "remaining_time": "1:02:50", "throughput": "12375.76", "total_tokens": 54001664}
104
+ {"current_steps": 208, "total_steps": 384, "loss": 0.2603, "learning_rate": 4.384758385029457e-05, "epoch": 1.6139670223084384, "percentage": 54.17, "elapsed_time": "1:13:25", "remaining_time": "1:02:08", "throughput": "12375.86", "total_tokens": 54525952}
105
+ {"current_steps": 210, "total_steps": 384, "loss": 0.2598, "learning_rate": 4.3032296147693225e-05, "epoch": 1.629485935984481, "percentage": 54.69, "elapsed_time": "1:14:08", "remaining_time": "1:01:25", "throughput": "12375.97", "total_tokens": 55050240}
106
+ {"current_steps": 212, "total_steps": 384, "loss": 0.2811, "learning_rate": 4.2218893451814005e-05, "epoch": 1.6450048496605238, "percentage": 55.21, "elapsed_time": "1:14:50", "remaining_time": "1:00:43", "throughput": "12376.02", "total_tokens": 55574528}
107
+ {"current_steps": 214, "total_steps": 384, "loss": 0.2386, "learning_rate": 4.140759581643386e-05, "epoch": 1.6605237633365664, "percentage": 55.73, "elapsed_time": "1:15:32", "remaining_time": "1:00:00", "throughput": "12375.99", "total_tokens": 56098816}
108
+ {"current_steps": 216, "total_steps": 384, "loss": 0.2999, "learning_rate": 4.059862272583755e-05, "epoch": 1.6760426770126091, "percentage": 56.25, "elapsed_time": "1:16:15", "remaining_time": "0:59:18", "throughput": "12375.93", "total_tokens": 56623104}
109
+ {"current_steps": 218, "total_steps": 384, "loss": 0.2857, "learning_rate": 3.979219303543942e-05, "epoch": 1.6915615906886519, "percentage": 56.77, "elapsed_time": "1:16:57", "remaining_time": "0:58:36", "throughput": "12375.82", "total_tokens": 57147392}
110
+ {"current_steps": 220, "total_steps": 384, "loss": 0.2533, "learning_rate": 3.898852491257546e-05, "epoch": 1.7070805043646944, "percentage": 57.29, "elapsed_time": "1:17:40", "remaining_time": "0:57:53", "throughput": "12375.79", "total_tokens": 57671680}
111
+ {"current_steps": 222, "total_steps": 384, "loss": 0.306, "learning_rate": 3.818783577748138e-05, "epoch": 1.7225994180407371, "percentage": 57.81, "elapsed_time": "1:18:22", "remaining_time": "0:57:11", "throughput": "12375.96", "total_tokens": 58195968}
112
+ {"current_steps": 224, "total_steps": 384, "loss": 0.2594, "learning_rate": 3.739034224447289e-05, "epoch": 1.7381183317167799, "percentage": 58.33, "elapsed_time": "1:19:04", "remaining_time": "0:56:29", "throughput": "12376.04", "total_tokens": 58720256}
113
+ {"current_steps": 226, "total_steps": 384, "loss": 0.284, "learning_rate": 3.659626006334395e-05, "epoch": 1.7536372453928224, "percentage": 58.85, "elapsed_time": "1:19:47", "remaining_time": "0:55:46", "throughput": "12376.05", "total_tokens": 59244544}
114
+ {"current_steps": 228, "total_steps": 384, "loss": 0.33, "learning_rate": 3.580580406099893e-05, "epoch": 1.7691561590688651, "percentage": 59.38, "elapsed_time": "1:20:29", "remaining_time": "0:55:04", "throughput": "12376.03", "total_tokens": 59768832}
115
+ {"current_steps": 230, "total_steps": 384, "loss": 0.2968, "learning_rate": 3.501918808333453e-05, "epoch": 1.7846750727449079, "percentage": 59.9, "elapsed_time": "1:21:11", "remaining_time": "0:54:21", "throughput": "12375.98", "total_tokens": 60293120}
116
+ {"current_steps": 232, "total_steps": 384, "loss": 0.2836, "learning_rate": 3.4236624937386876e-05, "epoch": 1.8001939864209504, "percentage": 60.42, "elapsed_time": "1:21:54", "remaining_time": "0:53:39", "throughput": "12376.10", "total_tokens": 60817408}
117
+ {"current_steps": 234, "total_steps": 384, "loss": 0.2452, "learning_rate": 3.3458326333759925e-05, "epoch": 1.8157129000969934, "percentage": 60.94, "elapsed_time": "1:22:36", "remaining_time": "0:52:57", "throughput": "12376.14", "total_tokens": 61341696}
118
+ {"current_steps": 236, "total_steps": 384, "loss": 0.2526, "learning_rate": 3.268450282935026e-05, "epoch": 1.831231813773036, "percentage": 61.46, "elapsed_time": "1:23:18", "remaining_time": "0:52:14", "throughput": "12376.09", "total_tokens": 61865984}
119
+ {"current_steps": 238, "total_steps": 384, "loss": 0.2578, "learning_rate": 3.191536377038422e-05, "epoch": 1.8467507274490784, "percentage": 61.98, "elapsed_time": "1:24:01", "remaining_time": "0:51:32", "throughput": "12376.15", "total_tokens": 62390272}
120
+ {"current_steps": 240, "total_steps": 384, "loss": 0.2895, "learning_rate": 3.115111723578235e-05, "epoch": 1.8622696411251214, "percentage": 62.5, "elapsed_time": "1:24:43", "remaining_time": "0:50:50", "throughput": "12376.22", "total_tokens": 62914560}
121
+ {"current_steps": 242, "total_steps": 384, "loss": 0.3047, "learning_rate": 3.0391969980866875e-05, "epoch": 1.877788554801164, "percentage": 63.02, "elapsed_time": "1:25:25", "remaining_time": "0:50:07", "throughput": "12376.20", "total_tokens": 63438848}
122
+ {"current_steps": 244, "total_steps": 384, "loss": 0.2958, "learning_rate": 2.963812738142713e-05, "epoch": 1.8933074684772064, "percentage": 63.54, "elapsed_time": "1:26:08", "remaining_time": "0:49:25", "throughput": "12376.13", "total_tokens": 63963136}
123
+ {"current_steps": 246, "total_steps": 384, "loss": 0.2598, "learning_rate": 2.888979337815828e-05, "epoch": 1.9088263821532494, "percentage": 64.06, "elapsed_time": "1:26:50", "remaining_time": "0:48:43", "throughput": "12376.10", "total_tokens": 64487424}
124
+ {"current_steps": 248, "total_steps": 384, "loss": 0.2699, "learning_rate": 2.8147170421488272e-05, "epoch": 1.924345295829292, "percentage": 64.58, "elapsed_time": "1:27:33", "remaining_time": "0:48:00", "throughput": "12376.09", "total_tokens": 65011712}
125
+ {"current_steps": 250, "total_steps": 384, "loss": 0.2827, "learning_rate": 2.7410459416807853e-05, "epoch": 1.9398642095053347, "percentage": 65.1, "elapsed_time": "1:28:15", "remaining_time": "0:47:18", "throughput": "12376.20", "total_tokens": 65536000}
126
+ {"current_steps": 252, "total_steps": 384, "loss": 0.3119, "learning_rate": 2.6679859670118783e-05, "epoch": 1.9553831231813774, "percentage": 65.62, "elapsed_time": "1:28:57", "remaining_time": "0:46:35", "throughput": "12376.24", "total_tokens": 66060288}
127
+ {"current_steps": 254, "total_steps": 384, "loss": 0.2837, "learning_rate": 2.5955568834114524e-05, "epoch": 1.97090203685742, "percentage": 66.15, "elapsed_time": "1:29:40", "remaining_time": "0:45:53", "throughput": "12376.19", "total_tokens": 66584576}
128
+ {"current_steps": 256, "total_steps": 384, "loss": 0.2511, "learning_rate": 2.5237782854708348e-05, "epoch": 1.9864209505334627, "percentage": 66.67, "elapsed_time": "1:30:22", "remaining_time": "0:45:11", "throughput": "12376.12", "total_tokens": 67108864}
129
+ {"current_steps": 258, "total_steps": 384, "loss": 0.2501, "learning_rate": 2.452669591802307e-05, "epoch": 2.0019398642095054, "percentage": 67.19, "elapsed_time": "1:31:04", "remaining_time": "0:44:28", "throughput": "12376.06", "total_tokens": 67633152}
130
+ {"current_steps": 260, "total_steps": 384, "loss": 0.2296, "learning_rate": 2.3822500397857018e-05, "epoch": 2.017458777885548, "percentage": 67.71, "elapsed_time": "1:31:47", "remaining_time": "0:43:46", "throughput": "12376.11", "total_tokens": 68157440}
131
+ {"current_steps": 262, "total_steps": 384, "loss": 0.2333, "learning_rate": 2.3125386803640187e-05, "epoch": 2.0329776915615905, "percentage": 68.23, "elapsed_time": "1:32:29", "remaining_time": "0:43:04", "throughput": "12376.14", "total_tokens": 68681728}
132
+ {"current_steps": 264, "total_steps": 384, "loss": 0.2119, "learning_rate": 2.2435543728894792e-05, "epoch": 2.0484966052376334, "percentage": 68.75, "elapsed_time": "1:33:11", "remaining_time": "0:42:21", "throughput": "12376.08", "total_tokens": 69206016}
133
+ {"current_steps": 266, "total_steps": 384, "loss": 0.2676, "learning_rate": 2.175315780021411e-05, "epoch": 2.064015518913676, "percentage": 69.27, "elapsed_time": "1:33:54", "remaining_time": "0:41:39", "throughput": "12376.02", "total_tokens": 69730304}
134
+ {"current_steps": 268, "total_steps": 384, "loss": 0.2285, "learning_rate": 2.1078413626773546e-05, "epoch": 2.079534432589719, "percentage": 69.79, "elapsed_time": "1:34:36", "remaining_time": "0:40:57", "throughput": "12376.08", "total_tokens": 70254592}
135
+ {"current_steps": 270, "total_steps": 384, "loss": 0.2281, "learning_rate": 2.0411493750387423e-05, "epoch": 2.0950533462657615, "percentage": 70.31, "elapsed_time": "1:35:18", "remaining_time": "0:40:14", "throughput": "12376.12", "total_tokens": 70778880}
136
+ {"current_steps": 272, "total_steps": 384, "loss": 0.2701, "learning_rate": 1.9752578596124954e-05, "epoch": 2.110572259941804, "percentage": 70.83, "elapsed_time": "1:36:01", "remaining_time": "0:39:32", "throughput": "12376.07", "total_tokens": 71303168}
137
+ {"current_steps": 274, "total_steps": 384, "loss": 0.2033, "learning_rate": 1.9101846423499116e-05, "epoch": 2.126091173617847, "percentage": 71.35, "elapsed_time": "1:36:43", "remaining_time": "0:38:49", "throughput": "12375.95", "total_tokens": 71827456}
138
+ {"current_steps": 276, "total_steps": 384, "loss": 0.2489, "learning_rate": 1.8459473278241126e-05, "epoch": 2.1416100872938895, "percentage": 71.88, "elapsed_time": "1:37:26", "remaining_time": "0:38:07", "throughput": "12375.99", "total_tokens": 72351744}
139
+ {"current_steps": 278, "total_steps": 384, "loss": 0.2294, "learning_rate": 1.7825632944674015e-05, "epoch": 2.157129000969932, "percentage": 72.4, "elapsed_time": "1:38:08", "remaining_time": "0:37:25", "throughput": "12375.97", "total_tokens": 72876032}
140
+ {"current_steps": 280, "total_steps": 384, "loss": 0.2452, "learning_rate": 1.7200496898697832e-05, "epoch": 2.172647914645975, "percentage": 72.92, "elapsed_time": "1:38:50", "remaining_time": "0:36:42", "throughput": "12375.92", "total_tokens": 73400320}
141
+ {"current_steps": 282, "total_steps": 384, "loss": 0.242, "learning_rate": 1.6584234261399534e-05, "epoch": 2.1881668283220175, "percentage": 73.44, "elapsed_time": "1:39:33", "remaining_time": "0:36:00", "throughput": "12375.92", "total_tokens": 73924608}
142
+ {"current_steps": 284, "total_steps": 384, "loss": 0.2894, "learning_rate": 1.5977011753299725e-05, "epoch": 2.20368574199806, "percentage": 73.96, "elapsed_time": "1:40:15", "remaining_time": "0:35:18", "throughput": "12376.01", "total_tokens": 74448896}
143
+ {"current_steps": 286, "total_steps": 384, "loss": 0.231, "learning_rate": 1.537899364924905e-05, "epoch": 2.219204655674103, "percentage": 74.48, "elapsed_time": "1:40:57", "remaining_time": "0:34:35", "throughput": "12376.10", "total_tokens": 74973184}
144
+ {"current_steps": 288, "total_steps": 384, "loss": 0.2412, "learning_rate": 1.4790341733986085e-05, "epoch": 2.2347235693501455, "percentage": 75.0, "elapsed_time": "1:41:40", "remaining_time": "0:33:53", "throughput": "12376.22", "total_tokens": 75497472}
145
+ {"current_steps": 290, "total_steps": 384, "loss": 0.2464, "learning_rate": 1.4211215258368866e-05, "epoch": 2.250242483026188, "percentage": 75.52, "elapsed_time": "1:42:22", "remaining_time": "0:33:11", "throughput": "12376.23", "total_tokens": 76021760}
146
+ {"current_steps": 292, "total_steps": 384, "loss": 0.2231, "learning_rate": 1.3641770896292084e-05, "epoch": 2.265761396702231, "percentage": 76.04, "elapsed_time": "1:43:04", "remaining_time": "0:32:28", "throughput": "12376.27", "total_tokens": 76546048}
147
+ {"current_steps": 294, "total_steps": 384, "loss": 0.2432, "learning_rate": 1.3082162702301276e-05, "epoch": 2.2812803103782735, "percentage": 76.56, "elapsed_time": "1:43:47", "remaining_time": "0:31:46", "throughput": "12376.31", "total_tokens": 77070336}
148
+ {"current_steps": 296, "total_steps": 384, "loss": 0.2147, "learning_rate": 1.253254206991572e-05, "epoch": 2.296799224054316, "percentage": 77.08, "elapsed_time": "1:44:29", "remaining_time": "0:31:03", "throughput": "12376.31", "total_tokens": 77594624}
149
+ {"current_steps": 298, "total_steps": 384, "loss": 0.249, "learning_rate": 1.1993057690671173e-05, "epoch": 2.312318137730359, "percentage": 77.6, "elapsed_time": "1:45:11", "remaining_time": "0:30:21", "throughput": "12376.43", "total_tokens": 78118912}
150
+ {"current_steps": 300, "total_steps": 384, "loss": 0.2362, "learning_rate": 1.1463855513893695e-05, "epoch": 2.3278370514064015, "percentage": 78.12, "elapsed_time": "1:45:54", "remaining_time": "0:29:39", "throughput": "12376.44", "total_tokens": 78643200}
151
+ {"current_steps": 302, "total_steps": 384, "loss": 0.2232, "learning_rate": 1.0945078707215222e-05, "epoch": 2.343355965082444, "percentage": 78.65, "elapsed_time": "1:46:36", "remaining_time": "0:28:56", "throughput": "12376.47", "total_tokens": 79167488}
152
+ {"current_steps": 304, "total_steps": 384, "loss": 0.2569, "learning_rate": 1.0436867617841768e-05, "epoch": 2.358874878758487, "percentage": 79.17, "elapsed_time": "1:47:18", "remaining_time": "0:28:14", "throughput": "12376.49", "total_tokens": 79691776}
153
+ {"current_steps": 306, "total_steps": 384, "loss": 0.214, "learning_rate": 9.939359734584553e-06, "epoch": 2.3743937924345295, "percentage": 79.69, "elapsed_time": "1:48:01", "remaining_time": "0:27:32", "throughput": "12376.52", "total_tokens": 80216064}
154
+ {"current_steps": 308, "total_steps": 384, "loss": 0.2451, "learning_rate": 9.452689650664515e-06, "epoch": 2.3899127061105725, "percentage": 80.21, "elapsed_time": "1:48:43", "remaining_time": "0:26:49", "throughput": "12376.53", "total_tokens": 80740352}
155
+ {"current_steps": 310, "total_steps": 384, "loss": 0.2288, "learning_rate": 8.976989027300264e-06, "epoch": 2.405431619786615, "percentage": 80.73, "elapsed_time": "1:49:25", "remaining_time": "0:26:07", "throughput": "12376.63", "total_tokens": 81264640}
156
+ {"current_steps": 312, "total_steps": 384, "loss": 0.2332, "learning_rate": 8.51238655808892e-06, "epoch": 2.4209505334626575, "percentage": 81.25, "elapsed_time": "1:50:08", "remaining_time": "0:25:25", "throughput": "12376.58", "total_tokens": 81788928}
157
+ {"current_steps": 314, "total_steps": 384, "loss": 0.202, "learning_rate": 8.059007934190194e-06, "epoch": 2.4364694471387, "percentage": 81.77, "elapsed_time": "1:50:50", "remaining_time": "0:24:42", "throughput": "12376.66", "total_tokens": 82313216}
158
+ {"current_steps": 316, "total_steps": 384, "loss": 0.227, "learning_rate": 7.61697581032243e-06, "epoch": 2.451988360814743, "percentage": 82.29, "elapsed_time": "1:51:33", "remaining_time": "0:24:00", "throughput": "12376.73", "total_tokens": 82837504}
159
+ {"current_steps": 318, "total_steps": 384, "loss": 0.2429, "learning_rate": 7.186409771580354e-06, "epoch": 2.4675072744907856, "percentage": 82.81, "elapsed_time": "1:52:15", "remaining_time": "0:23:17", "throughput": "12376.77", "total_tokens": 83361792}
160
+ {"current_steps": 320, "total_steps": 384, "loss": 0.2147, "learning_rate": 6.76742630108298e-06, "epoch": 2.4830261881668285, "percentage": 83.33, "elapsed_time": "1:52:57", "remaining_time": "0:22:35", "throughput": "12376.72", "total_tokens": 83886080}
161
+ {"current_steps": 322, "total_steps": 384, "loss": 0.2423, "learning_rate": 6.3601387484610145e-06, "epoch": 2.498545101842871, "percentage": 83.85, "elapsed_time": "1:53:40", "remaining_time": "0:21:53", "throughput": "12376.78", "total_tokens": 84410368}
162
+ {"current_steps": 324, "total_steps": 384, "loss": 0.2828, "learning_rate": 5.9646572991917116e-06, "epoch": 2.5140640155189136, "percentage": 84.38, "elapsed_time": "1:54:22", "remaining_time": "0:21:10", "throughput": "12376.78", "total_tokens": 84934656}
163
+ {"current_steps": 326, "total_steps": 384, "loss": 0.2461, "learning_rate": 5.581088944789953e-06, "epoch": 2.529582929194956, "percentage": 84.9, "elapsed_time": "1:55:04", "remaining_time": "0:20:28", "throughput": "12376.78", "total_tokens": 85458944}
164
+ {"current_steps": 328, "total_steps": 384, "loss": 0.296, "learning_rate": 5.209537453863289e-06, "epoch": 2.545101842870999, "percentage": 85.42, "elapsed_time": "1:55:47", "remaining_time": "0:19:46", "throughput": "12376.71", "total_tokens": 85983232}
165
+ {"current_steps": 330, "total_steps": 384, "loss": 0.2061, "learning_rate": 4.850103344038853e-06, "epoch": 2.5606207565470416, "percentage": 85.94, "elapsed_time": "1:56:29", "remaining_time": "0:19:03", "throughput": "12376.82", "total_tokens": 86507520}
166
+ {"current_steps": 332, "total_steps": 384, "loss": 0.2323, "learning_rate": 4.502883854769935e-06, "epoch": 2.5761396702230845, "percentage": 86.46, "elapsed_time": "1:57:11", "remaining_time": "0:18:21", "throughput": "12376.90", "total_tokens": 87031808}
167
+ {"current_steps": 334, "total_steps": 384, "loss": 0.2156, "learning_rate": 4.167972921029262e-06, "epoch": 2.591658583899127, "percentage": 86.98, "elapsed_time": "1:57:54", "remaining_time": "0:17:39", "throughput": "12376.92", "total_tokens": 87556096}
168
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169
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170
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171
+ {"current_steps": 342, "total_steps": 384, "loss": 0.2336, "learning_rate": 2.9531763861505966e-06, "epoch": 2.653734238603298, "percentage": 89.06, "elapsed_time": "2:00:43", "remaining_time": "0:14:49", "throughput": "12377.01", "total_tokens": 89653248}
172
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173
+ {"current_steps": 346, "total_steps": 384, "loss": 0.213, "learning_rate": 2.4218247645689307e-06, "epoch": 2.684772065955383, "percentage": 90.1, "elapsed_time": "2:02:08", "remaining_time": "0:13:24", "throughput": "12376.99", "total_tokens": 90701824}
174
+ {"current_steps": 348, "total_steps": 384, "loss": 0.2364, "learning_rate": 2.1754212141102346e-06, "epoch": 2.7002909796314256, "percentage": 90.62, "elapsed_time": "2:02:50", "remaining_time": "0:12:42", "throughput": "12377.02", "total_tokens": 91226112}
175
+ {"current_steps": 350, "total_steps": 384, "loss": 0.2147, "learning_rate": 1.941955878938029e-06, "epoch": 2.7158098933074686, "percentage": 91.15, "elapsed_time": "2:03:32", "remaining_time": "0:12:00", "throughput": "12376.97", "total_tokens": 91750400}
176
+ {"current_steps": 352, "total_steps": 384, "loss": 0.2316, "learning_rate": 1.7214919195619127e-06, "epoch": 2.731328806983511, "percentage": 91.67, "elapsed_time": "2:04:15", "remaining_time": "0:11:17", "throughput": "12377.00", "total_tokens": 92274688}
177
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178
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179
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180
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181
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182
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183
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184
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185
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186
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187
+ {"current_steps": 374, "total_steps": 384, "loss": 0.2575, "learning_rate": 1.6899281269279755e-07, "epoch": 2.9020368574199806, "percentage": 97.4, "elapsed_time": "2:12:01", "remaining_time": "0:03:31", "throughput": "12377.14", "total_tokens": 98041856}
188
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189
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190
+ {"current_steps": 380, "total_steps": 384, "loss": 0.2359, "learning_rate": 2.7051655352494652e-08, "epoch": 2.9485935984481086, "percentage": 98.96, "elapsed_time": "2:14:08", "remaining_time": "0:01:24", "throughput": "12377.19", "total_tokens": 99614720}
191
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192
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193
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README.md ADDED
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1
+ ---
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+ base_model: Qwen/Qwen2-7B-Instruct
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+ library_name: peft
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+ license: other
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+ tags:
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+ - llama-factory
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+ - lora
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+ - generated_from_trainer
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+ model-index:
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+ - name: train_08-16-2
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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_08-16-2
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+
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+ This model is a fine-tuned version of [Qwen/Qwen2-7B-Instruct](https://huggingface.co/Qwen/Qwen2-7B-Instruct) on the cangjie dataset.
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+ It achieves the following results on the evaluation set:
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+ - Loss: 0.2599
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+ - Num Input Tokens Seen: 100663296
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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: 0.0001
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+ - train_batch_size: 4
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+ - eval_batch_size: 4
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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: 256
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+ - total_eval_batch_size: 32
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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: 2
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+ - num_epochs: 3.0
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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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+ - PEFT 0.12.0
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+ - Transformers 4.43.4
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+ - Pytorch 2.1.0.post2+cxx11.abi
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+ - Datasets 2.20.0
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+ - Tokenizers 0.19.1
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+ "base_model_name_or_path": "Qwen/Qwen2-7B-Instruct",
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+ "bias": "none",
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+ "inference_mode": true,
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+ "init_lora_weights": true,
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+ "loftq_config": {},
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+ "lora_dropout": 0.1,
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+ "megatron_config": null,
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+ "megatron_core": "megatron.core",
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+ "modules_to_save": null,
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+ "peft_type": "LORA",
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+ "r": 8,
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+ "rank_pattern": {},
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+ "revision": null,
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+ "target_modules": [
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+ "gate_proj",
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+ "q_proj",
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+ "v_proj",
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+ "k_proj",
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+ "up_proj",
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+ "down_proj",
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+ "o_proj"
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+ ],
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+ "task_type": "CAUSAL_LM",
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+ "use_dora": false,
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+ "use_rslora": false
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+ }
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+ "perplexity": 1.2967875352947666,
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checkpoint-384/README.md ADDED
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+ ---
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+ base_model: Qwen/Qwen2-7B-Instruct
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+ library_name: peft
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+ ---
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+
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+ # Model Card for Model ID
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+
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+ <!-- Provide a quick summary of what the model is/does. -->
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+
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+
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+
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+ ## Model Details
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+
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+ ### Model Description
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+
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+ <!-- Provide a longer summary of what this model is. -->
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+
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+
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+ - **Developed by:** [More Information Needed]
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+ - **Funded by [optional]:** [More Information Needed]
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+ <!-- Provide the basic links for the model. -->
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+ - **Repository:** [More Information Needed]
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+
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+ ## Uses
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+
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+ <!-- Address questions around how the model is intended to be used, including the foreseeable users of the model and those affected by the model. -->
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+
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+ ### Direct Use
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+ <!-- This section is for the model use without fine-tuning or plugging into a larger ecosystem/app. -->
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+ [More Information Needed]
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+ ### Downstream Use [optional]
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+ <!-- This section is for the model use when fine-tuned for a task, or when plugged into a larger ecosystem/app -->
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+ [More Information Needed]
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+ ### Out-of-Scope Use
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+
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+ <!-- This section addresses misuse, malicious use, and uses that the model will not work well for. -->
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+ [More Information Needed]
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+
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+ ## Bias, Risks, and Limitations
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+ <!-- This section is meant to convey both technical and sociotechnical limitations. -->
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+ [More Information Needed]
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+
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+ ### Recommendations
65
+
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+ <!-- This section is meant to convey recommendations with respect to the bias, risk, and technical limitations. -->
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+
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+ Users (both direct and downstream) should be made aware of the risks, biases and limitations of the model. More information needed for further recommendations.
69
+
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+ ## How to Get Started with the Model
71
+
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+ Use the code below to get started with the model.
73
+
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+ [More Information Needed]
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+
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+ ## Training Details
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+ ### Training Data
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+ <!-- This should link to a Dataset Card, perhaps with a short stub of information on what the training data is all about as well as documentation related to data pre-processing or additional filtering. -->
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+ [More Information Needed]
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+ ### Training Procedure
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+ <!-- This relates heavily to the Technical Specifications. Content here should link to that section when it is relevant to the training procedure. -->
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+ #### Preprocessing [optional]
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+ [More Information Needed]
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+ #### Training Hyperparameters
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+ - **Training regime:** [More Information Needed] <!--fp32, fp16 mixed precision, bf16 mixed precision, bf16 non-mixed precision, fp16 non-mixed precision, fp8 mixed precision -->
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+ #### Speeds, Sizes, Times [optional]
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+ <!-- This section provides information about throughput, start/end time, checkpoint size if relevant, etc. -->
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+ [More Information Needed]
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+
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+ ## Evaluation
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105
+ <!-- This section describes the evaluation protocols and provides the results. -->
106
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+ ### Testing Data, Factors & Metrics
108
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109
+ #### Testing Data
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+ <!-- This should link to a Dataset Card if possible. -->
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+ [More Information Needed]
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+ #### Factors
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+ <!-- These are the things the evaluation is disaggregating by, e.g., subpopulations or domains. -->
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+ [More Information Needed]
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+ #### Metrics
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+ <!-- These are the evaluation metrics being used, ideally with a description of why. -->
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+ ### Results
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+ #### Summary
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+ ## Model Examination [optional]
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+ <!-- Relevant interpretability work for the model goes here -->
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+ [More Information Needed]
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141
+ ## Environmental Impact
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+ <!-- Total emissions (in grams of CO2eq) and additional considerations, such as electricity usage, go here. Edit the suggested text below accordingly -->
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+
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+ Carbon emissions can be estimated using the [Machine Learning Impact calculator](https://mlco2.github.io/impact#compute) presented in [Lacoste et al. (2019)](https://arxiv.org/abs/1910.09700).
146
+
147
+ - **Hardware Type:** [More Information Needed]
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+ - **Hours used:** [More Information Needed]
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+ - **Cloud Provider:** [More Information Needed]
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+ - **Compute Region:** [More Information Needed]
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+ - **Carbon Emitted:** [More Information Needed]
152
+
153
+ ## Technical Specifications [optional]
154
+
155
+ ### Model Architecture and Objective
156
+
157
+ [More Information Needed]
158
+
159
+ ### Compute Infrastructure
160
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161
+ [More Information Needed]
162
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163
+ #### Hardware
164
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165
+ [More Information Needed]
166
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167
+ #### Software
168
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169
+ [More Information Needed]
170
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171
+ ## Citation [optional]
172
+
173
+ <!-- If there is a paper or blog post introducing the model, the APA and Bibtex information for that should go in this section. -->
174
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175
+ **BibTeX:**
176
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+ [More Information Needed]
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+ **APA:**
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+ [More Information Needed]
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+ ## Glossary [optional]
184
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185
+ <!-- If relevant, include terms and calculations in this section that can help readers understand the model or model card. -->
186
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187
+ [More Information Needed]
188
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189
+ ## More Information [optional]
190
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191
+ [More Information Needed]
192
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193
+ ## Model Card Authors [optional]
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+ [More Information Needed]
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+ ## Model Card Contact
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199
+ [More Information Needed]
200
+ ### Framework versions
201
+
202
+ - PEFT 0.12.0
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@@ -0,0 +1,749 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ 08/16/2024 12:33:49 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+
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+ 08/16/2024 12:33:49 - INFO - llamafactory.hparams.parser - Process rank: 6, device: xpu:6, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:49 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+ 08/16/2024 12:33:49 - INFO - llamafactory.hparams.parser - Process rank: 1, device: xpu:1, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:49 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+ 08/16/2024 12:33:49 - INFO - llamafactory.hparams.parser - Process rank: 2, device: xpu:2, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.hparams.parser - Process rank: 7, device: xpu:7, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ [WARNING|parser.py:296] 2024-08-16 12:33:50,245 >> `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+
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+ [INFO|parser.py:348] 2024-08-16 12:33:50,246 >> Process rank: 0, device: xpu:0, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.hparams.parser - Process rank: 4, device: xpu:4, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file vocab.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/vocab.json
34
+
35
+ 08/16/2024 12:33:50 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.hparams.parser - Process rank: 5, device: xpu:5, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file merges.txt from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/merges.txt
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+
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+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file tokenizer.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/tokenizer.json
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+
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+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file added_tokens.json from cache at None
46
+
47
+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file special_tokens_map.json from cache at None
48
+
49
+ [INFO|tokenization_utils_base.py:2289] 2024-08-16 12:33:50,368 >> loading file tokenizer_config.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/tokenizer_config.json
50
+
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+ [INFO|tokenization_utils_base.py:2533] 2024-08-16 12:33:50,597 >> Special tokens have been added in the vocabulary, make sure the associated word embeddings are fine-tuned or trained.
52
+
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+ [INFO|template.py:270] 2024-08-16 12:33:50,597 >> Replace eos token: <|im_end|>
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+
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+ [INFO|loader.py:52] 2024-08-16 12:33:50,598 >> Loading dataset cangjie.json...
56
+
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+ 08/16/2024 12:33:50 - WARNING - llamafactory.hparams.parser - `ddp_find_unused_parameters` needs to be set as False for LoRA in DDP training.
58
+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.hparams.parser - Process rank: 3, device: xpu:3, n_gpu: 1, distributed training: True, compute dtype: torch.bfloat16
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+
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+ 08/16/2024 12:33:50 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ 08/16/2024 12:33:51 - INFO - llamafactory.data.template - Replace eos token: <|im_end|>
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+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
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+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
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+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
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+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
72
+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
74
+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
76
+
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+ 08/16/2024 12:33:52 - INFO - llamafactory.data.loader - Loading dataset cangjie.json...
78
+
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+ [INFO|configuration_utils.py:733] 2024-08-16 12:33:53,975 >> loading configuration file config.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/config.json
80
+
81
+ [INFO|configuration_utils.py:800] 2024-08-16 12:33:53,979 >> Model config Qwen2Config {
82
+ "_name_or_path": "Qwen/Qwen2-7B-Instruct",
83
+ "architectures": [
84
+ "Qwen2ForCausalLM"
85
+ ],
86
+ "attention_dropout": 0.0,
87
+ "bos_token_id": 151643,
88
+ "eos_token_id": 151645,
89
+ "hidden_act": "silu",
90
+ "hidden_size": 3584,
91
+ "initializer_range": 0.02,
92
+ "intermediate_size": 18944,
93
+ "max_position_embeddings": 32768,
94
+ "max_window_layers": 28,
95
+ "model_type": "qwen2",
96
+ "num_attention_heads": 28,
97
+ "num_hidden_layers": 28,
98
+ "num_key_value_heads": 4,
99
+ "rms_norm_eps": 1e-06,
100
+ "rope_theta": 1000000.0,
101
+ "sliding_window": null,
102
+ "tie_word_embeddings": false,
103
+ "torch_dtype": "bfloat16",
104
+ "transformers_version": "4.43.4",
105
+ "use_cache": true,
106
+ "use_sliding_window": false,
107
+ "vocab_size": 152064
108
+ }
109
+
110
+
111
+ [INFO|modeling_utils.py:3644] 2024-08-16 12:33:54,043 >> loading weights file model.safetensors from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/model.safetensors.index.json
112
+
113
+ [INFO|modeling_utils.py:1572] 2024-08-16 12:33:54,047 >> Instantiating Qwen2ForCausalLM model under default dtype torch.bfloat16.
114
+
115
+ [INFO|configuration_utils.py:1038] 2024-08-16 12:33:54,052 >> Generate config GenerationConfig {
116
+ "bos_token_id": 151643,
117
+ "eos_token_id": 151645
118
+ }
119
+
120
+
121
+ 08/16/2024 12:34:40 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
122
+
123
+ 08/16/2024 12:34:40 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
124
+
125
+ 08/16/2024 12:34:40 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
126
+
127
+ 08/16/2024 12:34:40 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
128
+
129
+ 08/16/2024 12:34:40 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
130
+
131
+ 08/16/2024 12:34:40 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
132
+
133
+ 08/16/2024 12:34:40 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
134
+
135
+ 08/16/2024 12:34:57 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
136
+
137
+ 08/16/2024 12:34:57 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
138
+
139
+ 08/16/2024 12:34:57 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
140
+
141
+ 08/16/2024 12:34:57 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
142
+
143
+ 08/16/2024 12:34:57 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
144
+
145
+ 08/16/2024 12:34:57 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
146
+
147
+ 08/16/2024 12:34:58 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
148
+
149
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
150
+
151
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
152
+
153
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
154
+
155
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
156
+
157
+ 08/16/2024 12:34:58 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
158
+
159
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
160
+
161
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
162
+
163
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
164
+
165
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
166
+
167
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
168
+
169
+ 08/16/2024 12:34:58 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
170
+
171
+ 08/16/2024 12:34:58 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
172
+
173
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
174
+
175
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
176
+
177
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
178
+
179
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
180
+
181
+ 08/16/2024 12:34:58 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
182
+
183
+ 08/16/2024 12:34:58 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
184
+
185
+ [INFO|modeling_utils.py:4473] 2024-08-16 12:34:59,011 >> All model checkpoint weights were used when initializing Qwen2ForCausalLM.
186
+
187
+
188
+ [INFO|modeling_utils.py:4481] 2024-08-16 12:34:59,011 >> All the weights of Qwen2ForCausalLM were initialized from the model checkpoint at Qwen/Qwen2-7B-Instruct.
189
+ If your task is similar to the task the model of the checkpoint was trained on, you can already use Qwen2ForCausalLM for predictions without further training.
190
+
191
+ [INFO|configuration_utils.py:993] 2024-08-16 12:34:59,106 >> loading configuration file generation_config.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/generation_config.json
192
+
193
+ [INFO|configuration_utils.py:1038] 2024-08-16 12:34:59,106 >> Generate config GenerationConfig {
194
+ "bos_token_id": 151643,
195
+ "do_sample": true,
196
+ "eos_token_id": [
197
+ 151645,
198
+ 151643
199
+ ],
200
+ "pad_token_id": 151643,
201
+ "repetition_penalty": 1.05,
202
+ "temperature": 0.7,
203
+ "top_k": 20,
204
+ "top_p": 0.8
205
+ }
206
+
207
+
208
+ 08/16/2024 12:34:59 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
209
+
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+ [INFO|checkpointing.py:103] 2024-08-16 12:34:59,217 >> Gradient checkpointing enabled.
211
+
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+ [INFO|attention.py:86] 2024-08-16 12:34:59,217 >> Using vanilla attention implementation.
213
+
214
+ [INFO|adapter.py:302] 2024-08-16 12:34:59,217 >> Upcasting trainable params to float32.
215
+
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+ [INFO|adapter.py:158] 2024-08-16 12:34:59,218 >> Fine-tuning method: LoRA
217
+
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+ [WARNING|cextension.py:101] 2024-08-16 12:34:59,228 >> The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
219
+
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+ 08/16/2024 12:34:59 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
221
+
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+ 08/16/2024 12:34:59 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
223
+
224
+ 08/16/2024 12:34:59 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
225
+
226
+ 08/16/2024 12:34:59 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
227
+
228
+ 08/16/2024 12:34:59 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
229
+
230
+ 08/16/2024 12:34:59 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
231
+
232
+ 08/16/2024 12:34:59 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
233
+
234
+ [INFO|loader.py:196] 2024-08-16 12:34:59,540 >> trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
235
+
236
+ [INFO|trainer.py:648] 2024-08-16 12:34:59,550 >> Using auto half precision backend
237
+
238
+ [INFO|trainer_utils.py:305] 2024-08-16 12:34:59,691 >> Using LoRA+ optimizer with loraplus lr ratio 16.00.
239
+
240
+ 08/16/2024 12:34:59 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
241
+
242
+ 08/16/2024 12:34:59 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
243
+
244
+ 08/16/2024 12:35:00 - INFO - llamafactory.model.model_utils.checkpointing - Gradient checkpointing enabled.
245
+
246
+ 08/16/2024 12:35:00 - INFO - llamafactory.model.model_utils.attention - Using vanilla attention implementation.
247
+
248
+ 08/16/2024 12:35:00 - INFO - llamafactory.model.adapter - Upcasting trainable params to float32.
249
+
250
+ 08/16/2024 12:35:00 - INFO - llamafactory.model.adapter - Fine-tuning method: LoRA
251
+
252
+ 08/16/2024 12:35:00 - WARNING - bitsandbytes.cextension - The installed version of bitsandbytes was compiled without GPU support. 8-bit optimizers, 8-bit multiplication, and GPU quantization are unavailable.
253
+
254
+ 08/16/2024 12:35:00 - INFO - llamafactory.model.loader - trainable params: 20,185,088 || all params: 7,635,801,600 || trainable%: 0.2643
255
+
256
+ 08/16/2024 12:35:00 - INFO - llamafactory.train.trainer_utils - Using LoRA+ optimizer with loraplus lr ratio 16.00.
257
+
258
+ [INFO|trainer.py:2134] 2024-08-16 12:35:19,204 >> ***** Running training *****
259
+
260
+ [INFO|trainer.py:2135] 2024-08-16 12:35:19,206 >> Num examples = 32,962
261
+
262
+ [INFO|trainer.py:2136] 2024-08-16 12:35:19,206 >> Num Epochs = 3
263
+
264
+ [INFO|trainer.py:2137] 2024-08-16 12:35:19,206 >> Instantaneous batch size per device = 4
265
+
266
+ [INFO|trainer.py:2140] 2024-08-16 12:35:19,206 >> Total train batch size (w. parallel, distributed & accumulation) = 256
267
+
268
+ [INFO|trainer.py:2141] 2024-08-16 12:35:19,206 >> Gradient Accumulation steps = 8
269
+
270
+ [INFO|trainer.py:2142] 2024-08-16 12:35:19,206 >> Total optimization steps = 384
271
+
272
+ [INFO|trainer.py:2143] 2024-08-16 12:35:19,210 >> Number of trainable parameters = 20,185,088
273
+
274
+ [INFO|callbacks.py:312] 2024-08-16 12:36:02,659 >> {'loss': 0.8310, 'learning_rate': 1.0000e-04, 'epoch': 0.02, 'throughput': 12068.40}
275
+
276
+ [INFO|callbacks.py:312] 2024-08-16 12:36:44,933 >> {'loss': 0.7398, 'learning_rate': 9.9993e-05, 'epoch': 0.03, 'throughput': 12232.95}
277
+
278
+ [INFO|callbacks.py:312] 2024-08-16 12:37:27,241 >> {'loss': 0.6438, 'learning_rate': 9.9973e-05, 'epoch': 0.05, 'throughput': 12285.60}
279
+
280
+ [INFO|callbacks.py:312] 2024-08-16 12:38:09,612 >> {'loss': 0.6032, 'learning_rate': 9.9939e-05, 'epoch': 0.06, 'throughput': 12307.51}
281
+
282
+ [INFO|callbacks.py:312] 2024-08-16 12:38:51,927 >> {'loss': 0.5433, 'learning_rate': 9.9892e-05, 'epoch': 0.08, 'throughput': 12323.95}
283
+
284
+ [INFO|callbacks.py:312] 2024-08-16 12:39:34,282 >> {'loss': 0.5228, 'learning_rate': 9.9831e-05, 'epoch': 0.09, 'throughput': 12332.99}
285
+
286
+ [INFO|callbacks.py:312] 2024-08-16 12:40:16,580 >> {'loss': 0.4702, 'learning_rate': 9.9757e-05, 'epoch': 0.11, 'throughput': 12341.83}
287
+
288
+ [INFO|callbacks.py:312] 2024-08-16 12:40:58,913 >> {'loss': 0.4574, 'learning_rate': 9.9669e-05, 'epoch': 0.12, 'throughput': 12347.21}
289
+
290
+ [INFO|callbacks.py:312] 2024-08-16 12:41:41,280 >> {'loss': 0.5093, 'learning_rate': 9.9568e-05, 'epoch': 0.14, 'throughput': 12350.26}
291
+
292
+ [INFO|callbacks.py:312] 2024-08-16 12:42:23,640 >> {'loss': 0.4771, 'learning_rate': 9.9453e-05, 'epoch': 0.16, 'throughput': 12352.92}
293
+
294
+ [INFO|callbacks.py:312] 2024-08-16 12:43:05,996 >> {'loss': 0.4343, 'learning_rate': 9.9325e-05, 'epoch': 0.17, 'throughput': 12355.21}
295
+
296
+ [INFO|callbacks.py:312] 2024-08-16 12:43:48,388 >> {'loss': 0.4455, 'learning_rate': 9.9184e-05, 'epoch': 0.19, 'throughput': 12356.26}
297
+
298
+ [INFO|callbacks.py:312] 2024-08-16 12:44:30,830 >> {'loss': 0.4669, 'learning_rate': 9.9029e-05, 'epoch': 0.20, 'throughput': 12356.01}
299
+
300
+ [INFO|callbacks.py:312] 2024-08-16 12:45:13,185 >> {'loss': 0.4723, 'learning_rate': 9.8861e-05, 'epoch': 0.22, 'throughput': 12357.59}
301
+
302
+ [INFO|callbacks.py:312] 2024-08-16 12:45:55,574 >> {'loss': 0.4364, 'learning_rate': 9.8680e-05, 'epoch': 0.23, 'throughput': 12358.33}
303
+
304
+ [INFO|callbacks.py:312] 2024-08-16 12:46:37,892 >> {'loss': 0.4013, 'learning_rate': 9.8486e-05, 'epoch': 0.25, 'throughput': 12360.25}
305
+
306
+ [INFO|callbacks.py:312] 2024-08-16 12:47:20,267 >> {'loss': 0.3875, 'learning_rate': 9.8279e-05, 'epoch': 0.26, 'throughput': 12360.97}
307
+
308
+ [INFO|callbacks.py:312] 2024-08-16 12:48:02,620 >> {'loss': 0.4187, 'learning_rate': 9.8058e-05, 'epoch': 0.28, 'throughput': 12361.99}
309
+
310
+ [INFO|callbacks.py:312] 2024-08-16 12:48:44,965 >> {'loss': 0.3981, 'learning_rate': 9.7825e-05, 'epoch': 0.29, 'throughput': 12363.00}
311
+
312
+ [INFO|callbacks.py:312] 2024-08-16 12:49:27,368 >> {'loss': 0.4121, 'learning_rate': 9.7578e-05, 'epoch': 0.31, 'throughput': 12363.06}
313
+
314
+ [INFO|callbacks.py:312] 2024-08-16 12:50:09,733 >> {'loss': 0.3920, 'learning_rate': 9.7319e-05, 'epoch': 0.33, 'throughput': 12363.66}
315
+
316
+ [INFO|callbacks.py:312] 2024-08-16 12:50:52,018 >> {'loss': 0.3845, 'learning_rate': 9.7047e-05, 'epoch': 0.34, 'throughput': 12365.26}
317
+
318
+ [INFO|callbacks.py:312] 2024-08-16 12:51:34,403 >> {'loss': 0.3970, 'learning_rate': 9.6762e-05, 'epoch': 0.36, 'throughput': 12365.45}
319
+
320
+ [INFO|callbacks.py:312] 2024-08-16 12:52:16,774 >> {'loss': 0.3753, 'learning_rate': 9.6465e-05, 'epoch': 0.37, 'throughput': 12365.80}
321
+
322
+ [INFO|callbacks.py:312] 2024-08-16 12:52:59,105 >> {'loss': 0.3870, 'learning_rate': 9.6155e-05, 'epoch': 0.39, 'throughput': 12366.58}
323
+
324
+ [INFO|callbacks.py:312] 2024-08-16 12:53:41,453 >> {'loss': 0.3724, 'learning_rate': 9.5832e-05, 'epoch': 0.40, 'throughput': 12367.11}
325
+
326
+ [INFO|callbacks.py:312] 2024-08-16 12:54:23,808 >> {'loss': 0.4394, 'learning_rate': 9.5497e-05, 'epoch': 0.42, 'throughput': 12367.54}
327
+
328
+ [INFO|callbacks.py:312] 2024-08-16 12:55:06,153 >> {'loss': 0.4177, 'learning_rate': 9.5150e-05, 'epoch': 0.43, 'throughput': 12368.03}
329
+
330
+ [INFO|callbacks.py:312] 2024-08-16 12:55:48,525 >> {'loss': 0.3939, 'learning_rate': 9.4790e-05, 'epoch': 0.45, 'throughput': 12368.21}
331
+
332
+ [INFO|callbacks.py:312] 2024-08-16 12:56:30,845 >> {'loss': 0.4207, 'learning_rate': 9.4419e-05, 'epoch': 0.47, 'throughput': 12368.89}
333
+
334
+ [INFO|callbacks.py:312] 2024-08-16 12:57:13,203 >> {'loss': 0.3653, 'learning_rate': 9.4035e-05, 'epoch': 0.48, 'throughput': 12369.17}
335
+
336
+ [INFO|callbacks.py:312] 2024-08-16 12:57:55,540 >> {'loss': 0.3925, 'learning_rate': 9.3640e-05, 'epoch': 0.50, 'throughput': 12369.62}
337
+
338
+ [INFO|callbacks.py:312] 2024-08-16 12:58:37,884 >> {'loss': 0.3982, 'learning_rate': 9.3233e-05, 'epoch': 0.51, 'throughput': 12369.99}
339
+
340
+ [INFO|callbacks.py:312] 2024-08-16 12:59:20,230 >> {'loss': 0.3709, 'learning_rate': 9.2814e-05, 'epoch': 0.53, 'throughput': 12370.31}
341
+
342
+ [INFO|callbacks.py:312] 2024-08-16 13:00:02,597 >> {'loss': 0.3744, 'learning_rate': 9.2383e-05, 'epoch': 0.54, 'throughput': 12370.44}
343
+
344
+ [INFO|callbacks.py:312] 2024-08-16 13:00:44,955 >> {'loss': 0.3929, 'learning_rate': 9.1941e-05, 'epoch': 0.56, 'throughput': 12370.64}
345
+
346
+ [INFO|callbacks.py:312] 2024-08-16 13:01:27,325 >> {'loss': 0.3716, 'learning_rate': 9.1488e-05, 'epoch': 0.57, 'throughput': 12370.73}
347
+
348
+ [INFO|callbacks.py:312] 2024-08-16 13:02:09,657 >> {'loss': 0.3959, 'learning_rate': 9.1023e-05, 'epoch': 0.59, 'throughput': 12371.11}
349
+
350
+ [INFO|callbacks.py:312] 2024-08-16 13:02:52,031 >> {'loss': 0.3514, 'learning_rate': 9.0547e-05, 'epoch': 0.61, 'throughput': 12371.15}
351
+
352
+ [INFO|callbacks.py:312] 2024-08-16 13:03:34,381 >> {'loss': 0.3767, 'learning_rate': 9.0061e-05, 'epoch': 0.62, 'throughput': 12371.38}
353
+
354
+ [INFO|callbacks.py:312] 2024-08-16 13:04:16,765 >> {'loss': 0.3710, 'learning_rate': 8.9563e-05, 'epoch': 0.64, 'throughput': 12371.34}
355
+
356
+ [INFO|callbacks.py:312] 2024-08-16 13:04:59,089 >> {'loss': 0.3529, 'learning_rate': 8.9055e-05, 'epoch': 0.65, 'throughput': 12371.72}
357
+
358
+ [INFO|callbacks.py:312] 2024-08-16 13:05:41,445 >> {'loss': 0.3044, 'learning_rate': 8.8536e-05, 'epoch': 0.67, 'throughput': 12371.87}
359
+
360
+ [INFO|callbacks.py:312] 2024-08-16 13:06:23,764 >> {'loss': 0.3532, 'learning_rate': 8.8007e-05, 'epoch': 0.68, 'throughput': 12372.26}
361
+
362
+ [INFO|callbacks.py:312] 2024-08-16 13:07:06,185 >> {'loss': 0.3461, 'learning_rate': 8.7467e-05, 'epoch': 0.70, 'throughput': 12371.97}
363
+
364
+ [INFO|callbacks.py:312] 2024-08-16 13:07:48,606 >> {'loss': 0.3513, 'learning_rate': 8.6918e-05, 'epoch': 0.71, 'throughput': 12371.69}
365
+
366
+ [INFO|callbacks.py:312] 2024-08-16 13:08:30,947 >> {'loss': 0.3842, 'learning_rate': 8.6358e-05, 'epoch': 0.73, 'throughput': 12371.92}
367
+
368
+ [INFO|callbacks.py:312] 2024-08-16 13:09:13,288 >> {'loss': 0.3630, 'learning_rate': 8.5789e-05, 'epoch': 0.74, 'throughput': 12372.14}
369
+
370
+ [INFO|callbacks.py:312] 2024-08-16 13:09:55,576 >> {'loss': 0.3079, 'learning_rate': 8.5210e-05, 'epoch': 0.76, 'throughput': 12372.67}
371
+
372
+ [INFO|callbacks.py:312] 2024-08-16 13:10:37,964 >> {'loss': 0.3769, 'learning_rate': 8.4621e-05, 'epoch': 0.78, 'throughput': 12372.59}
373
+
374
+ [INFO|callbacks.py:312] 2024-08-16 13:11:20,331 >> {'loss': 0.3907, 'learning_rate': 8.4023e-05, 'epoch': 0.79, 'throughput': 12372.64}
375
+
376
+ [INFO|callbacks.py:312] 2024-08-16 13:12:02,695 >> {'loss': 0.3457, 'learning_rate': 8.3416e-05, 'epoch': 0.81, 'throughput': 12372.69}
377
+
378
+ [INFO|callbacks.py:312] 2024-08-16 13:12:45,011 >> {'loss': 0.3889, 'learning_rate': 8.2800e-05, 'epoch': 0.82, 'throughput': 12373.02}
379
+
380
+ [INFO|callbacks.py:312] 2024-08-16 13:13:27,369 >> {'loss': 0.3142, 'learning_rate': 8.2174e-05, 'epoch': 0.84, 'throughput': 12373.10}
381
+
382
+ [INFO|callbacks.py:312] 2024-08-16 13:14:09,715 >> {'loss': 0.3299, 'learning_rate': 8.1541e-05, 'epoch': 0.85, 'throughput': 12373.25}
383
+
384
+ [INFO|callbacks.py:312] 2024-08-16 13:14:52,085 >> {'loss': 0.3425, 'learning_rate': 8.0898e-05, 'epoch': 0.87, 'throughput': 12373.26}
385
+
386
+ [INFO|callbacks.py:312] 2024-08-16 13:15:34,456 >> {'loss': 0.3363, 'learning_rate': 8.0247e-05, 'epoch': 0.88, 'throughput': 12373.27}
387
+
388
+ [INFO|callbacks.py:312] 2024-08-16 13:16:16,801 >> {'loss': 0.3725, 'learning_rate': 7.9589e-05, 'epoch': 0.90, 'throughput': 12373.41}
389
+
390
+ [INFO|callbacks.py:312] 2024-08-16 13:16:59,117 >> {'loss': 0.3397, 'learning_rate': 7.8922e-05, 'epoch': 0.92, 'throughput': 12373.69}
391
+
392
+ [INFO|callbacks.py:312] 2024-08-16 13:17:41,455 >> {'loss': 0.2812, 'learning_rate': 7.8247e-05, 'epoch': 0.93, 'throughput': 12373.85}
393
+
394
+ [INFO|callbacks.py:312] 2024-08-16 13:18:23,836 >> {'loss': 0.3555, 'learning_rate': 7.7564e-05, 'epoch': 0.95, 'throughput': 12373.80}
395
+
396
+ [INFO|callbacks.py:312] 2024-08-16 13:19:06,200 >> {'loss': 0.3362, 'learning_rate': 7.6875e-05, 'epoch': 0.96, 'throughput': 12373.83}
397
+
398
+ [INFO|callbacks.py:312] 2024-08-16 13:19:48,535 >> {'loss': 0.3133, 'learning_rate': 7.6177e-05, 'epoch': 0.98, 'throughput': 12374.00}
399
+
400
+ [INFO|callbacks.py:312] 2024-08-16 13:20:30,848 >> {'loss': 0.3119, 'learning_rate': 7.5473e-05, 'epoch': 0.99, 'throughput': 12374.26}
401
+
402
+ [INFO|callbacks.py:312] 2024-08-16 13:21:13,219 >> {'loss': 0.3117, 'learning_rate': 7.4762e-05, 'epoch': 1.01, 'throughput': 12374.25}
403
+
404
+ [INFO|callbacks.py:312] 2024-08-16 13:21:55,569 >> {'loss': 0.3290, 'learning_rate': 7.4044e-05, 'epoch': 1.02, 'throughput': 12374.33}
405
+
406
+ [INFO|callbacks.py:312] 2024-08-16 13:22:37,938 >> {'loss': 0.2790, 'learning_rate': 7.3320e-05, 'epoch': 1.04, 'throughput': 12374.33}
407
+
408
+ [INFO|callbacks.py:312] 2024-08-16 13:23:20,316 >> {'loss': 0.2682, 'learning_rate': 7.2590e-05, 'epoch': 1.06, 'throughput': 12374.30}
409
+
410
+ [INFO|callbacks.py:312] 2024-08-16 13:24:02,700 >> {'loss': 0.2930, 'learning_rate': 7.1853e-05, 'epoch': 1.07, 'throughput': 12374.23}
411
+
412
+ [INFO|callbacks.py:312] 2024-08-16 13:24:45,029 >> {'loss': 0.3150, 'learning_rate': 7.1110e-05, 'epoch': 1.09, 'throughput': 12374.40}
413
+
414
+ [INFO|callbacks.py:312] 2024-08-16 13:25:27,456 >> {'loss': 0.2890, 'learning_rate': 7.0362e-05, 'epoch': 1.10, 'throughput': 12374.16}
415
+
416
+ [INFO|callbacks.py:312] 2024-08-16 13:26:09,792 >> {'loss': 0.2808, 'learning_rate': 6.9608e-05, 'epoch': 1.12, 'throughput': 12374.30}
417
+
418
+ [INFO|callbacks.py:312] 2024-08-16 13:26:52,153 >> {'loss': 0.3180, 'learning_rate': 6.8849e-05, 'epoch': 1.13, 'throughput': 12374.33}
419
+
420
+ [INFO|callbacks.py:312] 2024-08-16 13:27:34,497 >> {'loss': 0.2685, 'learning_rate': 6.8085e-05, 'epoch': 1.15, 'throughput': 12374.43}
421
+
422
+ [INFO|callbacks.py:312] 2024-08-16 13:28:16,828 >> {'loss': 0.3121, 'learning_rate': 6.7315e-05, 'epoch': 1.16, 'throughput': 12374.58}
423
+
424
+ [INFO|callbacks.py:312] 2024-08-16 13:28:59,183 >> {'loss': 0.2835, 'learning_rate': 6.6542e-05, 'epoch': 1.18, 'throughput': 12374.63}
425
+
426
+ [INFO|callbacks.py:312] 2024-08-16 13:29:41,447 >> {'loss': 0.2905, 'learning_rate': 6.5763e-05, 'epoch': 1.19, 'throughput': 12375.02}
427
+
428
+ [INFO|callbacks.py:312] 2024-08-16 13:30:23,793 >> {'loss': 0.3277, 'learning_rate': 6.4981e-05, 'epoch': 1.21, 'throughput': 12375.10}
429
+
430
+ [INFO|callbacks.py:312] 2024-08-16 13:31:06,159 >> {'loss': 0.2788, 'learning_rate': 6.4194e-05, 'epoch': 1.23, 'throughput': 12375.10}
431
+
432
+ [INFO|callbacks.py:312] 2024-08-16 13:31:48,520 >> {'loss': 0.2971, 'learning_rate': 6.3404e-05, 'epoch': 1.24, 'throughput': 12375.12}
433
+
434
+ [INFO|callbacks.py:312] 2024-08-16 13:32:30,924 >> {'loss': 0.2870, 'learning_rate': 6.2610e-05, 'epoch': 1.26, 'throughput': 12374.98}
435
+
436
+ [INFO|callbacks.py:312] 2024-08-16 13:33:13,286 >> {'loss': 0.3196, 'learning_rate': 6.1812e-05, 'epoch': 1.27, 'throughput': 12375.00}
437
+
438
+ [INFO|callbacks.py:312] 2024-08-16 13:33:55,649 >> {'loss': 0.3021, 'learning_rate': 6.1011e-05, 'epoch': 1.29, 'throughput': 12375.01}
439
+
440
+ [INFO|callbacks.py:312] 2024-08-16 13:34:38,007 >> {'loss': 0.2329, 'learning_rate': 6.0208e-05, 'epoch': 1.30, 'throughput': 12375.04}
441
+
442
+ [INFO|callbacks.py:312] 2024-08-16 13:35:20,352 >> {'loss': 0.2803, 'learning_rate': 5.9401e-05, 'epoch': 1.32, 'throughput': 12375.12}
443
+
444
+ [INFO|callbacks.py:312] 2024-08-16 13:36:02,691 >> {'loss': 0.2744, 'learning_rate': 5.8592e-05, 'epoch': 1.33, 'throughput': 12375.21}
445
+
446
+ [INFO|callbacks.py:312] 2024-08-16 13:36:44,975 >> {'loss': 0.3332, 'learning_rate': 5.7781e-05, 'epoch': 1.35, 'throughput': 12375.49}
447
+
448
+ [INFO|callbacks.py:312] 2024-08-16 13:37:27,361 >> {'loss': 0.3223, 'learning_rate': 5.6968e-05, 'epoch': 1.37, 'throughput': 12375.42}
449
+
450
+ [INFO|callbacks.py:312] 2024-08-16 13:38:09,707 >> {'loss': 0.3127, 'learning_rate': 5.6152e-05, 'epoch': 1.38, 'throughput': 12375.48}
451
+
452
+ [INFO|callbacks.py:312] 2024-08-16 13:38:52,014 >> {'loss': 0.2908, 'learning_rate': 5.5335e-05, 'epoch': 1.40, 'throughput': 12375.67}
453
+
454
+ [INFO|callbacks.py:312] 2024-08-16 13:39:34,381 >> {'loss': 0.2918, 'learning_rate': 5.4517e-05, 'epoch': 1.41, 'throughput': 12375.66}
455
+
456
+ [INFO|callbacks.py:312] 2024-08-16 13:40:16,717 >> {'loss': 0.2680, 'learning_rate': 5.3697e-05, 'epoch': 1.43, 'throughput': 12375.75}
457
+
458
+ [INFO|callbacks.py:312] 2024-08-16 13:40:59,093 >> {'loss': 0.2862, 'learning_rate': 5.2877e-05, 'epoch': 1.44, 'throughput': 12375.71}
459
+
460
+ [INFO|callbacks.py:312] 2024-08-16 13:41:41,470 >> {'loss': 0.3054, 'learning_rate': 5.2055e-05, 'epoch': 1.46, 'throughput': 12375.67}
461
+
462
+ [INFO|callbacks.py:312] 2024-08-16 13:42:23,818 >> {'loss': 0.2814, 'learning_rate': 5.1233e-05, 'epoch': 1.47, 'throughput': 12375.72}
463
+
464
+ [INFO|callbacks.py:312] 2024-08-16 13:43:06,212 >> {'loss': 0.2703, 'learning_rate': 5.0411e-05, 'epoch': 1.49, 'throughput': 12375.63}
465
+
466
+ [INFO|callbacks.py:312] 2024-08-16 13:43:48,537 >> {'loss': 0.2689, 'learning_rate': 4.9589e-05, 'epoch': 1.51, 'throughput': 12375.75}
467
+
468
+ [INFO|callbacks.py:312] 2024-08-16 13:44:30,897 >> {'loss': 0.3013, 'learning_rate': 4.8767e-05, 'epoch': 1.52, 'throughput': 12375.76}
469
+
470
+ [INFO|callbacks.py:312] 2024-08-16 13:45:13,277 >> {'loss': 0.2751, 'learning_rate': 4.7945e-05, 'epoch': 1.54, 'throughput': 12375.72}
471
+
472
+ [INFO|callbacks.py:312] 2024-08-16 13:45:55,623 >> {'loss': 0.3178, 'learning_rate': 4.7123e-05, 'epoch': 1.55, 'throughput': 12375.77}
473
+
474
+ [INFO|callbacks.py:312] 2024-08-16 13:46:37,977 >> {'loss': 0.2742, 'learning_rate': 4.6303e-05, 'epoch': 1.57, 'throughput': 12375.80}
475
+
476
+ [INFO|callbacks.py:312] 2024-08-16 13:47:20,326 >> {'loss': 0.2751, 'learning_rate': 4.5483e-05, 'epoch': 1.58, 'throughput': 12375.84}
477
+
478
+ [INFO|callbacks.py:312] 2024-08-16 13:48:02,717 >> {'loss': 0.3256, 'learning_rate': 4.4665e-05, 'epoch': 1.60, 'throughput': 12375.76}
479
+
480
+ [INFO|callbacks.py:312] 2024-08-16 13:48:45,048 >> {'loss': 0.2603, 'learning_rate': 4.3848e-05, 'epoch': 1.61, 'throughput': 12375.86}
481
+
482
+ [INFO|callbacks.py:312] 2024-08-16 13:49:27,372 >> {'loss': 0.2598, 'learning_rate': 4.3032e-05, 'epoch': 1.63, 'throughput': 12375.97}
483
+
484
+ [INFO|callbacks.py:312] 2024-08-16 13:50:09,716 >> {'loss': 0.2811, 'learning_rate': 4.2219e-05, 'epoch': 1.65, 'throughput': 12376.02}
485
+
486
+ [INFO|callbacks.py:312] 2024-08-16 13:50:52,092 >> {'loss': 0.2386, 'learning_rate': 4.1408e-05, 'epoch': 1.66, 'throughput': 12375.99}
487
+
488
+ [INFO|callbacks.py:312] 2024-08-16 13:51:34,476 >> {'loss': 0.2999, 'learning_rate': 4.0599e-05, 'epoch': 1.68, 'throughput': 12375.93}
489
+
490
+ [INFO|callbacks.py:312] 2024-08-16 13:52:16,880 >> {'loss': 0.2857, 'learning_rate': 3.9792e-05, 'epoch': 1.69, 'throughput': 12375.82}
491
+
492
+ [INFO|callbacks.py:312] 2024-08-16 13:52:59,255 >> {'loss': 0.2533, 'learning_rate': 3.8989e-05, 'epoch': 1.71, 'throughput': 12375.79}
493
+
494
+ [INFO|callbacks.py:312] 2024-08-16 13:53:41,557 >> {'loss': 0.3060, 'learning_rate': 3.8188e-05, 'epoch': 1.72, 'throughput': 12375.96}
495
+
496
+ [INFO|callbacks.py:312] 2024-08-16 13:54:23,889 >> {'loss': 0.2594, 'learning_rate': 3.7390e-05, 'epoch': 1.74, 'throughput': 12376.04}
497
+
498
+ [INFO|callbacks.py:312] 2024-08-16 13:55:06,247 >> {'loss': 0.2840, 'learning_rate': 3.6596e-05, 'epoch': 1.75, 'throughput': 12376.05}
499
+
500
+ [INFO|callbacks.py:312] 2024-08-16 13:55:48,620 >> {'loss': 0.3300, 'learning_rate': 3.5806e-05, 'epoch': 1.77, 'throughput': 12376.03}
501
+
502
+ [INFO|callbacks.py:312] 2024-08-16 13:56:31,000 >> {'loss': 0.2968, 'learning_rate': 3.5019e-05, 'epoch': 1.78, 'throughput': 12375.98}
503
+
504
+ [INFO|callbacks.py:312] 2024-08-16 13:57:13,317 >> {'loss': 0.2836, 'learning_rate': 3.4237e-05, 'epoch': 1.80, 'throughput': 12376.10}
505
+
506
+ [INFO|callbacks.py:312] 2024-08-16 13:57:55,663 >> {'loss': 0.2452, 'learning_rate': 3.3458e-05, 'epoch': 1.82, 'throughput': 12376.14}
507
+
508
+ [INFO|callbacks.py:312] 2024-08-16 13:58:38,049 >> {'loss': 0.2526, 'learning_rate': 3.2685e-05, 'epoch': 1.83, 'throughput': 12376.09}
509
+
510
+ [INFO|callbacks.py:312] 2024-08-16 13:59:20,385 >> {'loss': 0.2578, 'learning_rate': 3.1915e-05, 'epoch': 1.85, 'throughput': 12376.15}
511
+
512
+ [INFO|callbacks.py:312] 2024-08-16 14:00:02,721 >> {'loss': 0.2895, 'learning_rate': 3.1151e-05, 'epoch': 1.86, 'throughput': 12376.22}
513
+
514
+ [INFO|callbacks.py:312] 2024-08-16 14:00:45,089 >> {'loss': 0.3047, 'learning_rate': 3.0392e-05, 'epoch': 1.88, 'throughput': 12376.20}
515
+
516
+ [INFO|callbacks.py:312] 2024-08-16 14:01:27,480 >> {'loss': 0.2958, 'learning_rate': 2.9638e-05, 'epoch': 1.89, 'throughput': 12376.13}
517
+
518
+ [INFO|callbacks.py:312] 2024-08-16 14:02:09,856 >> {'loss': 0.2598, 'learning_rate': 2.8890e-05, 'epoch': 1.91, 'throughput': 12376.10}
519
+
520
+ [INFO|callbacks.py:312] 2024-08-16 14:02:52,224 >> {'loss': 0.2699, 'learning_rate': 2.8147e-05, 'epoch': 1.92, 'throughput': 12376.09}
521
+
522
+ [INFO|callbacks.py:312] 2024-08-16 14:03:34,541 >> {'loss': 0.2827, 'learning_rate': 2.7410e-05, 'epoch': 1.94, 'throughput': 12376.20}
523
+
524
+ [INFO|callbacks.py:312] 2024-08-16 14:04:16,887 >> {'loss': 0.3119, 'learning_rate': 2.6680e-05, 'epoch': 1.96, 'throughput': 12376.24}
525
+
526
+ [INFO|callbacks.py:312] 2024-08-16 14:04:59,273 >> {'loss': 0.2837, 'learning_rate': 2.5956e-05, 'epoch': 1.97, 'throughput': 12376.19}
527
+
528
+ [INFO|callbacks.py:312] 2024-08-16 14:05:41,665 >> {'loss': 0.2511, 'learning_rate': 2.5238e-05, 'epoch': 1.99, 'throughput': 12376.12}
529
+
530
+ [INFO|callbacks.py:312] 2024-08-16 14:06:24,053 >> {'loss': 0.2501, 'learning_rate': 2.4527e-05, 'epoch': 2.00, 'throughput': 12376.06}
531
+
532
+ [INFO|callbacks.py:312] 2024-08-16 14:07:06,393 >> {'loss': 0.2296, 'learning_rate': 2.3823e-05, 'epoch': 2.02, 'throughput': 12376.11}
533
+
534
+ [INFO|callbacks.py:312] 2024-08-16 14:07:48,745 >> {'loss': 0.2333, 'learning_rate': 2.3125e-05, 'epoch': 2.03, 'throughput': 12376.14}
535
+
536
+ [INFO|callbacks.py:312] 2024-08-16 14:08:31,135 >> {'loss': 0.2119, 'learning_rate': 2.2436e-05, 'epoch': 2.05, 'throughput': 12376.08}
537
+
538
+ [INFO|callbacks.py:312] 2024-08-16 14:09:13,523 >> {'loss': 0.2676, 'learning_rate': 2.1753e-05, 'epoch': 2.06, 'throughput': 12376.02}
539
+
540
+ [INFO|callbacks.py:312] 2024-08-16 14:09:55,858 >> {'loss': 0.2285, 'learning_rate': 2.1078e-05, 'epoch': 2.08, 'throughput': 12376.08}
541
+
542
+ [INFO|callbacks.py:312] 2024-08-16 14:10:38,203 >> {'loss': 0.2281, 'learning_rate': 2.0411e-05, 'epoch': 2.10, 'throughput': 12376.12}
543
+
544
+ [INFO|callbacks.py:312] 2024-08-16 14:11:20,589 >> {'loss': 0.2701, 'learning_rate': 1.9753e-05, 'epoch': 2.11, 'throughput': 12376.07}
545
+
546
+ [INFO|callbacks.py:312] 2024-08-16 14:12:03,007 >> {'loss': 0.2033, 'learning_rate': 1.9102e-05, 'epoch': 2.13, 'throughput': 12375.95}
547
+
548
+ [INFO|callbacks.py:312] 2024-08-16 14:12:45,356 >> {'loss': 0.2489, 'learning_rate': 1.8459e-05, 'epoch': 2.14, 'throughput': 12375.99}
549
+
550
+ [INFO|callbacks.py:312] 2024-08-16 14:13:27,726 >> {'loss': 0.2294, 'learning_rate': 1.7826e-05, 'epoch': 2.16, 'throughput': 12375.97}
551
+
552
+ [INFO|callbacks.py:312] 2024-08-16 14:14:10,114 >> {'loss': 0.2452, 'learning_rate': 1.7200e-05, 'epoch': 2.17, 'throughput': 12375.92}
553
+
554
+ [INFO|callbacks.py:312] 2024-08-16 14:14:52,477 >> {'loss': 0.2420, 'learning_rate': 1.6584e-05, 'epoch': 2.19, 'throughput': 12375.92}
555
+
556
+ [INFO|callbacks.py:312] 2024-08-16 14:15:34,799 >> {'loss': 0.2894, 'learning_rate': 1.5977e-05, 'epoch': 2.20, 'throughput': 12376.01}
557
+
558
+ [INFO|callbacks.py:312] 2024-08-16 14:16:17,116 >> {'loss': 0.2310, 'learning_rate': 1.5379e-05, 'epoch': 2.22, 'throughput': 12376.10}
559
+
560
+ [INFO|callbacks.py:312] 2024-08-16 14:16:59,419 >> {'loss': 0.2412, 'learning_rate': 1.4790e-05, 'epoch': 2.23, 'throughput': 12376.22}
561
+
562
+ [INFO|callbacks.py:312] 2024-08-16 14:17:41,780 >> {'loss': 0.2464, 'learning_rate': 1.4211e-05, 'epoch': 2.25, 'throughput': 12376.23}
563
+
564
+ [INFO|callbacks.py:312] 2024-08-16 14:18:24,121 >> {'loss': 0.2231, 'learning_rate': 1.3642e-05, 'epoch': 2.27, 'throughput': 12376.27}
565
+
566
+ [INFO|callbacks.py:312] 2024-08-16 14:19:06,463 >> {'loss': 0.2432, 'learning_rate': 1.3082e-05, 'epoch': 2.28, 'throughput': 12376.31}
567
+
568
+ [INFO|callbacks.py:312] 2024-08-16 14:19:48,827 >> {'loss': 0.2147, 'learning_rate': 1.2533e-05, 'epoch': 2.30, 'throughput': 12376.31}
569
+
570
+ [INFO|callbacks.py:312] 2024-08-16 14:20:31,125 >> {'loss': 0.2490, 'learning_rate': 1.1993e-05, 'epoch': 2.31, 'throughput': 12376.43}
571
+
572
+ [INFO|callbacks.py:312] 2024-08-16 14:21:13,484 >> {'loss': 0.2362, 'learning_rate': 1.1464e-05, 'epoch': 2.33, 'throughput': 12376.44}
573
+
574
+ [INFO|callbacks.py:312] 2024-08-16 14:21:55,830 >> {'loss': 0.2232, 'learning_rate': 1.0945e-05, 'epoch': 2.34, 'throughput': 12376.47}
575
+
576
+ [INFO|callbacks.py:312] 2024-08-16 14:22:38,180 >> {'loss': 0.2569, 'learning_rate': 1.0437e-05, 'epoch': 2.36, 'throughput': 12376.49}
577
+
578
+ [INFO|callbacks.py:312] 2024-08-16 14:23:20,529 >> {'loss': 0.2140, 'learning_rate': 9.9394e-06, 'epoch': 2.37, 'throughput': 12376.52}
579
+
580
+ [INFO|callbacks.py:312] 2024-08-16 14:24:02,885 >> {'loss': 0.2451, 'learning_rate': 9.4527e-06, 'epoch': 2.39, 'throughput': 12376.53}
581
+
582
+ [INFO|callbacks.py:312] 2024-08-16 14:24:45,189 >> {'loss': 0.2288, 'learning_rate': 8.9770e-06, 'epoch': 2.41, 'throughput': 12376.63}
583
+
584
+ [INFO|callbacks.py:312] 2024-08-16 14:25:27,580 >> {'loss': 0.2332, 'learning_rate': 8.5124e-06, 'epoch': 2.42, 'throughput': 12376.58}
585
+
586
+ [INFO|callbacks.py:312] 2024-08-16 14:26:09,900 >> {'loss': 0.2020, 'learning_rate': 8.0590e-06, 'epoch': 2.44, 'throughput': 12376.66}
587
+
588
+ [INFO|callbacks.py:312] 2024-08-16 14:26:52,220 >> {'loss': 0.2270, 'learning_rate': 7.6170e-06, 'epoch': 2.45, 'throughput': 12376.73}
589
+
590
+ [INFO|callbacks.py:312] 2024-08-16 14:27:34,558 >> {'loss': 0.2429, 'learning_rate': 7.1864e-06, 'epoch': 2.47, 'throughput': 12376.77}
591
+
592
+ [INFO|callbacks.py:312] 2024-08-16 14:28:16,947 >> {'loss': 0.2147, 'learning_rate': 6.7674e-06, 'epoch': 2.48, 'throughput': 12376.72}
593
+
594
+ [INFO|callbacks.py:312] 2024-08-16 14:28:59,276 >> {'loss': 0.2423, 'learning_rate': 6.3601e-06, 'epoch': 2.50, 'throughput': 12376.78}
595
+
596
+ [INFO|callbacks.py:312] 2024-08-16 14:29:41,633 >> {'loss': 0.2828, 'learning_rate': 5.9647e-06, 'epoch': 2.51, 'throughput': 12376.78}
597
+
598
+ [INFO|callbacks.py:312] 2024-08-16 14:30:23,993 >> {'loss': 0.2461, 'learning_rate': 5.5811e-06, 'epoch': 2.53, 'throughput': 12376.78}
599
+
600
+ [INFO|callbacks.py:312] 2024-08-16 14:31:06,397 >> {'loss': 0.2960, 'learning_rate': 5.2095e-06, 'epoch': 2.55, 'throughput': 12376.71}
601
+
602
+ [INFO|callbacks.py:312] 2024-08-16 14:31:48,695 >> {'loss': 0.2061, 'learning_rate': 4.8501e-06, 'epoch': 2.56, 'throughput': 12376.82}
603
+
604
+ [INFO|callbacks.py:312] 2024-08-16 14:32:31,012 >> {'loss': 0.2323, 'learning_rate': 4.5029e-06, 'epoch': 2.58, 'throughput': 12376.90}
605
+
606
+ [INFO|callbacks.py:312] 2024-08-16 14:33:13,360 >> {'loss': 0.2156, 'learning_rate': 4.1680e-06, 'epoch': 2.59, 'throughput': 12376.92}
607
+
608
+ [INFO|callbacks.py:312] 2024-08-16 14:33:55,692 >> {'loss': 0.2393, 'learning_rate': 3.8455e-06, 'epoch': 2.61, 'throughput': 12376.97}
609
+
610
+ [INFO|callbacks.py:312] 2024-08-16 14:34:38,031 >> {'loss': 0.2165, 'learning_rate': 3.5354e-06, 'epoch': 2.62, 'throughput': 12377.00}
611
+
612
+ [INFO|callbacks.py:312] 2024-08-16 14:35:20,371 >> {'loss': 0.2313, 'learning_rate': 3.2380e-06, 'epoch': 2.64, 'throughput': 12377.04}
613
+
614
+ [INFO|callbacks.py:312] 2024-08-16 14:36:02,747 >> {'loss': 0.2336, 'learning_rate': 2.9532e-06, 'epoch': 2.65, 'throughput': 12377.01}
615
+
616
+ [INFO|callbacks.py:312] 2024-08-16 14:36:45,116 >> {'loss': 0.2311, 'learning_rate': 2.6811e-06, 'epoch': 2.67, 'throughput': 12376.99}
617
+
618
+ [INFO|callbacks.py:312] 2024-08-16 14:37:27,476 >> {'loss': 0.2130, 'learning_rate': 2.4218e-06, 'epoch': 2.68, 'throughput': 12376.99}
619
+
620
+ [INFO|callbacks.py:312] 2024-08-16 14:38:09,820 >> {'loss': 0.2364, 'learning_rate': 2.1754e-06, 'epoch': 2.70, 'throughput': 12377.02}
621
+
622
+ [INFO|callbacks.py:312] 2024-08-16 14:38:52,212 >> {'loss': 0.2147, 'learning_rate': 1.9420e-06, 'epoch': 2.72, 'throughput': 12376.97}
623
+
624
+ [INFO|callbacks.py:312] 2024-08-16 14:39:34,551 >> {'loss': 0.2316, 'learning_rate': 1.7215e-06, 'epoch': 2.73, 'throughput': 12377.00}
625
+
626
+ [INFO|callbacks.py:312] 2024-08-16 14:40:16,929 >> {'loss': 0.2263, 'learning_rate': 1.5141e-06, 'epoch': 2.75, 'throughput': 12376.97}
627
+
628
+ [INFO|callbacks.py:312] 2024-08-16 14:40:59,276 >> {'loss': 0.2323, 'learning_rate': 1.3198e-06, 'epoch': 2.76, 'throughput': 12376.99}
629
+
630
+ [INFO|callbacks.py:312] 2024-08-16 14:41:41,677 >> {'loss': 0.2246, 'learning_rate': 1.1387e-06, 'epoch': 2.78, 'throughput': 12376.92}
631
+
632
+ [INFO|callbacks.py:312] 2024-08-16 14:42:24,023 >> {'loss': 0.2287, 'learning_rate': 9.7079e-07, 'epoch': 2.79, 'throughput': 12376.95}
633
+
634
+ [INFO|callbacks.py:312] 2024-08-16 14:43:06,390 >> {'loss': 0.2081, 'learning_rate': 8.1616e-07, 'epoch': 2.81, 'throughput': 12376.94}
635
+
636
+ [INFO|callbacks.py:312] 2024-08-16 14:43:48,708 >> {'loss': 0.2260, 'learning_rate': 6.7483e-07, 'epoch': 2.82, 'throughput': 12377.00}
637
+
638
+ [INFO|callbacks.py:312] 2024-08-16 14:44:31,032 >> {'loss': 0.2730, 'learning_rate': 5.4685e-07, 'epoch': 2.84, 'throughput': 12377.06}
639
+
640
+ [INFO|callbacks.py:312] 2024-08-16 14:45:13,357 >> {'loss': 0.2634, 'learning_rate': 4.3224e-07, 'epoch': 2.86, 'throughput': 12377.12}
641
+
642
+ [INFO|callbacks.py:312] 2024-08-16 14:45:55,708 >> {'loss': 0.2592, 'learning_rate': 3.3105e-07, 'epoch': 2.87, 'throughput': 12377.13}
643
+
644
+ [INFO|callbacks.py:312] 2024-08-16 14:46:38,100 >> {'loss': 0.2566, 'learning_rate': 2.4329e-07, 'epoch': 2.89, 'throughput': 12377.08}
645
+
646
+ [INFO|callbacks.py:312] 2024-08-16 14:47:20,422 >> {'loss': 0.2575, 'learning_rate': 1.6899e-07, 'epoch': 2.90, 'throughput': 12377.14}
647
+
648
+ [INFO|callbacks.py:312] 2024-08-16 14:48:02,805 >> {'loss': 0.2482, 'learning_rate': 1.0818e-07, 'epoch': 2.92, 'throughput': 12377.10}
649
+
650
+ [INFO|callbacks.py:312] 2024-08-16 14:48:45,154 >> {'loss': 0.2483, 'learning_rate': 6.0859e-08, 'epoch': 2.93, 'throughput': 12377.12}
651
+
652
+ [INFO|callbacks.py:312] 2024-08-16 14:49:27,463 >> {'loss': 0.2359, 'learning_rate': 2.7052e-08, 'epoch': 2.95, 'throughput': 12377.19}
653
+
654
+ [INFO|callbacks.py:312] 2024-08-16 14:50:09,825 >> {'loss': 0.2434, 'learning_rate': 6.7634e-09, 'epoch': 2.96, 'throughput': 12377.19}
655
+
656
+ [INFO|callbacks.py:312] 2024-08-16 14:50:52,222 >> {'loss': 0.2042, 'learning_rate': 0.0000e+00, 'epoch': 2.98, 'throughput': 12377.13}
657
+
658
+ [INFO|trainer.py:3503] 2024-08-16 14:50:52,226 >> Saving model checkpoint to saves/Qwen2-7B-Chat/lora/train_08-16-2/checkpoint-384
659
+
660
+ [INFO|configuration_utils.py:733] 2024-08-16 14:50:52,618 >> loading configuration file config.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/config.json
661
+
662
+ [INFO|configuration_utils.py:800] 2024-08-16 14:50:52,622 >> Model config Qwen2Config {
663
+ "architectures": [
664
+ "Qwen2ForCausalLM"
665
+ ],
666
+ "attention_dropout": 0.0,
667
+ "bos_token_id": 151643,
668
+ "eos_token_id": 151645,
669
+ "hidden_act": "silu",
670
+ "hidden_size": 3584,
671
+ "initializer_range": 0.02,
672
+ "intermediate_size": 18944,
673
+ "max_position_embeddings": 32768,
674
+ "max_window_layers": 28,
675
+ "model_type": "qwen2",
676
+ "num_attention_heads": 28,
677
+ "num_hidden_layers": 28,
678
+ "num_key_value_heads": 4,
679
+ "rms_norm_eps": 1e-06,
680
+ "rope_theta": 1000000.0,
681
+ "sliding_window": null,
682
+ "tie_word_embeddings": false,
683
+ "torch_dtype": "bfloat16",
684
+ "transformers_version": "4.43.4",
685
+ "use_cache": true,
686
+ "use_sliding_window": false,
687
+ "vocab_size": 152064
688
+ }
689
+
690
+
691
+ [INFO|tokenization_utils_base.py:2702] 2024-08-16 14:50:52,748 >> tokenizer config file saved in saves/Qwen2-7B-Chat/lora/train_08-16-2/checkpoint-384/tokenizer_config.json
692
+
693
+ [INFO|tokenization_utils_base.py:2711] 2024-08-16 14:50:52,750 >> Special tokens file saved in saves/Qwen2-7B-Chat/lora/train_08-16-2/checkpoint-384/special_tokens_map.json
694
+
695
+ [INFO|trainer.py:2394] 2024-08-16 14:50:53,095 >>
696
+
697
+ Training completed. Do not forget to share your model on huggingface.co/models =)
698
+
699
+
700
+
701
+ [INFO|trainer.py:3503] 2024-08-16 14:50:53,100 >> Saving model checkpoint to saves/Qwen2-7B-Chat/lora/train_08-16-2
702
+
703
+ [INFO|configuration_utils.py:733] 2024-08-16 14:50:53,350 >> loading configuration file config.json from cache at /home/u16abc30f4f31eb21df44af89e63a742/.cache/huggingface/hub/models--Qwen--Qwen2-7B-Instruct/snapshots/41c66b0be1c3081f13defc6bdf946c2ef240d6a6/config.json
704
+
705
+ [INFO|configuration_utils.py:800] 2024-08-16 14:50:53,352 >> Model config Qwen2Config {
706
+ "architectures": [
707
+ "Qwen2ForCausalLM"
708
+ ],
709
+ "attention_dropout": 0.0,
710
+ "bos_token_id": 151643,
711
+ "eos_token_id": 151645,
712
+ "hidden_act": "silu",
713
+ "hidden_size": 3584,
714
+ "initializer_range": 0.02,
715
+ "intermediate_size": 18944,
716
+ "max_position_embeddings": 32768,
717
+ "max_window_layers": 28,
718
+ "model_type": "qwen2",
719
+ "num_attention_heads": 28,
720
+ "num_hidden_layers": 28,
721
+ "num_key_value_heads": 4,
722
+ "rms_norm_eps": 1e-06,
723
+ "rope_theta": 1000000.0,
724
+ "sliding_window": null,
725
+ "tie_word_embeddings": false,
726
+ "torch_dtype": "bfloat16",
727
+ "transformers_version": "4.43.4",
728
+ "use_cache": true,
729
+ "use_sliding_window": false,
730
+ "vocab_size": 152064
731
+ }
732
+
733
+
734
+ [INFO|tokenization_utils_base.py:2702] 2024-08-16 14:50:53,458 >> tokenizer config file saved in saves/Qwen2-7B-Chat/lora/train_08-16-2/tokenizer_config.json
735
+
736
+ [INFO|tokenization_utils_base.py:2711] 2024-08-16 14:50:53,460 >> Special tokens file saved in saves/Qwen2-7B-Chat/lora/train_08-16-2/special_tokens_map.json
737
+
738
+ [WARNING|ploting.py:89] 2024-08-16 14:50:53,677 >> No metric eval_loss to plot.
739
+
740
+ [INFO|trainer.py:3819] 2024-08-16 14:50:53,683 >>
741
+ ***** Running Evaluation *****
742
+
743
+ [INFO|trainer.py:3821] 2024-08-16 14:50:53,683 >> Num examples = 1735
744
+
745
+ [INFO|trainer.py:3824] 2024-08-16 14:50:53,683 >> Batch size = 4
746
+
747
+ [INFO|modelcard.py:449] 2024-08-16 14:51:38,535 >> Dropping the following result as it does not have all the necessary fields:
748
+ {'task': {'name': 'Causal Language Modeling', 'type': 'text-generation'}}
749
+
special_tokens_map.json ADDED
@@ -0,0 +1,20 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "additional_special_tokens": [
3
+ "<|im_start|>",
4
+ "<|im_end|>"
5
+ ],
6
+ "eos_token": {
7
+ "content": "<|im_end|>",
8
+ "lstrip": false,
9
+ "normalized": false,
10
+ "rstrip": false,
11
+ "single_word": false
12
+ },
13
+ "pad_token": {
14
+ "content": "<|endoftext|>",
15
+ "lstrip": false,
16
+ "normalized": false,
17
+ "rstrip": false,
18
+ "single_word": false
19
+ }
20
+ }
tokenizer.json ADDED
The diff for this file is too large to render. See raw diff
 
tokenizer_config.json ADDED
@@ -0,0 +1,44 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "add_prefix_space": false,
3
+ "added_tokens_decoder": {
4
+ "151643": {
5
+ "content": "<|endoftext|>",
6
+ "lstrip": false,
7
+ "normalized": false,
8
+ "rstrip": false,
9
+ "single_word": false,
10
+ "special": true
11
+ },
12
+ "151644": {
13
+ "content": "<|im_start|>",
14
+ "lstrip": false,
15
+ "normalized": false,
16
+ "rstrip": false,
17
+ "single_word": false,
18
+ "special": true
19
+ },
20
+ "151645": {
21
+ "content": "<|im_end|>",
22
+ "lstrip": false,
23
+ "normalized": false,
24
+ "rstrip": false,
25
+ "single_word": false,
26
+ "special": true
27
+ }
28
+ },
29
+ "additional_special_tokens": [
30
+ "<|im_start|>",
31
+ "<|im_end|>"
32
+ ],
33
+ "bos_token": null,
34
+ "chat_template": "{% set system_message = 'You are a helpful assistant.' %}{% if messages[0]['role'] == 'system' %}{% set system_message = messages[0]['content'] %}{% endif %}{% if system_message is defined %}{{ '<|im_start|>system\n' + system_message + '<|im_end|>\n' }}{% endif %}{% for message in messages %}{% set content = message['content'] %}{% if message['role'] == 'user' %}{{ '<|im_start|>user\n' + content + '<|im_end|>\n<|im_start|>assistant\n' }}{% elif message['role'] == 'assistant' %}{{ content + '<|im_end|>' + '\n' }}{% endif %}{% endfor %}",
35
+ "clean_up_tokenization_spaces": false,
36
+ "eos_token": "<|im_end|>",
37
+ "errors": "replace",
38
+ "model_max_length": 131072,
39
+ "pad_token": "<|endoftext|>",
40
+ "padding_side": "right",
41
+ "split_special_tokens": false,
42
+ "tokenizer_class": "Qwen2Tokenizer",
43
+ "unk_token": null
44
+ }
train_results.json ADDED
@@ -0,0 +1,9 @@
 
 
 
 
 
 
 
 
 
 
1
+ {
2
+ "epoch": 2.979631425800194,
3
+ "num_input_tokens_seen": 100663296,
4
+ "total_flos": 4.2827022437921587e+18,
5
+ "train_loss": 0.3106601850595325,
6
+ "train_runtime": 8133.8849,
7
+ "train_samples_per_second": 12.157,
8
+ "train_steps_per_second": 0.047
9
+ }
trainer_log.jsonl ADDED
@@ -0,0 +1,193 @@
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
 
1
+ {"current_steps": 2, "total_steps": 384, "loss": 0.831, "learning_rate": 0.0001, "epoch": 0.015518913676042677, "percentage": 0.52, "elapsed_time": "0:00:43", "remaining_time": "2:18:17", "throughput": "12068.40", "total_tokens": 524288}
2
+ {"current_steps": 4, "total_steps": 384, "loss": 0.7398, "learning_rate": 9.999323662872997e-05, "epoch": 0.031037827352085354, "percentage": 1.04, "elapsed_time": "0:01:25", "remaining_time": "2:15:43", "throughput": "12232.95", "total_tokens": 1048576}
3
+ {"current_steps": 6, "total_steps": 384, "loss": 0.6438, "learning_rate": 9.99729483446475e-05, "epoch": 0.04655674102812803, "percentage": 1.56, "elapsed_time": "0:02:08", "remaining_time": "2:14:25", "throughput": "12285.60", "total_tokens": 1572864}
4
+ {"current_steps": 8, "total_steps": 384, "loss": 0.6032, "learning_rate": 9.993914063644052e-05, "epoch": 0.06207565470417071, "percentage": 2.08, "elapsed_time": "0:02:50", "remaining_time": "2:13:28", "throughput": "12307.51", "total_tokens": 2097152}
5
+ {"current_steps": 10, "total_steps": 384, "loss": 0.5433, "learning_rate": 9.989182265027232e-05, "epoch": 0.07759456838021339, "percentage": 2.6, "elapsed_time": "0:03:32", "remaining_time": "2:12:35", "throughput": "12323.95", "total_tokens": 2621440}
6
+ {"current_steps": 12, "total_steps": 384, "loss": 0.5228, "learning_rate": 9.98310071873072e-05, "epoch": 0.09311348205625607, "percentage": 3.12, "elapsed_time": "0:04:15", "remaining_time": "2:11:47", "throughput": "12332.99", "total_tokens": 3145728}
7
+ {"current_steps": 14, "total_steps": 384, "loss": 0.4702, "learning_rate": 9.97567107002474e-05, "epoch": 0.10863239573229874, "percentage": 3.65, "elapsed_time": "0:04:57", "remaining_time": "2:10:58", "throughput": "12341.83", "total_tokens": 3670016}
8
+ {"current_steps": 16, "total_steps": 384, "loss": 0.4574, "learning_rate": 9.966895328888194e-05, "epoch": 0.12415130940834142, "percentage": 4.17, "elapsed_time": "0:05:39", "remaining_time": "2:10:13", "throughput": "12347.21", "total_tokens": 4194304}
9
+ {"current_steps": 18, "total_steps": 384, "loss": 0.5093, "learning_rate": 9.956775869464901e-05, "epoch": 0.1396702230843841, "percentage": 4.69, "elapsed_time": "0:06:22", "remaining_time": "2:09:28", "throughput": "12350.26", "total_tokens": 4718592}
10
+ {"current_steps": 20, "total_steps": 384, "loss": 0.4771, "learning_rate": 9.945315429421306e-05, "epoch": 0.15518913676042678, "percentage": 5.21, "elapsed_time": "0:07:04", "remaining_time": "2:08:44", "throughput": "12352.92", "total_tokens": 5242880}
11
+ {"current_steps": 22, "total_steps": 384, "loss": 0.4343, "learning_rate": 9.932517109205849e-05, "epoch": 0.17070805043646944, "percentage": 5.73, "elapsed_time": "0:07:46", "remaining_time": "2:08:00", "throughput": "12355.21", "total_tokens": 5767168}
12
+ {"current_steps": 24, "total_steps": 384, "loss": 0.4455, "learning_rate": 9.918384371210176e-05, "epoch": 0.18622696411251213, "percentage": 6.25, "elapsed_time": "0:08:29", "remaining_time": "2:07:17", "throughput": "12356.26", "total_tokens": 6291456}
13
+ {"current_steps": 26, "total_steps": 384, "loss": 0.4669, "learning_rate": 9.902921038832455e-05, "epoch": 0.2017458777885548, "percentage": 6.77, "elapsed_time": "0:09:11", "remaining_time": "2:06:35", "throughput": "12356.01", "total_tokens": 6815744}
14
+ {"current_steps": 28, "total_steps": 384, "loss": 0.4723, "learning_rate": 9.886131295443003e-05, "epoch": 0.21726479146459748, "percentage": 7.29, "elapsed_time": "0:09:53", "remaining_time": "2:05:51", "throughput": "12357.59", "total_tokens": 7340032}
15
+ {"current_steps": 30, "total_steps": 384, "loss": 0.4364, "learning_rate": 9.868019683252543e-05, "epoch": 0.23278370514064015, "percentage": 7.81, "elapsed_time": "0:10:36", "remaining_time": "2:05:09", "throughput": "12358.33", "total_tokens": 7864320}
16
+ {"current_steps": 32, "total_steps": 384, "loss": 0.4013, "learning_rate": 9.848591102083375e-05, "epoch": 0.24830261881668284, "percentage": 8.33, "elapsed_time": "0:11:18", "remaining_time": "2:04:25", "throughput": "12360.25", "total_tokens": 8388608}
17
+ {"current_steps": 34, "total_steps": 384, "loss": 0.3875, "learning_rate": 9.82785080804381e-05, "epoch": 0.2638215324927255, "percentage": 8.85, "elapsed_time": "0:12:01", "remaining_time": "2:03:42", "throughput": "12360.97", "total_tokens": 8912896}
18
+ {"current_steps": 36, "total_steps": 384, "loss": 0.4187, "learning_rate": 9.805804412106198e-05, "epoch": 0.2793404461687682, "percentage": 9.38, "elapsed_time": "0:12:43", "remaining_time": "2:02:59", "throughput": "12361.99", "total_tokens": 9437184}
19
+ {"current_steps": 38, "total_steps": 384, "loss": 0.3981, "learning_rate": 9.782457878588977e-05, "epoch": 0.2948593598448109, "percentage": 9.9, "elapsed_time": "0:13:25", "remaining_time": "2:02:16", "throughput": "12363.00", "total_tokens": 9961472}
20
+ {"current_steps": 40, "total_steps": 384, "loss": 0.4121, "learning_rate": 9.757817523543109e-05, "epoch": 0.31037827352085356, "percentage": 10.42, "elapsed_time": "0:14:08", "remaining_time": "2:01:34", "throughput": "12363.06", "total_tokens": 10485760}
21
+ {"current_steps": 42, "total_steps": 384, "loss": 0.392, "learning_rate": 9.731890013043368e-05, "epoch": 0.3258971871968962, "percentage": 10.94, "elapsed_time": "0:14:50", "remaining_time": "2:00:51", "throughput": "12363.66", "total_tokens": 11010048}
22
+ {"current_steps": 44, "total_steps": 384, "loss": 0.3845, "learning_rate": 9.704682361384941e-05, "epoch": 0.3414161008729389, "percentage": 11.46, "elapsed_time": "0:15:32", "remaining_time": "2:00:08", "throughput": "12365.26", "total_tokens": 11534336}
23
+ {"current_steps": 46, "total_steps": 384, "loss": 0.397, "learning_rate": 9.676201929185809e-05, "epoch": 0.3569350145489816, "percentage": 11.98, "elapsed_time": "0:16:15", "remaining_time": "1:59:25", "throughput": "12365.45", "total_tokens": 12058624}
24
+ {"current_steps": 48, "total_steps": 384, "loss": 0.3753, "learning_rate": 9.646456421395446e-05, "epoch": 0.37245392822502427, "percentage": 12.5, "elapsed_time": "0:16:57", "remaining_time": "1:58:42", "throughput": "12365.80", "total_tokens": 12582912}
25
+ {"current_steps": 50, "total_steps": 384, "loss": 0.387, "learning_rate": 9.615453885210369e-05, "epoch": 0.3879728419010669, "percentage": 13.02, "elapsed_time": "0:17:39", "remaining_time": "1:58:00", "throughput": "12366.58", "total_tokens": 13107200}
26
+ {"current_steps": 52, "total_steps": 384, "loss": 0.3724, "learning_rate": 9.583202707897074e-05, "epoch": 0.4034917555771096, "percentage": 13.54, "elapsed_time": "0:18:22", "remaining_time": "1:57:17", "throughput": "12367.11", "total_tokens": 13631488}
27
+ {"current_steps": 54, "total_steps": 384, "loss": 0.4394, "learning_rate": 9.549711614523007e-05, "epoch": 0.4190106692531523, "percentage": 14.06, "elapsed_time": "0:19:04", "remaining_time": "1:56:34", "throughput": "12367.54", "total_tokens": 14155776}
28
+ {"current_steps": 56, "total_steps": 384, "loss": 0.4177, "learning_rate": 9.514989665596114e-05, "epoch": 0.43452958292919497, "percentage": 14.58, "elapsed_time": "0:19:46", "remaining_time": "1:55:52", "throughput": "12368.03", "total_tokens": 14680064}
29
+ {"current_steps": 58, "total_steps": 384, "loss": 0.3939, "learning_rate": 9.479046254613673e-05, "epoch": 0.45004849660523766, "percentage": 15.1, "elapsed_time": "0:20:29", "remaining_time": "1:55:09", "throughput": "12368.21", "total_tokens": 15204352}
30
+ {"current_steps": 60, "total_steps": 384, "loss": 0.4207, "learning_rate": 9.441891105521006e-05, "epoch": 0.4655674102812803, "percentage": 15.62, "elapsed_time": "0:21:11", "remaining_time": "1:54:26", "throughput": "12368.89", "total_tokens": 15728640}
31
+ {"current_steps": 62, "total_steps": 384, "loss": 0.3653, "learning_rate": 9.403534270080829e-05, "epoch": 0.481086323957323, "percentage": 16.15, "elapsed_time": "0:21:53", "remaining_time": "1:53:44", "throughput": "12369.17", "total_tokens": 16252928}
32
+ {"current_steps": 64, "total_steps": 384, "loss": 0.3925, "learning_rate": 9.3639861251539e-05, "epoch": 0.49660523763336567, "percentage": 16.67, "elapsed_time": "0:22:36", "remaining_time": "1:53:01", "throughput": "12369.62", "total_tokens": 16777216}
33
+ {"current_steps": 66, "total_steps": 384, "loss": 0.3982, "learning_rate": 9.323257369891703e-05, "epoch": 0.5121241513094084, "percentage": 17.19, "elapsed_time": "0:23:18", "remaining_time": "1:52:19", "throughput": "12369.99", "total_tokens": 17301504}
34
+ {"current_steps": 68, "total_steps": 384, "loss": 0.3709, "learning_rate": 9.281359022841965e-05, "epoch": 0.527643064985451, "percentage": 17.71, "elapsed_time": "0:24:01", "remaining_time": "1:51:36", "throughput": "12370.31", "total_tokens": 17825792}
35
+ {"current_steps": 70, "total_steps": 384, "loss": 0.3744, "learning_rate": 9.238302418967756e-05, "epoch": 0.5431619786614937, "percentage": 18.23, "elapsed_time": "0:24:43", "remaining_time": "1:50:54", "throughput": "12370.44", "total_tokens": 18350080}
36
+ {"current_steps": 72, "total_steps": 384, "loss": 0.3929, "learning_rate": 9.194099206580982e-05, "epoch": 0.5586808923375364, "percentage": 18.75, "elapsed_time": "0:25:25", "remaining_time": "1:50:11", "throughput": "12370.64", "total_tokens": 18874368}
37
+ {"current_steps": 74, "total_steps": 384, "loss": 0.3716, "learning_rate": 9.148761344191109e-05, "epoch": 0.574199806013579, "percentage": 19.27, "elapsed_time": "0:26:08", "remaining_time": "1:49:29", "throughput": "12370.73", "total_tokens": 19398656}
38
+ {"current_steps": 76, "total_steps": 384, "loss": 0.3959, "learning_rate": 9.102301097269974e-05, "epoch": 0.5897187196896218, "percentage": 19.79, "elapsed_time": "0:26:50", "remaining_time": "1:48:46", "throughput": "12371.11", "total_tokens": 19922944}
39
+ {"current_steps": 78, "total_steps": 384, "loss": 0.3514, "learning_rate": 9.054731034933549e-05, "epoch": 0.6052376333656644, "percentage": 20.31, "elapsed_time": "0:27:32", "remaining_time": "1:48:04", "throughput": "12371.15", "total_tokens": 20447232}
40
+ {"current_steps": 80, "total_steps": 384, "loss": 0.3767, "learning_rate": 9.006064026541548e-05, "epoch": 0.6207565470417071, "percentage": 20.83, "elapsed_time": "0:28:15", "remaining_time": "1:47:21", "throughput": "12371.38", "total_tokens": 20971520}
41
+ {"current_steps": 82, "total_steps": 384, "loss": 0.371, "learning_rate": 8.956313238215824e-05, "epoch": 0.6362754607177498, "percentage": 21.35, "elapsed_time": "0:28:57", "remaining_time": "1:46:39", "throughput": "12371.34", "total_tokens": 21495808}
42
+ {"current_steps": 84, "total_steps": 384, "loss": 0.3529, "learning_rate": 8.905492129278478e-05, "epoch": 0.6517943743937924, "percentage": 21.88, "elapsed_time": "0:29:39", "remaining_time": "1:45:56", "throughput": "12371.72", "total_tokens": 22020096}
43
+ {"current_steps": 86, "total_steps": 384, "loss": 0.3044, "learning_rate": 8.853614448610631e-05, "epoch": 0.6673132880698351, "percentage": 22.4, "elapsed_time": "0:30:22", "remaining_time": "1:45:14", "throughput": "12371.87", "total_tokens": 22544384}
44
+ {"current_steps": 88, "total_steps": 384, "loss": 0.3532, "learning_rate": 8.800694230932884e-05, "epoch": 0.6828322017458778, "percentage": 22.92, "elapsed_time": "0:31:04", "remaining_time": "1:44:31", "throughput": "12372.26", "total_tokens": 23068672}
45
+ {"current_steps": 90, "total_steps": 384, "loss": 0.3461, "learning_rate": 8.74674579300843e-05, "epoch": 0.6983511154219205, "percentage": 23.44, "elapsed_time": "0:31:46", "remaining_time": "1:43:49", "throughput": "12371.97", "total_tokens": 23592960}
46
+ {"current_steps": 92, "total_steps": 384, "loss": 0.3513, "learning_rate": 8.691783729769874e-05, "epoch": 0.7138700290979632, "percentage": 23.96, "elapsed_time": "0:32:29", "remaining_time": "1:43:07", "throughput": "12371.69", "total_tokens": 24117248}
47
+ {"current_steps": 94, "total_steps": 384, "loss": 0.3842, "learning_rate": 8.635822910370792e-05, "epoch": 0.7293889427740058, "percentage": 24.48, "elapsed_time": "0:33:11", "remaining_time": "1:42:24", "throughput": "12371.92", "total_tokens": 24641536}
48
+ {"current_steps": 96, "total_steps": 384, "loss": 0.363, "learning_rate": 8.578878474163115e-05, "epoch": 0.7449078564500485, "percentage": 25.0, "elapsed_time": "0:33:54", "remaining_time": "1:41:42", "throughput": "12372.14", "total_tokens": 25165824}
49
+ {"current_steps": 98, "total_steps": 384, "loss": 0.3079, "learning_rate": 8.520965826601394e-05, "epoch": 0.7604267701260912, "percentage": 25.52, "elapsed_time": "0:34:36", "remaining_time": "1:40:59", "throughput": "12372.67", "total_tokens": 25690112}
50
+ {"current_steps": 100, "total_steps": 384, "loss": 0.3769, "learning_rate": 8.462100635075097e-05, "epoch": 0.7759456838021338, "percentage": 26.04, "elapsed_time": "0:35:18", "remaining_time": "1:40:17", "throughput": "12372.59", "total_tokens": 26214400}
51
+ {"current_steps": 102, "total_steps": 384, "loss": 0.3907, "learning_rate": 8.40229882467003e-05, "epoch": 0.7914645974781765, "percentage": 26.56, "elapsed_time": "0:36:01", "remaining_time": "1:39:34", "throughput": "12372.64", "total_tokens": 26738688}
52
+ {"current_steps": 104, "total_steps": 384, "loss": 0.3457, "learning_rate": 8.341576573860048e-05, "epoch": 0.8069835111542192, "percentage": 27.08, "elapsed_time": "0:36:43", "remaining_time": "1:38:52", "throughput": "12372.69", "total_tokens": 27262976}
53
+ {"current_steps": 106, "total_steps": 384, "loss": 0.3889, "learning_rate": 8.279950310130217e-05, "epoch": 0.8225024248302619, "percentage": 27.6, "elapsed_time": "0:37:25", "remaining_time": "1:38:09", "throughput": "12373.02", "total_tokens": 27787264}
54
+ {"current_steps": 108, "total_steps": 384, "loss": 0.3142, "learning_rate": 8.2174367055326e-05, "epoch": 0.8380213385063046, "percentage": 28.12, "elapsed_time": "0:38:08", "remaining_time": "1:37:27", "throughput": "12373.10", "total_tokens": 28311552}
55
+ {"current_steps": 110, "total_steps": 384, "loss": 0.3299, "learning_rate": 8.154052672175887e-05, "epoch": 0.8535402521823472, "percentage": 28.65, "elapsed_time": "0:38:50", "remaining_time": "1:36:45", "throughput": "12373.25", "total_tokens": 28835840}
56
+ {"current_steps": 112, "total_steps": 384, "loss": 0.3425, "learning_rate": 8.089815357650089e-05, "epoch": 0.8690591658583899, "percentage": 29.17, "elapsed_time": "0:39:32", "remaining_time": "1:36:02", "throughput": "12373.26", "total_tokens": 29360128}
57
+ {"current_steps": 114, "total_steps": 384, "loss": 0.3363, "learning_rate": 8.024742140387506e-05, "epoch": 0.8845780795344326, "percentage": 29.69, "elapsed_time": "0:40:15", "remaining_time": "1:35:20", "throughput": "12373.27", "total_tokens": 29884416}
58
+ {"current_steps": 116, "total_steps": 384, "loss": 0.3725, "learning_rate": 7.95885062496126e-05, "epoch": 0.9000969932104753, "percentage": 30.21, "elapsed_time": "0:40:57", "remaining_time": "1:34:37", "throughput": "12373.41", "total_tokens": 30408704}
59
+ {"current_steps": 118, "total_steps": 384, "loss": 0.3397, "learning_rate": 7.892158637322646e-05, "epoch": 0.915615906886518, "percentage": 30.73, "elapsed_time": "0:41:39", "remaining_time": "1:33:55", "throughput": "12373.69", "total_tokens": 30932992}
60
+ {"current_steps": 120, "total_steps": 384, "loss": 0.2812, "learning_rate": 7.824684219978591e-05, "epoch": 0.9311348205625606, "percentage": 31.25, "elapsed_time": "0:42:22", "remaining_time": "1:33:12", "throughput": "12373.85", "total_tokens": 31457280}
61
+ {"current_steps": 122, "total_steps": 384, "loss": 0.3555, "learning_rate": 7.756445627110523e-05, "epoch": 0.9466537342386033, "percentage": 31.77, "elapsed_time": "0:43:04", "remaining_time": "1:32:30", "throughput": "12373.80", "total_tokens": 31981568}
62
+ {"current_steps": 124, "total_steps": 384, "loss": 0.3362, "learning_rate": 7.687461319635981e-05, "epoch": 0.962172647914646, "percentage": 32.29, "elapsed_time": "0:43:46", "remaining_time": "1:31:48", "throughput": "12373.83", "total_tokens": 32505856}
63
+ {"current_steps": 126, "total_steps": 384, "loss": 0.3133, "learning_rate": 7.6177499602143e-05, "epoch": 0.9776915615906887, "percentage": 32.81, "elapsed_time": "0:44:29", "remaining_time": "1:31:05", "throughput": "12374.00", "total_tokens": 33030144}
64
+ {"current_steps": 128, "total_steps": 384, "loss": 0.3119, "learning_rate": 7.547330408197695e-05, "epoch": 0.9932104752667313, "percentage": 33.33, "elapsed_time": "0:45:11", "remaining_time": "1:30:23", "throughput": "12374.26", "total_tokens": 33554432}
65
+ {"current_steps": 130, "total_steps": 384, "loss": 0.3117, "learning_rate": 7.476221714529167e-05, "epoch": 1.008729388942774, "percentage": 33.85, "elapsed_time": "0:45:54", "remaining_time": "1:29:40", "throughput": "12374.25", "total_tokens": 34078720}
66
+ {"current_steps": 132, "total_steps": 384, "loss": 0.329, "learning_rate": 7.404443116588548e-05, "epoch": 1.0242483026188167, "percentage": 34.38, "elapsed_time": "0:46:36", "remaining_time": "1:28:58", "throughput": "12374.33", "total_tokens": 34603008}
67
+ {"current_steps": 134, "total_steps": 384, "loss": 0.279, "learning_rate": 7.332014032988123e-05, "epoch": 1.0397672162948595, "percentage": 34.9, "elapsed_time": "0:47:18", "remaining_time": "1:28:16", "throughput": "12374.33", "total_tokens": 35127296}
68
+ {"current_steps": 136, "total_steps": 384, "loss": 0.2682, "learning_rate": 7.258954058319216e-05, "epoch": 1.055286129970902, "percentage": 35.42, "elapsed_time": "0:48:01", "remaining_time": "1:27:33", "throughput": "12374.30", "total_tokens": 35651584}
69
+ {"current_steps": 138, "total_steps": 384, "loss": 0.293, "learning_rate": 7.185282957851175e-05, "epoch": 1.0708050436469447, "percentage": 35.94, "elapsed_time": "0:48:43", "remaining_time": "1:26:51", "throughput": "12374.23", "total_tokens": 36175872}
70
+ {"current_steps": 140, "total_steps": 384, "loss": 0.315, "learning_rate": 7.111020662184174e-05, "epoch": 1.0863239573229875, "percentage": 36.46, "elapsed_time": "0:49:25", "remaining_time": "1:26:08", "throughput": "12374.40", "total_tokens": 36700160}
71
+ {"current_steps": 142, "total_steps": 384, "loss": 0.289, "learning_rate": 7.036187261857289e-05, "epoch": 1.10184287099903, "percentage": 36.98, "elapsed_time": "0:50:08", "remaining_time": "1:25:26", "throughput": "12374.16", "total_tokens": 37224448}
72
+ {"current_steps": 144, "total_steps": 384, "loss": 0.2808, "learning_rate": 6.960803001913314e-05, "epoch": 1.1173617846750727, "percentage": 37.5, "elapsed_time": "0:50:50", "remaining_time": "1:24:44", "throughput": "12374.30", "total_tokens": 37748736}
73
+ {"current_steps": 146, "total_steps": 384, "loss": 0.318, "learning_rate": 6.884888276421766e-05, "epoch": 1.1328806983511155, "percentage": 38.02, "elapsed_time": "0:51:32", "remaining_time": "1:24:01", "throughput": "12374.33", "total_tokens": 38273024}
74
+ {"current_steps": 148, "total_steps": 384, "loss": 0.2685, "learning_rate": 6.808463622961578e-05, "epoch": 1.148399612027158, "percentage": 38.54, "elapsed_time": "0:52:15", "remaining_time": "1:23:19", "throughput": "12374.43", "total_tokens": 38797312}
75
+ {"current_steps": 150, "total_steps": 384, "loss": 0.3121, "learning_rate": 6.731549717064974e-05, "epoch": 1.1639185257032008, "percentage": 39.06, "elapsed_time": "0:52:57", "remaining_time": "1:22:37", "throughput": "12374.58", "total_tokens": 39321600}
76
+ {"current_steps": 152, "total_steps": 384, "loss": 0.2835, "learning_rate": 6.654167366624009e-05, "epoch": 1.1794374393792435, "percentage": 39.58, "elapsed_time": "0:53:39", "remaining_time": "1:21:54", "throughput": "12374.63", "total_tokens": 39845888}
77
+ {"current_steps": 154, "total_steps": 384, "loss": 0.2905, "learning_rate": 6.576337506261314e-05, "epoch": 1.1949563530552862, "percentage": 40.1, "elapsed_time": "0:54:22", "remaining_time": "1:21:12", "throughput": "12375.02", "total_tokens": 40370176}
78
+ {"current_steps": 156, "total_steps": 384, "loss": 0.3277, "learning_rate": 6.498081191666548e-05, "epoch": 1.2104752667313288, "percentage": 40.62, "elapsed_time": "0:55:04", "remaining_time": "1:20:29", "throughput": "12375.10", "total_tokens": 40894464}
79
+ {"current_steps": 158, "total_steps": 384, "loss": 0.2788, "learning_rate": 6.419419593900108e-05, "epoch": 1.2259941804073715, "percentage": 41.15, "elapsed_time": "0:55:46", "remaining_time": "1:19:47", "throughput": "12375.10", "total_tokens": 41418752}
80
+ {"current_steps": 160, "total_steps": 384, "loss": 0.2971, "learning_rate": 6.340373993665607e-05, "epoch": 1.2415130940834143, "percentage": 41.67, "elapsed_time": "0:56:29", "remaining_time": "1:19:05", "throughput": "12375.12", "total_tokens": 41943040}
81
+ {"current_steps": 162, "total_steps": 384, "loss": 0.287, "learning_rate": 6.260965775552712e-05, "epoch": 1.2570320077594568, "percentage": 42.19, "elapsed_time": "0:57:11", "remaining_time": "1:18:22", "throughput": "12374.98", "total_tokens": 42467328}
82
+ {"current_steps": 164, "total_steps": 384, "loss": 0.3196, "learning_rate": 6.181216422251862e-05, "epoch": 1.2725509214354995, "percentage": 42.71, "elapsed_time": "0:57:54", "remaining_time": "1:17:40", "throughput": "12375.00", "total_tokens": 42991616}
83
+ {"current_steps": 166, "total_steps": 384, "loss": 0.3021, "learning_rate": 6.101147508742455e-05, "epoch": 1.2880698351115423, "percentage": 43.23, "elapsed_time": "0:58:36", "remaining_time": "1:16:57", "throughput": "12375.01", "total_tokens": 43515904}
84
+ {"current_steps": 168, "total_steps": 384, "loss": 0.2329, "learning_rate": 6.0207806964560584e-05, "epoch": 1.3035887487875848, "percentage": 43.75, "elapsed_time": "0:59:18", "remaining_time": "1:16:15", "throughput": "12375.04", "total_tokens": 44040192}
85
+ {"current_steps": 170, "total_steps": 384, "loss": 0.2803, "learning_rate": 5.940137727416246e-05, "epoch": 1.3191076624636275, "percentage": 44.27, "elapsed_time": "1:00:01", "remaining_time": "1:15:33", "throughput": "12375.12", "total_tokens": 44564480}
86
+ {"current_steps": 172, "total_steps": 384, "loss": 0.2744, "learning_rate": 5.8592404183566144e-05, "epoch": 1.3346265761396703, "percentage": 44.79, "elapsed_time": "1:00:43", "remaining_time": "1:14:50", "throughput": "12375.21", "total_tokens": 45088768}
87
+ {"current_steps": 174, "total_steps": 384, "loss": 0.3332, "learning_rate": 5.778110654818601e-05, "epoch": 1.3501454898157128, "percentage": 45.31, "elapsed_time": "1:01:25", "remaining_time": "1:14:08", "throughput": "12375.49", "total_tokens": 45613056}
88
+ {"current_steps": 176, "total_steps": 384, "loss": 0.3223, "learning_rate": 5.6967703852306786e-05, "epoch": 1.3656644034917556, "percentage": 45.83, "elapsed_time": "1:02:08", "remaining_time": "1:13:25", "throughput": "12375.42", "total_tokens": 46137344}
89
+ {"current_steps": 178, "total_steps": 384, "loss": 0.3127, "learning_rate": 5.6152416149705455e-05, "epoch": 1.3811833171677983, "percentage": 46.35, "elapsed_time": "1:02:50", "remaining_time": "1:12:43", "throughput": "12375.48", "total_tokens": 46661632}
90
+ {"current_steps": 180, "total_steps": 384, "loss": 0.2908, "learning_rate": 5.5335464004118986e-05, "epoch": 1.3967022308438408, "percentage": 46.88, "elapsed_time": "1:03:32", "remaining_time": "1:12:01", "throughput": "12375.67", "total_tokens": 47185920}
91
+ {"current_steps": 182, "total_steps": 384, "loss": 0.2918, "learning_rate": 5.4517068429574215e-05, "epoch": 1.4122211445198836, "percentage": 47.4, "elapsed_time": "1:04:15", "remaining_time": "1:11:18", "throughput": "12375.66", "total_tokens": 47710208}
92
+ {"current_steps": 184, "total_steps": 384, "loss": 0.268, "learning_rate": 5.3697450830595774e-05, "epoch": 1.4277400581959263, "percentage": 47.92, "elapsed_time": "1:04:57", "remaining_time": "1:10:36", "throughput": "12375.75", "total_tokens": 48234496}
93
+ {"current_steps": 186, "total_steps": 384, "loss": 0.2862, "learning_rate": 5.287683294230855e-05, "epoch": 1.4432589718719688, "percentage": 48.44, "elapsed_time": "1:05:39", "remaining_time": "1:09:54", "throughput": "12375.71", "total_tokens": 48758784}
94
+ {"current_steps": 188, "total_steps": 384, "loss": 0.3054, "learning_rate": 5.205543677045049e-05, "epoch": 1.4587778855480116, "percentage": 48.96, "elapsed_time": "1:06:22", "remaining_time": "1:09:11", "throughput": "12375.67", "total_tokens": 49283072}
95
+ {"current_steps": 190, "total_steps": 384, "loss": 0.2814, "learning_rate": 5.1233484531312414e-05, "epoch": 1.4742967992240543, "percentage": 49.48, "elapsed_time": "1:07:04", "remaining_time": "1:08:29", "throughput": "12375.72", "total_tokens": 49807360}
96
+ {"current_steps": 192, "total_steps": 384, "loss": 0.2703, "learning_rate": 5.0411198591620676e-05, "epoch": 1.489815712900097, "percentage": 50.0, "elapsed_time": "1:07:46", "remaining_time": "1:07:46", "throughput": "12375.63", "total_tokens": 50331648}
97
+ {"current_steps": 194, "total_steps": 384, "loss": 0.2689, "learning_rate": 4.958880140837933e-05, "epoch": 1.5053346265761398, "percentage": 50.52, "elapsed_time": "1:08:29", "remaining_time": "1:07:04", "throughput": "12375.75", "total_tokens": 50855936}
98
+ {"current_steps": 196, "total_steps": 384, "loss": 0.3013, "learning_rate": 4.876651546868759e-05, "epoch": 1.5208535402521823, "percentage": 51.04, "elapsed_time": "1:09:11", "remaining_time": "1:06:22", "throughput": "12375.76", "total_tokens": 51380224}
99
+ {"current_steps": 198, "total_steps": 384, "loss": 0.2751, "learning_rate": 4.794456322954952e-05, "epoch": 1.536372453928225, "percentage": 51.56, "elapsed_time": "1:09:54", "remaining_time": "1:05:39", "throughput": "12375.72", "total_tokens": 51904512}
100
+ {"current_steps": 200, "total_steps": 384, "loss": 0.3178, "learning_rate": 4.712316705769145e-05, "epoch": 1.5518913676042678, "percentage": 52.08, "elapsed_time": "1:10:36", "remaining_time": "1:04:57", "throughput": "12375.77", "total_tokens": 52428800}
101
+ {"current_steps": 202, "total_steps": 384, "loss": 0.2742, "learning_rate": 4.630254916940424e-05, "epoch": 1.5674102812803103, "percentage": 52.6, "elapsed_time": "1:11:18", "remaining_time": "1:04:15", "throughput": "12375.80", "total_tokens": 52953088}
102
+ {"current_steps": 204, "total_steps": 384, "loss": 0.2751, "learning_rate": 4.548293157042581e-05, "epoch": 1.582929194956353, "percentage": 53.12, "elapsed_time": "1:12:01", "remaining_time": "1:03:32", "throughput": "12375.84", "total_tokens": 53477376}
103
+ {"current_steps": 206, "total_steps": 384, "loss": 0.3256, "learning_rate": 4.466453599588103e-05, "epoch": 1.5984481086323958, "percentage": 53.65, "elapsed_time": "1:12:43", "remaining_time": "1:02:50", "throughput": "12375.76", "total_tokens": 54001664}
104
+ {"current_steps": 208, "total_steps": 384, "loss": 0.2603, "learning_rate": 4.384758385029457e-05, "epoch": 1.6139670223084384, "percentage": 54.17, "elapsed_time": "1:13:25", "remaining_time": "1:02:08", "throughput": "12375.86", "total_tokens": 54525952}
105
+ {"current_steps": 210, "total_steps": 384, "loss": 0.2598, "learning_rate": 4.3032296147693225e-05, "epoch": 1.629485935984481, "percentage": 54.69, "elapsed_time": "1:14:08", "remaining_time": "1:01:25", "throughput": "12375.97", "total_tokens": 55050240}
106
+ {"current_steps": 212, "total_steps": 384, "loss": 0.2811, "learning_rate": 4.2218893451814005e-05, "epoch": 1.6450048496605238, "percentage": 55.21, "elapsed_time": "1:14:50", "remaining_time": "1:00:43", "throughput": "12376.02", "total_tokens": 55574528}
107
+ {"current_steps": 214, "total_steps": 384, "loss": 0.2386, "learning_rate": 4.140759581643386e-05, "epoch": 1.6605237633365664, "percentage": 55.73, "elapsed_time": "1:15:32", "remaining_time": "1:00:00", "throughput": "12375.99", "total_tokens": 56098816}
108
+ {"current_steps": 216, "total_steps": 384, "loss": 0.2999, "learning_rate": 4.059862272583755e-05, "epoch": 1.6760426770126091, "percentage": 56.25, "elapsed_time": "1:16:15", "remaining_time": "0:59:18", "throughput": "12375.93", "total_tokens": 56623104}
109
+ {"current_steps": 218, "total_steps": 384, "loss": 0.2857, "learning_rate": 3.979219303543942e-05, "epoch": 1.6915615906886519, "percentage": 56.77, "elapsed_time": "1:16:57", "remaining_time": "0:58:36", "throughput": "12375.82", "total_tokens": 57147392}
110
+ {"current_steps": 220, "total_steps": 384, "loss": 0.2533, "learning_rate": 3.898852491257546e-05, "epoch": 1.7070805043646944, "percentage": 57.29, "elapsed_time": "1:17:40", "remaining_time": "0:57:53", "throughput": "12375.79", "total_tokens": 57671680}
111
+ {"current_steps": 222, "total_steps": 384, "loss": 0.306, "learning_rate": 3.818783577748138e-05, "epoch": 1.7225994180407371, "percentage": 57.81, "elapsed_time": "1:18:22", "remaining_time": "0:57:11", "throughput": "12375.96", "total_tokens": 58195968}
112
+ {"current_steps": 224, "total_steps": 384, "loss": 0.2594, "learning_rate": 3.739034224447289e-05, "epoch": 1.7381183317167799, "percentage": 58.33, "elapsed_time": "1:19:04", "remaining_time": "0:56:29", "throughput": "12376.04", "total_tokens": 58720256}
113
+ {"current_steps": 226, "total_steps": 384, "loss": 0.284, "learning_rate": 3.659626006334395e-05, "epoch": 1.7536372453928224, "percentage": 58.85, "elapsed_time": "1:19:47", "remaining_time": "0:55:46", "throughput": "12376.05", "total_tokens": 59244544}
114
+ {"current_steps": 228, "total_steps": 384, "loss": 0.33, "learning_rate": 3.580580406099893e-05, "epoch": 1.7691561590688651, "percentage": 59.38, "elapsed_time": "1:20:29", "remaining_time": "0:55:04", "throughput": "12376.03", "total_tokens": 59768832}
115
+ {"current_steps": 230, "total_steps": 384, "loss": 0.2968, "learning_rate": 3.501918808333453e-05, "epoch": 1.7846750727449079, "percentage": 59.9, "elapsed_time": "1:21:11", "remaining_time": "0:54:21", "throughput": "12375.98", "total_tokens": 60293120}
116
+ {"current_steps": 232, "total_steps": 384, "loss": 0.2836, "learning_rate": 3.4236624937386876e-05, "epoch": 1.8001939864209504, "percentage": 60.42, "elapsed_time": "1:21:54", "remaining_time": "0:53:39", "throughput": "12376.10", "total_tokens": 60817408}
117
+ {"current_steps": 234, "total_steps": 384, "loss": 0.2452, "learning_rate": 3.3458326333759925e-05, "epoch": 1.8157129000969934, "percentage": 60.94, "elapsed_time": "1:22:36", "remaining_time": "0:52:57", "throughput": "12376.14", "total_tokens": 61341696}
118
+ {"current_steps": 236, "total_steps": 384, "loss": 0.2526, "learning_rate": 3.268450282935026e-05, "epoch": 1.831231813773036, "percentage": 61.46, "elapsed_time": "1:23:18", "remaining_time": "0:52:14", "throughput": "12376.09", "total_tokens": 61865984}
119
+ {"current_steps": 238, "total_steps": 384, "loss": 0.2578, "learning_rate": 3.191536377038422e-05, "epoch": 1.8467507274490784, "percentage": 61.98, "elapsed_time": "1:24:01", "remaining_time": "0:51:32", "throughput": "12376.15", "total_tokens": 62390272}
120
+ {"current_steps": 240, "total_steps": 384, "loss": 0.2895, "learning_rate": 3.115111723578235e-05, "epoch": 1.8622696411251214, "percentage": 62.5, "elapsed_time": "1:24:43", "remaining_time": "0:50:50", "throughput": "12376.22", "total_tokens": 62914560}
121
+ {"current_steps": 242, "total_steps": 384, "loss": 0.3047, "learning_rate": 3.0391969980866875e-05, "epoch": 1.877788554801164, "percentage": 63.02, "elapsed_time": "1:25:25", "remaining_time": "0:50:07", "throughput": "12376.20", "total_tokens": 63438848}
122
+ {"current_steps": 244, "total_steps": 384, "loss": 0.2958, "learning_rate": 2.963812738142713e-05, "epoch": 1.8933074684772064, "percentage": 63.54, "elapsed_time": "1:26:08", "remaining_time": "0:49:25", "throughput": "12376.13", "total_tokens": 63963136}
123
+ {"current_steps": 246, "total_steps": 384, "loss": 0.2598, "learning_rate": 2.888979337815828e-05, "epoch": 1.9088263821532494, "percentage": 64.06, "elapsed_time": "1:26:50", "remaining_time": "0:48:43", "throughput": "12376.10", "total_tokens": 64487424}
124
+ {"current_steps": 248, "total_steps": 384, "loss": 0.2699, "learning_rate": 2.8147170421488272e-05, "epoch": 1.924345295829292, "percentage": 64.58, "elapsed_time": "1:27:33", "remaining_time": "0:48:00", "throughput": "12376.09", "total_tokens": 65011712}
125
+ {"current_steps": 250, "total_steps": 384, "loss": 0.2827, "learning_rate": 2.7410459416807853e-05, "epoch": 1.9398642095053347, "percentage": 65.1, "elapsed_time": "1:28:15", "remaining_time": "0:47:18", "throughput": "12376.20", "total_tokens": 65536000}
126
+ {"current_steps": 252, "total_steps": 384, "loss": 0.3119, "learning_rate": 2.6679859670118783e-05, "epoch": 1.9553831231813774, "percentage": 65.62, "elapsed_time": "1:28:57", "remaining_time": "0:46:35", "throughput": "12376.24", "total_tokens": 66060288}
127
+ {"current_steps": 254, "total_steps": 384, "loss": 0.2837, "learning_rate": 2.5955568834114524e-05, "epoch": 1.97090203685742, "percentage": 66.15, "elapsed_time": "1:29:40", "remaining_time": "0:45:53", "throughput": "12376.19", "total_tokens": 66584576}
128
+ {"current_steps": 256, "total_steps": 384, "loss": 0.2511, "learning_rate": 2.5237782854708348e-05, "epoch": 1.9864209505334627, "percentage": 66.67, "elapsed_time": "1:30:22", "remaining_time": "0:45:11", "throughput": "12376.12", "total_tokens": 67108864}
129
+ {"current_steps": 258, "total_steps": 384, "loss": 0.2501, "learning_rate": 2.452669591802307e-05, "epoch": 2.0019398642095054, "percentage": 67.19, "elapsed_time": "1:31:04", "remaining_time": "0:44:28", "throughput": "12376.06", "total_tokens": 67633152}
130
+ {"current_steps": 260, "total_steps": 384, "loss": 0.2296, "learning_rate": 2.3822500397857018e-05, "epoch": 2.017458777885548, "percentage": 67.71, "elapsed_time": "1:31:47", "remaining_time": "0:43:46", "throughput": "12376.11", "total_tokens": 68157440}
131
+ {"current_steps": 262, "total_steps": 384, "loss": 0.2333, "learning_rate": 2.3125386803640187e-05, "epoch": 2.0329776915615905, "percentage": 68.23, "elapsed_time": "1:32:29", "remaining_time": "0:43:04", "throughput": "12376.14", "total_tokens": 68681728}
132
+ {"current_steps": 264, "total_steps": 384, "loss": 0.2119, "learning_rate": 2.2435543728894792e-05, "epoch": 2.0484966052376334, "percentage": 68.75, "elapsed_time": "1:33:11", "remaining_time": "0:42:21", "throughput": "12376.08", "total_tokens": 69206016}
133
+ {"current_steps": 266, "total_steps": 384, "loss": 0.2676, "learning_rate": 2.175315780021411e-05, "epoch": 2.064015518913676, "percentage": 69.27, "elapsed_time": "1:33:54", "remaining_time": "0:41:39", "throughput": "12376.02", "total_tokens": 69730304}
134
+ {"current_steps": 268, "total_steps": 384, "loss": 0.2285, "learning_rate": 2.1078413626773546e-05, "epoch": 2.079534432589719, "percentage": 69.79, "elapsed_time": "1:34:36", "remaining_time": "0:40:57", "throughput": "12376.08", "total_tokens": 70254592}
135
+ {"current_steps": 270, "total_steps": 384, "loss": 0.2281, "learning_rate": 2.0411493750387423e-05, "epoch": 2.0950533462657615, "percentage": 70.31, "elapsed_time": "1:35:18", "remaining_time": "0:40:14", "throughput": "12376.12", "total_tokens": 70778880}
136
+ {"current_steps": 272, "total_steps": 384, "loss": 0.2701, "learning_rate": 1.9752578596124954e-05, "epoch": 2.110572259941804, "percentage": 70.83, "elapsed_time": "1:36:01", "remaining_time": "0:39:32", "throughput": "12376.07", "total_tokens": 71303168}
137
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138
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36
+ val_size: 0.05
37
+ warmup_steps: 2
training_loss.png ADDED
vocab.json ADDED
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