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0.4.11adapter: lora
2base_model: Qwen/Qwen2.5-0.5B-Instruct
3bf16: true
4chat_template: llama3
5dataset_prepared_path: null
6datasets:
7- data_files:
8 - 9f7cef554ae67229_train_data.json
9 ds_type: json
10 format: custom
11 path: /workspace/input_data/9f7cef554ae67229_train_data.json
12 type:
13 field_instruction: question
14 field_output: answer
15 format: '{instruction}'
16 no_input_format: '{instruction}'
17 system_format: '{system}'
18 system_prompt: ''
19debug: null
20device_map:
21 ? ''
22 : 0,1,2,3,4,5,6,7
23early_stopping_patience: 2
24eval_max_new_tokens: 128
25eval_steps: 400
26eval_table_size: null
27flash_attention: true
28gradient_accumulation_steps: 4
29gradient_checkpointing: true
30group_by_length: false
31hub_model_id: Alphatao/f61daa15-27ab-432d-8a1f-cef37f7ca975
32hub_repo: null
33hub_strategy: null
34hub_token: null
35learning_rate: 0.0002
36load_best_model_at_end: true
37load_in_4bit: false
38load_in_8bit: false
39local_rank: null
40logging_steps: 1
41lora_alpha: 32
42lora_dropout: 0.05
43lora_fan_in_fan_out: null
44lora_model_dir: null
45lora_r: 16
46lora_target_linear: true
47lora_target_modules:
48- q_proj
49- k_proj
50- v_proj
51- o_proj
52lr_scheduler: cosine
53max_grad_norm: 1.0
54max_steps: 33844
55micro_batch_size: 2
56mlflow_experiment_name: /tmp/9f7cef554ae67229_train_data.json
57model_type: AutoModelForCausalLM
58num_epochs: 10
59optimizer: adamw_bnb_8bit
60output_dir: miner_id_24
61pad_to_sequence_len: true
62resume_from_checkpoint: null
63s2_attention: null
64sample_packing: false
65save_steps: 400
66sequence_len: 1024
67strict: false
68tf32: true
69tokenizer_type: AutoTokenizer
70train_on_inputs: false
71trust_remote_code: true
72val_set_size: 0.023880026745629956
73wandb_entity: null
74wandb_mode: online
75wandb_name: 365fa35d-c7f9-424f-8597-3e48c6b82259
76wandb_project: Gradients-On-Demand
77wandb_run: your_name
78wandb_runid: 365fa35d-c7f9-424f-8597-3e48c6b82259
79warmup_steps: 10
80weight_decay: 0.0
81xformers_attention: null
82| Training Loss | Epoch | Step | Validation Loss |
|---|---|---|---|
| 2.8631 | 0.0000 | 1 | 2.7133 |
| 2.1212 | 0.0157 | 400 | 2.2637 |
| 2.4396 | 0.0313 | 800 | 2.2257 |
| 2.2118 | 0.0470 | 1200 | 2.2011 |
| 2.3099 | 0.0626 | 1600 | 2.1843 |
| 2.1729 | 0.0783 | 2000 | 2.1701 |
| 2.1017 | 0.0939 | 2400 | 2.1586 |
| 2.1134 | 0.1096 | 2800 | 2.1490 |
| 1.8189 | 0.1253 | 3200 | 2.1397 |
| 2.106 | 0.1409 | 3600 | 2.1322 |
| 2.1147 | 0.1566 | 4000 | 2.1263 |
| 2.1506 | 0.1722 | 4400 | 2.1210 |
| 1.8483 | 0.1879 | 4800 | 2.1136 |
| 2.3869 | 0.2035 | 5200 | 2.1105 |
| 2.083 | 0.2192 | 5600 | 2.1060 |
| 2.1662 | 0.2349 | 6000 | 2.0994 |
| 2.1826 | 0.2505 | 6400 | 2.0965 |
| 2.4128 | 0.2662 | 6800 | 2.0897 |
| 2.115 | 0.2818 | 7200 | 2.0881 |
| 2.0297 | 0.2975 | 7600 | 2.0848 |
| 1.9269 | 0.3131 | 8000 | 2.0819 |
| 2.182 | 0.3288 | 8400 | 2.0772 |
| 1.9379 | 0.3445 | 8800 | 2.0741 |
| 2.0634 | 0.3601 | 9200 | 2.0706 |
| 2.0554 | 0.3758 | 9600 | 2.0690 |
| 1.942 | 0.3914 | 10000 | 2.0644 |
| 2.2 | 0.4071 | 10400 | 2.0615 |
| 2.0826 | 0.4227 | 10800 | 2.0587 |
| 1.9221 | 0.4384 | 11200 | 2.0565 |
| 2.2434 | 0.4541 | 11600 | 2.0536 |
| 1.906 | 0.4697 | 12000 | 2.0493 |
| 1.943 | 0.4854 | 12400 | 2.0472 |
| 1.9929 | 0.5010 | 12800 | 2.0449 |
| 1.9886 | 0.5167 | 13200 | 2.0406 |
| 1.919 | 0.5323 | 13600 | 2.0387 |
| 1.8248 | 0.5480 | 14000 | 2.0358 |
| 2.2062 | 0.5637 | 14400 | 2.0326 |
| 1.9969 | 0.5793 | 14800 | 2.0306 |
| 2.0402 | 0.5950 | 15200 | 2.0284 |
| 2.1432 | 0.6106 | 15600 | 2.0247 |
| 1.8055 | 0.6263 | 16000 | 2.0221 |
| 2.2405 | 0.6419 | 16400 | 2.0197 |
| 1.957 | 0.6576 | 16800 | 2.0162 |
| 2.2378 | 0.6733 | 17200 | 2.0152 |
| 2.0769 | 0.6889 | 17600 | 2.0120 |
| 1.9884 | 0.7046 | 18000 | 2.0102 |
| 2.4296 | 0.7202 | 18400 | 2.0078 |
| 2.01 | 0.7359 | 18800 | 2.0057 |
| 1.8161 | 0.7515 | 19200 | 2.0032 |
| 1.88 | 0.7672 | 19600 | 2.0013 |
| 2.0602 | 0.7829 | 20000 | 1.9988 |
| 2.0311 | 0.7985 | 20400 | 1.9964 |
| 2.0131 | 0.8142 | 20800 | 1.9947 |
| 2.1369 | 0.8298 | 21200 | 1.9926 |
| 1.9735 | 0.8455 | 21600 | 1.9906 |
| 1.8679 | 0.8611 | 22000 | 1.9895 |
| 2.1485 | 0.8768 | 22400 | 1.9869 |
| 1.8585 | 0.8925 | 22800 | 1.9852 |
| 1.7405 | 0.9081 | 23200 | 1.9834 |
| 1.9779 | 0.9238 | 23600 | 1.9817 |
| 2.1238 | 0.9394 | 24000 | 1.9802 |
| 1.8955 | 0.9551 | 24400 | 1.9785 |
| 1.9514 | 0.9707 | 24800 | 1.9770 |
| 1.9089 | 0.9864 | 25200 | 1.9756 |
| 1.587 | 1.0021 | 25600 | 1.9750 |
| 1.769 | 1.0177 | 26000 | 1.9749 |
| 1.9681 | 1.0334 | 26400 | 1.9739 |
| 1.9145 | 1.0490 | 26800 | 1.9732 |
| 2.3405 | 1.0647 | 27200 | 1.9726 |
| 1.9518 | 1.0803 | 27600 | 1.9718 |
| 2.1134 | 1.0960 | 28000 | 1.9708 |
| 2.5173 | 1.1117 | 28400 | 1.9701 |
| 1.7659 | 1.1273 | 28800 | 1.9695 |
| 1.6429 | 1.1430 | 29200 | 1.9690 |
| 1.9997 | 1.1586 | 29600 | 1.9687 |
| 2.0883 | 1.1743 | 30000 | 1.9683 |
| 2.1096 | 1.1899 | 30400 | 1.9680 |
| 1.6548 | 1.2056 | 30800 | 1.9676 |
| 2.1148 | 1.2213 | 31200 | 1.9674 |
| 1.9167 | 1.2369 | 31600 | 1.9672 |
| 1.9936 | 1.2526 | 32000 | 1.9671 |
| 1.205 | 1.2682 | 32400 | 1.9670 |
| 2.0367 | 1.2839 | 32800 | 1.9669 |
| 2.2282 | 1.2995 | 33200 | 1.9668 |
| 1.7997 | 1.3152 | 33600 | 1.9669 |