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0.4.11adapter: lora
2auto_resume_from_checkpoints: false
3base_model: fxmarty/tiny-random-GemmaForCausalLM
4bf16: auto
5chat_template: llama3
6dataset_prepared_path: null
7dataset_processes: 6
8datasets:
9- data_files:
10 - 8cfdb1f2cec27bcb_train_data.json
11 ds_type: json
12 format: custom
13 path: /workspace/input_data/8cfdb1f2cec27bcb_train_data.json
14 type:
15 field_input: mzs
16 field_instruction: formula
17 field_output: smiles
18 format: '{instruction} {input}'
19 no_input_format: '{instruction}'
20 system_format: '{system}'
21 system_prompt: ''
22debug: null
23deepspeed: null
24early_stopping_patience: 3
25eval_max_new_tokens: 128
26eval_steps: 200
27eval_table_size: null
28evals_per_epoch: null
29flash_attention: true
30fp16: false
31fsdp: null
32fsdp_config: null
33gradient_accumulation_steps: 2
34gradient_checkpointing: true
35group_by_length: false
36hub_model_id: error577/f59415d5-3f46-42ac-8615-c9ed0b877c86
37hub_repo: null
38hub_strategy: checkpoint
39hub_token: null
40learning_rate: 0.0002
41load_in_4bit: false
42load_in_8bit: false
43local_rank: null
44logging_steps: 1
45lora_alpha: 64
46lora_dropout: 0.1
47lora_fan_in_fan_out: null
48lora_model_dir: null
49lora_r: 32
50lora_target_linear: true
51lr_scheduler: cosine
52max_grad_norm: 1.0
53max_steps: null
54micro_batch_size: 5
55mlflow_experiment_name: /tmp/8cfdb1f2cec27bcb_train_data.json
56model_type: AutoModelForCausalLM
57num_epochs: 3
58optimizer: adamw_bnb_8bit
59output_dir: miner_id_24
60pad_to_sequence_len: true
61resume_from_checkpoint: null
62s2_attention: null
63sample_packing: false
64save_steps: 200
65sequence_len: 256
66strict: false
67tf32: false
68tokenizer_type: AutoTokenizer
69train_on_inputs: false
70trust_remote_code: true
71val_set_size: 0.005
72wandb_entity: null
73wandb_mode: online
74wandb_name: 466b54c0-5c4c-4a4c-8e95-f119cf998ff0
75wandb_project: Gradients-On-Demand
76wandb_run: your_name
77wandb_runid: 466b54c0-5c4c-4a4c-8e95-f119cf998ff0
78warmup_steps: 30
79weight_decay: 0.0
80xformers_attention: null
81| Training Loss | Epoch | Step | Validation Loss |
|---|---|---|---|
| 12.4711 | 0.0000 | 1 | 12.4787 |
| 12.2458 | 0.0087 | 200 | 12.2547 |
| 12.2186 | 0.0175 | 400 | 12.2168 |
| 12.2108 | 0.0262 | 600 | 12.2062 |
| 12.2047 | 0.0349 | 800 | 12.2000 |
| 12.2109 | 0.0436 | 1000 | 12.1962 |
| 12.2102 | 0.0524 | 1200 | 12.1915 |
| 12.205 | 0.0611 | 1400 | 12.1876 |
| 12.2112 | 0.0698 | 1600 | 12.1857 |
| 12.2105 | 0.0785 | 1800 | 12.1828 |
| 12.201 | 0.0873 | 2000 | 12.1808 |
| 12.1987 | 0.0960 | 2200 | 12.1781 |
| 12.1744 | 0.1047 | 2400 | 12.1741 |
| 12.1621 | 0.1135 | 2600 | 12.1698 |
| 12.1653 | 0.1222 | 2800 | 12.1665 |
| 12.1946 | 0.1309 | 3000 | 12.1653 |
| 12.1671 | 0.1396 | 3200 | 12.1644 |
| 12.1668 | 0.1484 | 3400 | 12.1638 |
| 12.1695 | 0.1571 | 3600 | 12.1632 |
| 12.1686 | 0.1658 | 3800 | 12.1626 |
| 12.1645 | 0.1746 | 4000 | 12.1626 |
| 12.1577 | 0.1833 | 4200 | 12.1610 |
| 12.16 | 0.1920 | 4400 | 12.1604 |
| 12.1869 | 0.2007 | 4600 | 12.1599 |
| 12.1604 | 0.2095 | 4800 | 12.1592 |
| 12.1863 | 0.2182 | 5000 | 12.1584 |
| 12.1862 | 0.2269 | 5200 | 12.1578 |
| 12.1725 | 0.2356 | 5400 | 12.1575 |
| 12.175 | 0.2444 | 5600 | 12.1571 |
| 12.176 | 0.2531 | 5800 | 12.1568 |
| 12.1537 | 0.2618 | 6000 | 12.1565 |
| 12.1648 | 0.2706 | 6200 | 12.1565 |
| 12.1619 | 0.2793 | 6400 | 12.1558 |
| 12.1525 | 0.2880 | 6600 | 12.1559 |
| 12.1509 | 0.2967 | 6800 | 12.1556 |
| 12.1541 | 0.3055 | 7000 | 12.1554 |
| 12.1641 | 0.3142 | 7200 | 12.1550 |
| 12.1652 | 0.3229 | 7400 | 12.1546 |
| 12.151 | 0.3317 | 7600 | 12.1545 |
| 12.1712 | 0.3404 | 7800 | 12.1547 |
| 12.1711 | 0.3491 | 8000 | 12.1544 |
| 12.1633 | 0.3578 | 8200 | 12.1543 |
| 12.1359 | 0.3666 | 8400 | 12.1541 |
| 12.1583 | 0.3753 | 8600 | 12.1532 |
| 12.1671 | 0.3840 | 8800 | 12.1532 |
| 12.151 | 0.3927 | 9000 | 12.1528 |
| 12.18 | 0.4015 | 9200 | 12.1523 |
| 12.165 | 0.4102 | 9400 | 12.1521 |
| 12.1582 | 0.4189 | 9600 | 12.1520 |
| 12.1574 | 0.4277 | 9800 | 12.1520 |
| 12.1565 | 0.4364 | 10000 | 12.1517 |
| 12.1704 | 0.4451 | 10200 | 12.1513 |
| 12.1493 | 0.4538 | 10400 | 12.1509 |
| 12.145 | 0.4626 | 10600 | 12.1503 |
| 12.1691 | 0.4713 | 10800 | 12.1500 |
| 12.1707 | 0.4800 | 11000 | 12.1499 |
| 12.1365 | 0.4888 | 11200 | 12.1492 |
| 12.1606 | 0.4975 | 11400 | 12.1492 |
| 12.1536 | 0.5062 | 11600 | 12.1488 |
| 12.1682 | 0.5149 | 11800 | 12.1485 |
| 12.1495 | 0.5237 | 12000 | 12.1484 |
| 12.153 | 0.5324 | 12200 | 12.1479 |
| 12.1401 | 0.5411 | 12400 | 12.1481 |
| 12.1544 | 0.5498 | 12600 | 12.1475 |
| 12.1771 | 0.5586 | 12800 | 12.1471 |
| 12.1821 | 0.5673 | 13000 | 12.1469 |
| 12.1471 | 0.5760 | 13200 | 12.1468 |
| 12.1544 | 0.5848 | 13400 | 12.1466 |
| 12.1588 | 0.5935 | 13600 | 12.1465 |
| 12.1316 | 0.6022 | 13800 | 12.1464 |
| 12.1473 | 0.6109 | 14000 | 12.1461 |
| 12.1784 | 0.6197 | 14200 | 12.1458 |
| 12.1317 | 0.6284 | 14400 | 12.1457 |
| 12.1707 | 0.6371 | 14600 | 12.1457 |
| 12.1673 | 0.6459 | 14800 | 12.1458 |
| 12.1294 | 0.6546 | 15000 | 12.1456 |
| 12.1368 | 0.6633 | 15200 | 12.1455 |
| 12.1495 | 0.6720 | 15400 | 12.1452 |
| 12.1463 | 0.6808 | 15600 | 12.1455 |
| 12.1472 | 0.6895 | 15800 | 12.1451 |
| 12.1705 | 0.6982 | 16000 | 12.1451 |
| 12.1373 | 0.7069 | 16200 | 12.1449 |
| 12.1503 | 0.7157 | 16400 | 12.1450 |
| 12.1322 | 0.7244 | 16600 | 12.1449 |
| 12.1579 | 0.7331 | 16800 | 12.1446 |
| 12.1375 | 0.7419 | 17000 | 12.1450 |
| 12.1522 | 0.7506 | 17200 | 12.1449 |
| 12.1554 | 0.7593 | 17400 | 12.1446 |