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0.4.11adapter: lora
2base_model: unsloth/tinyllama-chat
3bf16: true
4chat_template: llama3
5dataset_prepared_path: null
6datasets:
7- data_files:
8 - daed85532ae01daa_train_data.json
9 ds_type: json
10 format: custom
11 path: /workspace/input_data/daed85532ae01daa_train_data.json
12 type:
13 field_input: input
14 field_instruction: instruction
15 field_output: output
16 format: '{instruction} {input}'
17 no_input_format: '{instruction}'
18 system_format: '{system}'
19 system_prompt: ''
20debug: null
21device_map:
22 ? ''
23 : 0,1,2,3,4,5,6,7
24early_stopping_patience: 2
25eval_max_new_tokens: 128
26eval_steps: 100
27eval_table_size: null
28flash_attention: true
29gradient_accumulation_steps: 8
30gradient_checkpointing: true
31group_by_length: false
32hub_model_id: Alphatao/8d2d892c-ff6e-4848-9b91-107eb3356cd9
33hub_repo: null
34hub_strategy: null
35hub_token: null
36learning_rate: 0.0002
37load_best_model_at_end: true
38load_in_4bit: false
39load_in_8bit: false
40local_rank: null
41logging_steps: 1
42lora_alpha: 128
43lora_dropout: 0.1
44lora_fan_in_fan_out: null
45lora_model_dir: null
46lora_r: 64
47lora_target_linear: true
48lora_target_modules:
49- q_proj
50- k_proj
51- v_proj
52- o_proj
53lr_scheduler: cosine
54max_grad_norm: 1.0
55max_steps: 3436
56micro_batch_size: 4
57mlflow_experiment_name: /tmp/daed85532ae01daa_train_data.json
58model_type: AutoModelForCausalLM
59num_epochs: 2
60optimizer: adamw_bnb_8bit
61output_dir: miner_id_24
62pad_to_sequence_len: true
63resume_from_checkpoint: null
64s2_attention: null
65sample_packing: false
66save_steps: 100
67sequence_len: 2048
68strict: false
69tf32: true
70tokenizer_type: AutoTokenizer
71train_on_inputs: false
72trust_remote_code: true
73val_set_size: 0.05
74wandb_entity: null
75wandb_mode: online
76wandb_name: d7c344bd-e406-41ee-ad84-5b799adb7e49
77wandb_project: Gradients-On-Demand
78wandb_run: your_name
79wandb_runid: d7c344bd-e406-41ee-ad84-5b799adb7e49
80warmup_steps: 10
81weight_decay: 0.0
82xformers_attention: null
83| Training Loss | Epoch | Step | Validation Loss |
|---|---|---|---|
| 1.7226 | 0.0004 | 1 | 1.8629 |
| 1.5389 | 0.0413 | 100 | 1.5883 |
| 1.6151 | 0.0826 | 200 | 1.5001 |
| 1.4608 | 0.1239 | 300 | 1.4470 |
| 1.391 | 0.1652 | 400 | 1.4021 |
| 1.4795 | 0.2065 | 500 | 1.3675 |
| 1.3089 | 0.2478 | 600 | 1.3393 |
| 1.2863 | 0.2891 | 700 | 1.3107 |
| 1.2662 | 0.3304 | 800 | 1.2906 |
| 1.0741 | 0.3717 | 900 | 1.2695 |
| 1.3393 | 0.4130 | 1000 | 1.2517 |
| 1.2022 | 0.4543 | 1100 | 1.2325 |
| 1.2035 | 0.4956 | 1200 | 1.2130 |
| 1.1916 | 0.5369 | 1300 | 1.2001 |
| 1.194 | 0.5782 | 1400 | 1.1885 |
| 1.1436 | 0.6195 | 1500 | 1.1722 |
| 1.1657 | 0.6608 | 1600 | 1.1645 |
| 1.2633 | 0.7022 | 1700 | 1.1506 |
| 1.1023 | 0.7435 | 1800 | 1.1378 |
| 1.083 | 0.7848 | 1900 | 1.1263 |
| 1.1029 | 0.8261 | 2000 | 1.1195 |
| 1.2289 | 0.8674 | 2100 | 1.1089 |
| 1.0197 | 0.9087 | 2200 | 1.1006 |
| 1.0328 | 0.9500 | 2300 | 1.0929 |
| 1.0541 | 0.9913 | 2400 | 1.0857 |
| 0.9552 | 1.0326 | 2500 | 1.0857 |
| 0.8904 | 1.0739 | 2600 | 1.0828 |
| 0.9669 | 1.1152 | 2700 | 1.0780 |
| 1.0052 | 1.1565 | 2800 | 1.0762 |
| 0.9452 | 1.1978 | 2900 | 1.0731 |
| 0.876 | 1.2391 | 3000 | 1.0715 |
| 0.937 | 1.2804 | 3100 | 1.0701 |
| 1.0547 | 1.3217 | 3200 | 1.0692 |
| 0.8701 | 1.3630 | 3300 | 1.0691 |
| 1.1223 | 1.4043 | 3400 | 1.0690 |