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0.4.11adapter: lora
2base_model: Qwen/Qwen2-0.5B-Instruct
3bf16: true
4chat_template: llama3
5dataset_prepared_path: null
6datasets:
7- data_files:
8 - c64ff0d01392d1e4_train_data.json
9 ds_type: json
10 format: custom
11 path: /workspace/input_data/c64ff0d01392d1e4_train_data.json
12 type:
13 field_instruction: prompt_type
14 field_output: prompt_text
15 format: '{instruction}'
16 no_input_format: '{instruction}'
17 system_format: '{system}'
18 system_prompt: ''
19debug: null
20deepspeed: null
21early_stopping_patience: 2
22eval_max_new_tokens: 128
23eval_steps: 100
24eval_table_size: null
25flash_attention: true
26fp16: null
27fsdp: null
28fsdp_config: null
29gradient_accumulation_steps: 8
30gradient_checkpointing: true
31group_by_length: false
32hub_model_id: Alphatao/c31a0826-774c-48af-86bb-629bd7ef2583
33hub_repo: null
34hub_strategy: checkpoint
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: 32
43lora_dropout: 0.05
44lora_fan_in_fan_out: null
45lora_model_dir: null
46lora_r: 16
47lora_target_linear: true
48lora_target_modules:
49- q_proj
50- k_proj
51- v_proj
52lr_scheduler: cosine
53max_grad_norm: 1.0
54max_steps: 8832
55micro_batch_size: 4
56mlflow_experiment_name: /tmp/c64ff0d01392d1e4_train_data.json
57model_type: AutoModelForCausalLM
58num_epochs: 2
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: 100
66sequence_len: 1024
67strict: false
68tf32: true
69tokenizer_type: AutoTokenizer
70train_on_inputs: false
71trust_remote_code: true
72val_set_size: 0.04
73wandb_entity: null
74wandb_mode: online
75wandb_name: fb46a0d2-7710-4f02-ba9b-a717c0c8c0cd
76wandb_project: Gradients-On-Demand
77wandb_run: your_name
78wandb_runid: fb46a0d2-7710-4f02-ba9b-a717c0c8c0cd
79warmup_steps: 10
80weight_decay: 0.0
81xformers_attention: null
82| Training Loss | Epoch | Step | Validation Loss |
|---|---|---|---|
| 5.3671 | 0.0006 | 1 | 5.3415 |
| 3.1325 | 0.0649 | 100 | 3.3948 |
| 3.3967 | 0.1297 | 200 | 3.2506 |
| 2.9834 | 0.1946 | 300 | 3.1461 |
| 2.6376 | 0.2594 | 400 | 3.0808 |
| 3.4206 | 0.3243 | 500 | 2.9966 |
| 3.0461 | 0.3892 | 600 | 2.9330 |
| 2.2323 | 0.4540 | 700 | 2.8605 |
| 2.7525 | 0.5189 | 800 | 2.7908 |
| 2.8358 | 0.5838 | 900 | 2.7131 |
| 2.8312 | 0.6486 | 1000 | 2.6433 |
| 2.4678 | 0.7135 | 1100 | 2.5774 |
| 2.5489 | 0.7783 | 1200 | 2.5080 |
| 2.3458 | 0.8432 | 1300 | 2.4473 |
| 2.3761 | 0.9081 | 1400 | 2.3796 |
| 2.0236 | 0.9729 | 1500 | 2.3125 |
| 1.9383 | 1.0378 | 1600 | 2.2606 |
| 1.8816 | 1.1026 | 1700 | 2.1880 |
| 1.8313 | 1.1675 | 1800 | 2.1419 |
| 1.9847 | 1.2324 | 1900 | 2.0941 |
| 1.8436 | 1.2972 | 2000 | 2.0431 |
| 1.6931 | 1.3621 | 2100 | 2.0023 |
| 1.593 | 1.4269 | 2200 | 1.9543 |
| 1.8932 | 1.4918 | 2300 | 1.9170 |
| 2.0395 | 1.5567 | 2400 | 1.8831 |
| 1.7951 | 1.6215 | 2500 | 1.8598 |
| 1.5655 | 1.6864 | 2600 | 1.8419 |
| 1.2855 | 1.7513 | 2700 | 1.8256 |
| 1.4709 | 1.8161 | 2800 | 1.8161 |
| 1.7402 | 1.8810 | 2900 | 1.8116 |
| 1.7177 | 1.9458 | 3000 | 1.8095 |