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--- |
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license: cc-by-nc-2.0 |
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language: |
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- en |
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- zh |
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- ja |
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tags: |
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- sft |
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pipeline_tag: text-generation |
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widget: |
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- text: >- |
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<|prompter|>What is a meme, and what's the history behind this |
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word?<|endoftext|><|assistant|> |
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- text: <|prompter|>What's the Earth total population<|endoftext|><|assistant|> |
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- text: >- |
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<|prompter|>Write a story about future of AI |
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development<|endoftext|><|assistant|> |
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--- |
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# Redpajama-3B SFT model |
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It is based on a RedPajama's 3B that was fine-tuned on human demonstrations |
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of assistant conversations collected through the |
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[https://open-assistant.io/](https://open-assistant.io/) human feedback web |
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app before April 12, 2023. |
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## Model Details |
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- **Developed by:** [Open-Assistant Contributors](https://open-assistant.io/) and [iKala](https://ikala.ai/) |
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- **Model type:** Transformer-based Language Model |
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- **Language:** English, Chinese, Japanese |
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- **Finetuned from:** [togethercomputer/RedPajama-INCITE-Base-3B-v1](https://huggingface.co/togethercomputer/RedPajama-INCITE-Base-3B-v1) |
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- **Code:** [Open-Assistant/model/model_training](https://github.com/LAION-AI/Open-Assistant/tree/main/model/model_training) |
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## Prompting |
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Two special tokens are used to mark the beginning of user and assistant turns: |
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`<|prompter|>` and `<|assistant|>`. Each turn ends with a `<|endoftext|>` token. |
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Input prompt example: |
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``` |
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<|prompter|>What is a meme, and what's the history behind this word?<|endoftext|><|assistant|> |
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``` |
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The input ends with the `<|assistant|>` token to signal that the model should |
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start generating the assistant reply. |
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## Benchmark |
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| model | MMLU | BBH | Humaneval @10 | |
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|---|---|---|---| |
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| ikala/redpajama-3b-chat | 24.6 | 29.3 | 4.76 | |
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| ikala/bloom-zh-chat-3b | 31.4 | 30.18 | 0.0 | |
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| llama-7b (reference) | 30.9 | 27.6 | 10.3 | |
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## Dev Details |
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- base model: [togethercomputer/RedPajama-INCITE-Base-3B-v1](https://huggingface.co/togethercomputer/RedPajama-INCITE-Base-3B-v1) |
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- checkpoint: 1 epoch (6000 steps) |
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command: `deepspeed trainer_sft.py --configs defaults stablelm-7b oasst-mix --cache_dir /home/ubuntu/data_cache --output_dir .saved/stable-lm-7b-1 --num_train_epochs 4 --deepspeed` |
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data: |
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``` |
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datasets: |
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- wmt2019_zh-en: |
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max_val_set: 1000 |
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max_train_set: 20000 |
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- ted_trans_en-ja: |
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max_val_set: 1000 |
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max_train_set: 20000 |
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- ted_trans_zh-ja: |
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max_val_set: 1000 |
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max_train_set: 20000 |
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- ikala: |
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input_file_path: export_conversation_v4.4.jsonl |
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val_split: 0.05 |
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- dolly15k: |
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val_split: 0.05 |
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- oasst_export: |
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lang: "bg,ca,cs,da,de,en,es,fr,hr,hu,it,nl,pl,pt,ro,ru,sl,sr,sv,uk,zh,ja,th,ko" |
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input_file_path: 2023-04-12_oasst_release_ready_synth.jsonl.gz |
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val_split: 0.05 |
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- joke |
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- gsm8k |
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- webgpt |
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``` |
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|
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with internal datasets `ikala` so if you try to reproduce please remove the dataset |
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redpajama-3b: |
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``` |
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redpajama-3b: |
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dtype: fp16 |
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log_dir: "redpajama_3b" |
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learning_rate: 1e-5 |
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model_name: saved_models/RedPajama-INCITE-Base-3B-v1 |
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output_dir: ikala_v4_3b |
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weight_decay: 0.0 |
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max_length: 8196 |
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warmup_steps: 2000 |
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gradient_checkpointing: true |
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gradient_accumulation_steps: 32 |
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per_device_train_batch_size: 1 |
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per_device_eval_batch_size: 2 |
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eval_steps: 500 |
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save_steps: 1000 |
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num_train_epochs: 8 |
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save_total_limit: 2 |
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deepspeed_config: configs/zero3_config_sft.json |
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``` |
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zero config: |
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``` |
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{ |
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"fp16": { |
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"enabled": "auto", |
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"loss_scale": 0, |
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"loss_scale_window": 1000, |
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"initial_scale_power": 16, |
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"hysteresis": 2, |
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"min_loss_scale": 1 |
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}, |
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"bf16": { |
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"enabled": "auto" |
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}, |
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"optimizer": { |
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"type": "AdamW", |
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"params": { |
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"lr": "auto", |
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"betas": "auto", |
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"eps": "auto", |
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"weight_decay": "auto" |
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} |
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}, |
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"scheduler": { |
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"type": "WarmupDecayLR", |
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"params": { |
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"warmup_min_lr": "auto", |
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"warmup_max_lr": "auto", |
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"warmup_num_steps": "auto", |
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"warmup_type": "linear", |
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"total_num_steps": "auto" |
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} |
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}, |
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"zero_optimization": { |
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"stage": 3, |
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"overlap_comm": true, |
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"contiguous_gradients": true, |
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"sub_group_size": 1e9, |
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"reduce_bucket_size": "auto", |
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"stage3_prefetch_bucket_size": "auto", |
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"stage3_param_persistence_threshold": "auto", |
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"stage3_max_live_parameters": 1e9, |
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"stage3_max_reuse_distance": 1e9, |
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"stage3_gather_16bit_weights_on_model_save": true |
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}, |
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"gradient_accumulation_steps": "auto", |
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"gradient_clipping": "auto", |
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"steps_per_print": 2000, |
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"train_batch_size": "auto", |
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"train_micro_batch_size_per_gpu": "auto", |
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"wall_clock_breakdown": false |
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} |
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``` |
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