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* Add finetuning example for llama 3.1 * LoRA finetuning llama 3.1 with torch tune * Add checkpoint file mounts * working recipe * Add instructions * fix mounting * Allow custom dataset source * Add serve finetuned yaml * remove newlines * fix serving yaml * rename folder * remove gradio * Add readme * update readme * Add news * Update llm/llama-31-finetuning/readme.md Co-authored-by: Zongheng Yang <zongheng.y@gmail.com> * Update llm/llama-31-finetuning/readme.md Co-authored-by: Zongheng Yang <zongheng.y@gmail.com> * Update llm/llama-31-finetuning/readme.md Co-authored-by: Zongheng Yang <zongheng.y@gmail.com> * Update llm/llama-31-finetuning/readme.md Co-authored-by: Zongheng Yang <zongheng.y@gmail.com> * Update llm/llama-31-finetuning/readme.md Co-authored-by: Zongheng Yang <zongheng.y@gmail.com> * change to underscore * fix serve.yaml * fix readme --------- Co-authored-by: Zongheng Yang <zongheng.y@gmail.com>
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# Config for multi-device LoRA in lora_finetune_distributed.py | ||
# using a Llama3.1 70B model | ||
# | ||
# This config assumes that you've run the following command before launching | ||
# this run: | ||
# tune download meta-llama/Meta-Llama-3.1-70B-Instruct --output-dir /tmp/Meta-Llama-3.1-70B-Instruct --ignore-patterns "original/consolidated*" | ||
# | ||
# This config needs 8 GPUs to run | ||
# tune run --nproc_per_node 8 lora_finetune_distributed --config llama3_1/70B_lora | ||
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# Model Arguments | ||
model: | ||
_component_: torchtune.models.llama3_1.lora_llama3_1_70b | ||
lora_attn_modules: ['q_proj', 'k_proj', 'v_proj'] | ||
apply_lora_to_mlp: False | ||
apply_lora_to_output: False | ||
lora_rank: 16 | ||
lora_alpha: 32 | ||
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tokenizer: | ||
_component_: torchtune.models.llama3.llama3_tokenizer | ||
path: /tmp/Meta-Llama-3.1-70B-Instruct/original/tokenizer.model | ||
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checkpointer: | ||
_component_: torchtune.utils.FullModelHFCheckpointer | ||
checkpoint_dir: /tmp/Meta-Llama-3.1-70B-Instruct/ | ||
checkpoint_files: [ | ||
model-00001-of-00030.safetensors, | ||
model-00002-of-00030.safetensors, | ||
model-00003-of-00030.safetensors, | ||
model-00004-of-00030.safetensors, | ||
model-00005-of-00030.safetensors, | ||
model-00006-of-00030.safetensors, | ||
model-00007-of-00030.safetensors, | ||
model-00008-of-00030.safetensors, | ||
model-00009-of-00030.safetensors, | ||
model-00010-of-00030.safetensors, | ||
model-00011-of-00030.safetensors, | ||
model-00012-of-00030.safetensors, | ||
model-00013-of-00030.safetensors, | ||
model-00014-of-00030.safetensors, | ||
model-00015-of-00030.safetensors, | ||
model-00016-of-00030.safetensors, | ||
model-00017-of-00030.safetensors, | ||
model-00018-of-00030.safetensors, | ||
model-00019-of-00030.safetensors, | ||
model-00020-of-00030.safetensors, | ||
model-00021-of-00030.safetensors, | ||
model-00022-of-00030.safetensors, | ||
model-00023-of-00030.safetensors, | ||
model-00024-of-00030.safetensors, | ||
model-00025-of-00030.safetensors, | ||
model-00026-of-00030.safetensors, | ||
model-00027-of-00030.safetensors, | ||
model-00028-of-00030.safetensors, | ||
model-00029-of-00030.safetensors, | ||
model-00030-of-00030.safetensors, | ||
] | ||
recipe_checkpoint: null | ||
output_dir: /tmp/Meta-Llama-3.1-70B-Instruct/ | ||
model_type: LLAMA3 | ||
resume_from_checkpoint: False | ||
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# Dataset and Sampler | ||
dataset: | ||
_component_: torchtune.datasets.alpaca_dataset | ||
seed: null | ||
shuffle: True | ||
batch_size: 2 | ||
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# Optimizer and Scheduler | ||
optimizer: | ||
_component_: torch.optim.AdamW | ||
weight_decay: 0.01 | ||
lr: 3e-4 | ||
lr_scheduler: | ||
_component_: torchtune.modules.get_cosine_schedule_with_warmup | ||
num_warmup_steps: 100 | ||
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loss: | ||
_component_: torch.nn.CrossEntropyLoss | ||
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# Training | ||
epochs: 1 | ||
max_steps_per_epoch: null | ||
gradient_accumulation_steps: 1 | ||
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# Logging | ||
output_dir: /tmp/lora_finetune_output | ||
metric_logger: | ||
_component_: torchtune.utils.metric_logging.DiskLogger | ||
log_dir: ${output_dir} | ||
log_every_n_steps: 1 | ||
log_peak_memory_stats: False | ||
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# Environment | ||
device: cuda | ||
dtype: bf16 | ||
enable_activation_checkpointing: True |
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# Config for multi-device LoRA finetuning in lora_finetune_distributed.py | ||
# using a Llama3.1 8B Instruct model | ||
# | ||
# This config assumes that you've run the following command before launching | ||
# this run: | ||
# tune download meta-llama/Meta-Llama-3.1-8B-Instruct --output-dir /tmp/Meta-Llama-3.1-8B-Instruct --ignore-patterns "original/consolidated.00.pth" | ||
# | ||
# To launch on 2 devices, run the following command from root: | ||
# tune run --nproc_per_node 2 lora_finetune_distributed --config llama3_1/8B_lora | ||
# | ||
# You can add specific overrides through the command line. For example | ||
# to override the checkpointer directory while launching training | ||
# you can run: | ||
# tune run --nproc_per_node 2 lora_finetune_distributed --config llama3_1/8B_lora checkpointer.checkpoint_dir=<YOUR_CHECKPOINT_DIR> | ||
# | ||
# This config works best when the model is being fine-tuned on 2+ GPUs. | ||
# For single device LoRA finetuning please use 8B_lora_single_device.yaml | ||
# or 8B_qlora_single_device.yaml | ||
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# Tokenizer | ||
tokenizer: | ||
_component_: torchtune.models.llama3.llama3_tokenizer | ||
path: /tmp/Meta-Llama-3.1-8B-Instruct/original/tokenizer.model | ||
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# Model Arguments | ||
model: | ||
_component_: torchtune.models.llama3_1.lora_llama3_1_8b | ||
lora_attn_modules: ['q_proj', 'v_proj'] | ||
apply_lora_to_mlp: False | ||
apply_lora_to_output: False | ||
lora_rank: 8 | ||
lora_alpha: 16 | ||
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checkpointer: | ||
_component_: torchtune.utils.FullModelHFCheckpointer | ||
checkpoint_dir: /tmp/Meta-Llama-3.1-8B-Instruct/ | ||
checkpoint_files: [ | ||
model-00001-of-00004.safetensors, | ||
model-00002-of-00004.safetensors, | ||
model-00003-of-00004.safetensors, | ||
model-00004-of-00004.safetensors | ||
] | ||
recipe_checkpoint: null | ||
output_dir: /tmp/Meta-Llama-3.1-8B-Instruct/ | ||
model_type: LLAMA3 | ||
resume_from_checkpoint: False | ||
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# Dataset and Sampler | ||
dataset: | ||
_component_: torchtune.datasets.alpaca_cleaned_dataset | ||
seed: null | ||
shuffle: True | ||
batch_size: 2 | ||
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# Optimizer and Scheduler | ||
optimizer: | ||
_component_: torch.optim.AdamW | ||
weight_decay: 0.01 | ||
lr: 3e-4 | ||
lr_scheduler: | ||
_component_: torchtune.modules.get_cosine_schedule_with_warmup | ||
num_warmup_steps: 100 | ||
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loss: | ||
_component_: torch.nn.CrossEntropyLoss | ||
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# Training | ||
epochs: 1 | ||
max_steps_per_epoch: null | ||
gradient_accumulation_steps: 32 | ||
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# Logging | ||
output_dir: /tmp/lora_finetune_output | ||
metric_logger: | ||
_component_: torchtune.utils.metric_logging.DiskLogger | ||
log_dir: ${output_dir} | ||
log_every_n_steps: 1 | ||
log_peak_memory_stats: False | ||
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# Environment | ||
device: cuda | ||
dtype: bf16 | ||
enable_activation_checkpointing: False |
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# LoRA finetuning Meta Llama-3.1 on any of your own infra. | ||
# | ||
# Usage: | ||
# | ||
# HF_TOKEN=xxx sky launch lora.yaml -c llama31 --env HF_TOKEN | ||
# | ||
# To finetune a 70B model: | ||
# | ||
# HF_TOKEN=xxx sky launch lora.yaml -c llama31-70 --env HF_TOKEN --env MODEL_SIZE=70B | ||
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envs: | ||
MODEL_SIZE: 8B | ||
HF_TOKEN: | ||
DATASET: "yahma/alpaca-cleaned" | ||
# Change this to your own checkpoint bucket | ||
CHECKPOINT_BUCKET_NAME: sky-llama-31-checkpoints | ||
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resources: | ||
accelerators: A100:8 | ||
disk_tier: best | ||
use_spot: true | ||
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file_mounts: | ||
/configs: ./configs | ||
/output: | ||
name: $CHECKPOINT_BUCKET_NAME | ||
mode: MOUNT | ||
# Optionally, specify the store to enforce to use one of the stores below: | ||
# r2/azure/gcs/s3/cos | ||
# store: r2 | ||
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setup: | | ||
pip install torch torchvision | ||
# Install torch tune from source for the latest Llama-3.1 model | ||
pip install git+https://github.com/pytorch/torchtune.git@58255001bd0b1e3a81a6302201024e472af05379 | ||
# pip install torchtune | ||
tune download meta-llama/Meta-Llama-3.1-${MODEL_SIZE}-Instruct \ | ||
--hf-token $HF_TOKEN \ | ||
--output-dir /tmp/Meta-Llama-3.1-${MODEL_SIZE}-Instruct \ | ||
--ignore-patterns "original/consolidated*" | ||
run: | | ||
tune run --nproc_per_node $SKYPILOT_NUM_GPUS_PER_NODE \ | ||
lora_finetune_distributed \ | ||
--config /configs/${MODEL_SIZE}-lora.yaml \ | ||
dataset.source=$DATASET | ||
# Remove the checkpoint files to save space, LoRA serving only needs the | ||
# adapter files. | ||
rm /tmp/Meta-Llama-3.1-${MODEL_SIZE}-Instruct/*.pt | ||
rm /tmp/Meta-Llama-3.1-${MODEL_SIZE}-Instruct/*.safetensors | ||
mkdir -p /output/$MODEL_SIZE-lora | ||
rsync -Pavz /tmp/Meta-Llama-3.1-${MODEL_SIZE}-Instruct /output/$MODEL_SIZE-lora | ||
cp -r /tmp/lora_finetune_output /output/$MODEL_SIZE-lora/ |
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