Peft lotfq (#1222)
Browse files* loftq support for lora
* fix loftq check
* update readme for loftq
* readability cleanup
* use peft main for loftq fixes, remove unnecessary special tokens
* remove unused test from older deprecation
- README.md +6 -0
- examples/llama-2/fft_optimized.yml +0 -3
- examples/llama-2/loftq.yml +70 -0
- examples/llama-2/lora.yml +0 -3
- examples/llama-2/qlora.yml +0 -3
- requirements.txt +1 -1
- src/axolotl/utils/config.py +2 -4
- src/axolotl/utils/models.py +18 -6
- tests/test_validation.py +0 -10
README.md
CHANGED
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@@ -696,6 +696,12 @@ lora_modules_to_save:
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lora_fan_in_fan_out: false
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# ReLoRA configuration
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# Must use either 'lora' or 'qlora' adapter, and does not support fsdp or deepspeed
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relora_steps: # Number of steps per ReLoRA restart
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lora_fan_in_fan_out: false
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+
peft:
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# Configuration options for loftq initialization for LoRA
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# https://huggingface.co/docs/peft/developer_guides/quantization#loftq-initialization
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loftq_config:
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loftq_bits: # typically 4 bits
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+
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# ReLoRA configuration
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# Must use either 'lora' or 'qlora' adapter, and does not support fsdp or deepspeed
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relora_steps: # Number of steps per ReLoRA restart
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examples/llama-2/fft_optimized.yml
CHANGED
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@@ -67,6 +67,3 @@ weight_decay: 0.1
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fsdp:
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fsdp_config:
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special_tokens:
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-
bos_token: "<s>"
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-
eos_token: "</s>"
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-
unk_token: "<unk>"
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fsdp:
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fsdp_config:
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special_tokens:
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examples/llama-2/loftq.yml
ADDED
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@@ -0,0 +1,70 @@
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base_model: NousResearch/Llama-2-7b-hf
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model_type: LlamaForCausalLM
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tokenizer_type: LlamaTokenizer
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is_llama_derived_model: true
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load_in_8bit: false
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load_in_4bit: false
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strict: false
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datasets:
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- path: mhenrichsen/alpaca_2k_test
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type: alpaca
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dataset_prepared_path:
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val_set_size: 0.05
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output_dir: ./lora-out
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sequence_len: 4096
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sample_packing: true
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pad_to_sequence_len: true
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adapter: lora
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lora_model_dir:
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lora_r: 32
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lora_alpha: 16
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lora_dropout: 0.05
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lora_target_linear: true
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lora_fan_in_fan_out:
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peft:
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loftq_config:
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loftq_bits: 4
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wandb_project:
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wandb_entity:
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wandb_watch:
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wandb_name:
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wandb_log_model:
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gradient_accumulation_steps: 4
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micro_batch_size: 2
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num_epochs: 4
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optimizer: adamw_bnb_8bit
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lr_scheduler: cosine
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learning_rate: 0.0002
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train_on_inputs: false
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group_by_length: false
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bf16: auto
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fp16:
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tf32: false
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gradient_checkpointing: true
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early_stopping_patience:
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resume_from_checkpoint:
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local_rank:
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logging_steps: 1
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xformers_attention:
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flash_attention: true
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s2_attention:
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warmup_steps: 10
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evals_per_epoch: 4
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eval_table_size:
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eval_table_max_new_tokens: 128
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saves_per_epoch: 1
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debug:
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deepspeed:
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weight_decay: 0.0
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fsdp:
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fsdp_config:
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special_tokens:
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examples/llama-2/lora.yml
CHANGED
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@@ -65,6 +65,3 @@ weight_decay: 0.0
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fsdp:
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fsdp_config:
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special_tokens:
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-
bos_token: "<s>"
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-
eos_token: "</s>"
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-
unk_token: "<unk>"
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fsdp:
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fsdp_config:
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special_tokens:
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examples/llama-2/qlora.yml
CHANGED
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@@ -65,6 +65,3 @@ weight_decay: 0.0
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fsdp:
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fsdp_config:
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special_tokens:
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-
bos_token: "<s>"
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-
eos_token: "</s>"
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-
unk_token: "<unk>"
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fsdp:
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fsdp_config:
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special_tokens:
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requirements.txt
CHANGED
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@@ -1,6 +1,6 @@
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--extra-index-url https://huggingface.github.io/autogptq-index/whl/cu118/
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packaging==23.2
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-
peft
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transformers==4.37.0
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tokenizers==0.15.0
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bitsandbytes>=0.41.1
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--extra-index-url https://huggingface.github.io/autogptq-index/whl/cu118/
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packaging==23.2
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+
peft @ git+https://github.com/huggingface/peft.git
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transformers==4.37.0
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tokenizers==0.15.0
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bitsandbytes>=0.41.1
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src/axolotl/utils/config.py
CHANGED
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@@ -232,9 +232,6 @@ def validate_config(cfg):
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"eval_batch_size != micro_batch_size. This can lead to VRAM instability."
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)
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-
if cfg.load_4bit:
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-
raise ValueError("cfg.load_4bit parameter has been deprecated")
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-
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if cfg.adapter == "qlora":
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if cfg.merge_lora:
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# can't merge qlora if loaded in 8bit or 4bit
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@@ -260,7 +257,8 @@ def validate_config(cfg):
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if cfg.flash_attn_fuse_qkv or cfg.flash_attn_fuse_mlp:
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raise ValueError("Fused modules are not supported with QLoRA")
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-
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LOG.warning("We recommend setting `load_in_8bit: true` for LORA finetuning")
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if cfg.adapter == "lora" and (cfg.flash_attn_fuse_qkv or cfg.flash_attn_fuse_mlp):
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"eval_batch_size != micro_batch_size. This can lead to VRAM instability."
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)
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if cfg.adapter == "qlora":
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if cfg.merge_lora:
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# can't merge qlora if loaded in 8bit or 4bit
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if cfg.flash_attn_fuse_qkv or cfg.flash_attn_fuse_mlp:
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raise ValueError("Fused modules are not supported with QLoRA")
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+
loftq = cfg.peft and cfg.peft.loftq_config and cfg.peft.loftq_config.loftq_bits
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if not cfg.load_in_8bit and cfg.adapter == "lora" and not loftq:
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LOG.warning("We recommend setting `load_in_8bit: true` for LORA finetuning")
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if cfg.adapter == "lora" and (cfg.flash_attn_fuse_qkv or cfg.flash_attn_fuse_mlp):
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src/axolotl/utils/models.py
CHANGED
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@@ -9,7 +9,7 @@ import bitsandbytes as bnb
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import torch
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import transformers
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from optimum.bettertransformer import BetterTransformer
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-
from peft import PeftConfig, prepare_model_for_kbit_training
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from peft.tuners.lora import QuantLinear
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from transformers import ( # noqa: F401
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AddedToken,
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@@ -667,13 +667,17 @@ def load_model(
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# Qwen doesn't play nicely with LoRA if this is enabled
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skip_prepare_model_for_kbit_training = True
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-
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-
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-
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-
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if cfg.gradient_checkpointing:
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model.gradient_checkpointing_enable()
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-
if
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model = prepare_model_for_kbit_training(
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model, use_gradient_checkpointing=cfg.gradient_checkpointing
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)
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@@ -700,6 +704,7 @@ def load_model(
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model, lora_config = load_adapter(model, cfg, cfg.adapter)
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if cfg.ddp and not load_in_8bit and not (cfg.rl and cfg.load_in_4bit):
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model.to(f"cuda:{cfg.local_rank}")
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if torch.cuda.device_count() > 1 and int(os.getenv("WORLD_SIZE", "1")) == 1:
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LOG.info(f"found linear modules: {repr(linear_names)}")
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lora_target_modules = list(set(lora_target_modules + linear_names))
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lora_config = LoraConfig(
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r=cfg.lora_r,
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lora_alpha=cfg.lora_alpha,
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@@ -807,6 +818,7 @@ def load_lora(model, cfg, inference=False, config_only=False):
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modules_to_save=cfg.lora_modules_to_save if cfg.lora_modules_to_save else None,
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bias="none",
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task_type="CAUSAL_LM",
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)
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if config_only:
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import torch
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import transformers
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from optimum.bettertransformer import BetterTransformer
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+
from peft import LoftQConfig, PeftConfig, prepare_model_for_kbit_training
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from peft.tuners.lora import QuantLinear
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from transformers import ( # noqa: F401
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AddedToken,
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# Qwen doesn't play nicely with LoRA if this is enabled
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skip_prepare_model_for_kbit_training = True
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+
loftq_bits = cfg.peft and cfg.peft.loftq_config and cfg.peft.loftq_config.loftq_bits
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+
if cfg.adapter == "lora" and loftq_bits:
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skip_prepare_model_for_kbit_training = True
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+
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if cfg.adapter in ["lora", "qlora"]:
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if cfg.gradient_checkpointing:
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model.gradient_checkpointing_enable()
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if (
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cfg.load_in_8bit or cfg.load_in_4bit
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) and not skip_prepare_model_for_kbit_training:
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LOG.info("converting PEFT model w/ prepare_model_for_kbit_training")
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model = prepare_model_for_kbit_training(
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model, use_gradient_checkpointing=cfg.gradient_checkpointing
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)
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model, lora_config = load_adapter(model, cfg, cfg.adapter)
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if cfg.ddp and not load_in_8bit and not (cfg.rl and cfg.load_in_4bit):
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# TODO revaldate this conditional
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model.to(f"cuda:{cfg.local_rank}")
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if torch.cuda.device_count() > 1 and int(os.getenv("WORLD_SIZE", "1")) == 1:
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LOG.info(f"found linear modules: {repr(linear_names)}")
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lora_target_modules = list(set(lora_target_modules + linear_names))
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+
lora_config_kwargs = {}
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+
loftq_bits = cfg.peft and cfg.peft.loftq_config and cfg.peft.loftq_config.loftq_bits
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+
if loftq_bits:
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lora_config_kwargs["loftq_config"] = LoftQConfig(loftq_bits=loftq_bits)
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+
lora_config_kwargs["init_lora_weights"] = "loftq"
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+
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lora_config = LoraConfig(
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r=cfg.lora_r,
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lora_alpha=cfg.lora_alpha,
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modules_to_save=cfg.lora_modules_to_save if cfg.lora_modules_to_save else None,
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bias="none",
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task_type="CAUSAL_LM",
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**lora_config_kwargs,
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)
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if config_only:
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tests/test_validation.py
CHANGED
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@@ -32,16 +32,6 @@ class ValidationTest(BaseValidation):
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Test the validation module
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"""
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-
def test_load_4bit_deprecate(self):
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cfg = DictDefault(
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{
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"load_4bit": True,
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}
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)
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-
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with pytest.raises(ValueError):
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validate_config(cfg)
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-
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def test_batch_size_unused_warning(self):
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cfg = DictDefault(
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{
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Test the validation module
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"""
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def test_batch_size_unused_warning(self):
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cfg = DictDefault(
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{
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