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unslothai--unsloth/tests/saving/language_models/test_merge_model_perplexity_llama-3.2.py
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chore: import upstream snapshot with attribution
2026-07-13 12:59:56 +08:00

242 lines
7.1 KiB
Python

from unsloth import FastLanguageModel, FastVisionModel, UnslothVisionDataCollator
from unsloth.chat_templates import get_chat_template
from trl import SFTTrainer, SFTConfig
from transformers import (
DataCollatorForLanguageModeling,
DataCollatorForSeq2Seq,
TrainingArguments,
)
from datasets import load_dataset, Dataset
import torch
from tqdm import tqdm
import pandas as pd
import multiprocessing as mp
from multiprocessing import Process, Queue
import gc
# ruff: noqa
import sys
from pathlib import Path
REPO_ROOT = Path(__file__).parents[3]
sys.path.insert(0, str(REPO_ROOT))
from tests.utils.cleanup_utils import safe_remove_directory
from tests.utils.perplexity_eval import (
ppl_model,
add_to_comparison,
print_model_comparison,
)
def formatting_prompts_func(examples):
convos = examples["messages"]
texts = [
tokenizer.apply_chat_template(convo, tokenize = False, add_generation_prompt = False)
for convo in convos
]
return {"text": texts}
def load_and_compute_8bit_ppl(
result_queue,
load_in_4bit = False,
load_in_8bit = False,
):
"""Load model and compute perplexity in subprocess"""
from unsloth import FastLanguageModel
from unsloth.chat_templates import get_chat_template
from tests.utils.perplexity_eval import ppl_model
merged_model, merged_tokenizer = FastLanguageModel.from_pretrained(
model_name = "./unsloth_out/merged_llama_text_model",
max_seq_length = 2048,
load_in_4bit = load_in_4bit,
load_in_8bit = load_in_8bit,
)
merged_tokenizer = get_chat_template(
merged_tokenizer,
chat_template = "llama-3.1",
)
# Load dataset fresh in subprocess
dataset_ppl = load_dataset("allenai/openassistant-guanaco-reformatted", split = "eval")
def formatting_prompts_func(examples):
convos = examples["messages"]
texts = [
merged_tokenizer.apply_chat_template(convo, tokenize = False, add_generation_prompt = False)
for convo in convos
]
return {"text": texts}
dataset_ppl = dataset_ppl.map(formatting_prompts_func, batched = True)
ppl_value = ppl_model(merged_model, merged_tokenizer, dataset_ppl)
# Coerce to a plain Python float for cross-process transfer.
if torch.is_tensor(ppl_value):
ppl_value = ppl_value.cpu().item()
elif hasattr(ppl_value, "item"):
ppl_value = ppl_value.item()
else:
ppl_value = float(ppl_value)
result_queue.put(ppl_value)
del merged_model
del merged_tokenizer
del dataset_ppl
torch.cuda.empty_cache()
gc.collect()
if __name__ == "__main__":
mp.set_start_method("spawn", force = True)
if torch.cuda.is_bf16_supported():
compute_dtype = torch.bfloat16
attn_implementation = "flash_attention_2"
else:
compute_dtype = torch.float16
attn_implementation = "sdpa"
model, tokenizer = FastLanguageModel.from_pretrained(
model_name = "unsloth/Llama-3.2-3B-Instruct",
max_seq_length = 2048,
dtype = compute_dtype,
load_in_4bit = True,
load_in_8bit = False,
full_finetuning = False,
attn_implementation = attn_implementation,
)
tokenizer = get_chat_template(
tokenizer,
chat_template = "llama-3.1",
)
from unsloth.chat_templates import standardize_sharegpt
dataset_train = load_dataset("allenai/openassistant-guanaco-reformatted", split = "train")
dataset_ppl = load_dataset("allenai/openassistant-guanaco-reformatted", split = "eval")
dataset_train = dataset_train.map(formatting_prompts_func, batched = True)
dataset_ppl = dataset_ppl.map(formatting_prompts_func, batched = True)
add_to_comparison("Base model 4 bits", ppl_model(model, tokenizer, dataset_ppl))
model = FastLanguageModel.get_peft_model(
model,
r = 16,
target_modules = [
"k_proj",
"q_proj",
"v_proj",
"o_proj",
"gate_proj",
"down_proj",
"up_proj",
],
lora_alpha = 16,
lora_dropout = 0,
bias = "none",
use_gradient_checkpointing = "unsloth",
random_state = 3407,
use_rslora = False,
loftq_config = None,
)
from unsloth import is_bfloat16_supported
trainer = SFTTrainer(
model = model,
tokenizer = tokenizer,
train_dataset = dataset_train,
dataset_text_field = "text",
max_seq_length = 2048,
data_collator = DataCollatorForSeq2Seq(tokenizer = tokenizer),
dataset_num_proc = 2,
packing = False,
args = TrainingArguments(
per_device_train_batch_size = 2,
gradient_accumulation_steps = 4,
warmup_ratio = 0.1,
max_steps = 10,
learning_rate = 2e-4,
fp16 = not is_bfloat16_supported(),
bf16 = is_bfloat16_supported(),
logging_steps = 50,
optim = "adamw_8bit",
lr_scheduler_type = "linear",
seed = 3407,
output_dir = "outputs",
report_to = "none",
),
)
from unsloth.chat_templates import train_on_responses_only
trainer = train_on_responses_only(
trainer,
instruction_part = "<|start_header_id|>user<|end_header_id|>\n\n",
response_part = "<|start_header_id|>assistant<|end_header_id|>\n\n",
)
trainer_stats = trainer.train()
add_to_comparison("Qlora model", ppl_model(model, tokenizer, dataset_ppl))
print("merge and save to local disk")
model.save_pretrained_merged(
save_directory = "./unsloth_out/merged_llama_text_model", tokenizer = tokenizer
)
# print("cleaning")
# del model
# del tokenizer
# torch.cuda.empty_cache()
# gc.collect()
print("Loading merged model in 4 bit for perplexity test")
merged_model, merged_tokenizer = FastLanguageModel.from_pretrained(
model_name = "./unsloth_out/merged_llama_text_model",
max_seq_length = 2048,
load_in_4bit = True,
load_in_8bit = False,
)
add_to_comparison(
"merged model load 4bit", ppl_model(merged_model, merged_tokenizer, dataset_ppl)
)
print("Computing 8-bit model perplexity in subprocess...")
result_queue = mp.Queue()
p = mp.Process(target = load_and_compute_8bit_ppl, args = (result_queue, False, True))
p.start()
p.join()
ppl_8bit = result_queue.get()
add_to_comparison("merged model loaded 8bits", ppl_8bit)
print("Loading merged model in 16 bit for perplexity test")
merged_model, merged_tokenizer = FastLanguageModel.from_pretrained(
model_name = "./unsloth_out/merged_llama_text_model",
max_seq_length = 2048,
load_in_4bit = False,
load_in_8bit = False,
)
add_to_comparison(
"merged model loaded 16bits",
ppl_model(merged_model, merged_tokenizer, dataset_ppl),
)
print_model_comparison()
safe_remove_directory("./outputs")
safe_remove_directory("./unsloth_compiled_cache")
safe_remove_directory("./unsloth_out")