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

189 lines
5.9 KiB
Python

from unsloth import FastLanguageModel, FastModel
from transformers import WhisperForConditionalGeneration, WhisperProcessor
import torch
# ruff: noqa
import sys
from pathlib import Path
from peft import PeftModel
import warnings
import requests
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.os_utils import require_package, require_python_package
require_package("ffmpeg", "ffmpeg")
require_python_package("soundfile")
import soundfile as sf
print(f"\n{'='*80}")
print("🔍 SECTION 1: Loading Model and LoRA Adapters")
print(f"{'='*80}")
model, tokenizer = FastModel.from_pretrained(
model_name = "unsloth/whisper-large-v3",
dtype = None, # Leave as None for auto detection
load_in_4bit = False, # Set to True to do 4bit quantization which reduces memory
auto_model = WhisperForConditionalGeneration,
whisper_language = "English",
whisper_task = "transcribe",
# token = "hf_...", # use one if using gated models like meta-llama/Llama-2-7b-hf
)
base_model_class = model.__class__.__name__
# https://github.com/huggingface/transformers/issues/37172
model.generation_config.input_ids = model.generation_config.forced_decoder_ids
model.generation_config.forced_decoder_ids = None
model = FastModel.get_peft_model(
model,
r = 64, # Choose any number > 0 ! Suggested 8, 16, 32, 64, 128
target_modules = ["q_proj", "v_proj"],
lora_alpha = 64,
lora_dropout = 0, # Supports any, but = 0 is optimized
bias = "none", # Supports any, but = "none" is optimized
# [NEW] "unsloth" uses 30% less VRAM, fits 2x larger batch sizes!
use_gradient_checkpointing = "unsloth", # True or "unsloth" for very long context
random_state = 3407,
use_rslora = False, # We support rank stabilized LoRA
loftq_config = None, # And LoftQ
task_type = None, # ** MUST set this for Whisper **
)
print("✅ Model and LoRA adapters loaded successfully!")
print(f"\n{'='*80}")
print("🔍 SECTION 2: Checking Model Class Type")
print(f"{'='*80}")
assert isinstance(model, PeftModel), "Model should be an instance of PeftModel"
print("✅ Model is an instance of PeftModel!")
print(f"\n{'='*80}")
print("🔍 SECTION 3: Checking Config Model Class Type")
print(f"{'='*80}")
def find_lora_base_model(model_to_inspect):
current = model_to_inspect
if hasattr(current, "base_model"):
current = current.base_model
if hasattr(current, "model"):
current = current.model
return current
config_model = find_lora_base_model(model) if isinstance(model, PeftModel) else model
assert (
config_model.__class__.__name__ == base_model_class
), f"Expected config_model class to be {base_model_class}"
print("✅ config_model returns correct Base Model class:", str(base_model_class))
print(f"\n{'='*80}")
print("🔍 SECTION 4: Saving and Merging Model")
print(f"{'='*80}")
with warnings.catch_warnings():
warnings.simplefilter("error") # Treat warnings as errors
try:
model.save_pretrained_merged("whisper", tokenizer)
print("✅ Model saved and merged successfully without warnings!")
except Exception as e:
assert False, f"Model saving/merging failed with exception: {e}"
print(f"\n{'='*80}")
print("🔍 SECTION 5: Loading Model for Inference")
print(f"{'='*80}")
model, tokenizer = FastModel.from_pretrained(
model_name = "./whisper",
dtype = None, # Leave as None for auto detection
load_in_4bit = False, # Set to True to do 4bit quantization which reduces memory
auto_model = WhisperForConditionalGeneration,
whisper_language = "English",
whisper_task = "transcribe",
# token = "hf_...", # use one if using gated models like meta-llama/Llama-2-7b-hf
)
# model = WhisperForConditionalGeneration.from_pretrained("./whisper")
# processor = WhisperProcessor.from_pretrained("./whisper")
print("✅ Model loaded for inference successfully!")
print(f"\n{'='*80}")
print("🔍 SECTION 6: Downloading Sample Audio File")
print(f"{'='*80}")
audio_url = "https://upload.wikimedia.org/wikipedia/commons/5/5b/Speech_12dB_s16.flac"
audio_file = "Speech_12dB_s16.flac"
try:
headers = {
"User-Agent": "Mozilla/5.0 (X11; Linux x86_64) AppleWebKit/537.36 (KHTML, like Gecko) Chrome/91.0.4472.124 Safari/537.36"
}
response = requests.get(audio_url, headers = headers)
response.raise_for_status()
with open(audio_file, "wb") as f:
f.write(response.content)
print("✅ Audio file downloaded successfully!")
except Exception as e:
assert False, f"Failed to download audio file: {e}"
print(f"\n{'='*80}")
print("🔍 SECTION 7: Running Inference")
print(f"{'='*80}")
from transformers import pipeline
import torch
FastModel.for_inference(model)
model.eval()
whisper = pipeline(
"automatic-speech-recognition",
model = model,
tokenizer = tokenizer.tokenizer,
feature_extractor = tokenizer.feature_extractor,
processor = tokenizer,
return_language = True,
torch_dtype = torch.float16,
)
audio_file = "Speech_12dB_s16.flac"
transcribed_text = whisper(audio_file)
# audio, sr = sf.read(audio_file)
# input_features = processor(audio, return_tensors="pt").input_features
# transcribed_text = model.generate(input_features=input_features)
print(f"📝 Transcribed Text: {transcribed_text['text']}")
# Assert the transcription contains the expected reference phrases.
expected_phrases = [
"birch canoe slid on the smooth planks",
"sheet to the dark blue background",
"easy to tell the depth of a well",
"Four hours of steady work faced us",
]
transcribed_lower = transcribed_text["text"].lower()
all_phrases_found = all(phrase.lower() in transcribed_lower for phrase in expected_phrases)
assert all_phrases_found, f"Expected phrases not found in transcription: {transcribed_text['text']}"
print("✅ Transcription contains all expected phrases!")
safe_remove_directory("./unsloth_compiled_cache")
safe_remove_directory("./whisper")