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from fastapi import FastAPI, UploadFile, File | |
import torch | |
from transformers import AutoModelForSpeechSeq2Seq, AutoProcessor, pipeline | |
app = FastAPI() | |
device = "cuda:0" if torch.cuda.is_available() else "cpu" | |
torch_dtype = torch.float16 if torch.cuda.is_available() else torch.float32 | |
model_id = "openai/whisper-large-v3" | |
model = AutoModelForSpeechSeq2Seq.from_pretrained( | |
model_id, torch_dtype=torch_dtype, low_cpu_mem_usage=True, use_safetensors=True | |
) | |
model.to(device) | |
processor = AutoProcessor.from_pretrained(model_id) | |
pipe = pipeline( | |
"automatic-speech-recognition", | |
model=model, | |
tokenizer=processor.tokenizer, | |
feature_extractor=processor.feature_extractor, | |
max_new_tokens=128, | |
chunk_length_s=30, | |
batch_size=16, | |
return_timestamps=True, | |
torch_dtype=torch_dtype, | |
device=device, | |
) | |
sample = dataset[0]["audio"] | |
# result = pipe(sample) | |
# print(result["text"]) | |
async def speech_to_text(file : UploadFile = File(...)) | |
if file: | |
contents = await file.read() | |
with open(file.filename, "wb") as f: | |
f.write(contents) | |
converted_result = pipe(file.filename) | |
return { | |
"status": 200, | |
"text": converted_result["text"] | |
} | |
else: | |
return { | |
"status": -1 | |
} | |