ParsedBill / app.py
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from PIL import Image
from transformers import DonutProcessor, VisionEncoderDecoderModel
import torch
import re
import gradio as gr
processor = DonutProcessor.from_pretrained("naver-clova-ix/donut-base-finetuned-rvlcdip")
model = VisionEncoderDecoderModel.from_pretrained("naver-clova-ix/donut-base-finetuned-rvlcdip")
def ClassificateDocs(pathimage):
image = Image.open(pathimage)
pixel_values = processor(image, return_tensors="pt").pixel_values
task_prompt = "<s_rvlcdip>"
decoder_input_ids = processor.tokenizer(task_prompt, add_special_tokens=False, return_tensors="pt").input_ids
device = "cuda" if torch.cuda.is_available() else "cpu"
model.to(device)
outputs = model.generate(
pixel_values.to(device),
decoder_input_ids=decoder_input_ids.to(device),
max_length=model.decoder.config.max_position_embeddings,
pad_token_id=processor.tokenizer.pad_token_id,
eos_token_id=processor.tokenizer.eos_token_id,
use_cache=True,
bad_words_ids=[[processor.tokenizer.unk_token_id]],
return_dict_in_generate=True,
)
sequence = processor.batch_decode(outputs.sequences)[0]
sequence = sequence.replace(processor.tokenizer.eos_token, "").replace(processor.tokenizer.pad_token, "")
sequence = re.sub(r"<.*?>", "", sequence, count=1).strip() # remove first task start token
return processor.token2json(sequence)
ClassificateDocs("/content/Factura3.jpeg")
demo = gr.Blocks()
gradio_app = gr.Interface(
fn=ClassificateDocs,
inputs=[
gr.Image(type='filepath')
],
outputs="text",
)
if __name__ == "__main__":
gradio_app.launch()