unbias-one / img2txt.py
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from transformers import pipeline
from PIL import Image
import os
pretrained_img_model = "nlpconnect/vit-gpt2-image-captioning"
def load_image_pipeline(img_path):
img_path_read = Image.fromarray(img_path)
img_path_read.save("temp_img.jpg")
image_to_text = pipeline("image-to-text", model=pretrained_img_model, framework="pt")
generated_text = image_to_text("temp_img.jpg")[0]["generated_text"]
os.remove("temp_img.jpg")
return generated_text
if __name__=="__main__":
imgpath = r"C:\Users\Shringar\Pictures\ar.jpg"
img_text_generated = load_image_pipeline(imgpath)
print(img_text_generated)