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import data
import torch
import gradio as gr
from models import imagebind_model
from models.imagebind_model import ModalityType
device = "cuda:0" if torch.cuda.is_available() else "cpu"
model = imagebind_model.imagebind_huge(pretrained=True)
model.eval()
model.to(device)
def image_text_zeroshot(image, text_list):
image_paths = [image]
labels = [label.strip(" ") for label in text_list.strip(" ").split("|")]
inputs = {
ModalityType.TEXT: data.load_and_transform_text(labels, device),
ModalityType.VISION: data.load_and_transform_vision_data(image_paths, device),
}
with torch.no_grad():
embeddings = model(inputs)
scores = torch.softmax(
embeddings[ModalityType.VISION] @ embeddings[ModalityType.TEXT].T,
dim=-1
).squeeze(0).tolist()
score_dict = {label:score for label, score in zip(labels, scores)}
return score_dict
inputs = [
gr.inputs.Image(type='file',
label="Input image"),
gr.inputs.Textbox(lines=1,
label="Candidate texts"),
]
iface = gr.Interface(image_text_zeroshot,
inputs,
"label",
examples=[["assets/dog_image.jpg", "A dog|A car|A bird"],
["assets/car_image.jpg", "A dog|A car|A bird"],
["assets/bird_image.jpg", "A dog|A car|A bird"]],
description="""Zeroshot test""",
title="Zero-shot Classification")
iface.launch()