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Add aq model
Browse files- app.py +57 -0
- requirements.txt +9 -0
app.py
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import os
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import clip
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import torch
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import logging
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import json
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import pandas as pd
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from PIL import Image
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import gradio as gr
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from autogluon.tabular import TabularPredictor
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predictor = TabularPredictor.load("AutogluonModels/ag-20240615_190835")
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# set logging level
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logging.basicConfig(
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level=logging.INFO,
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format="%(asctime)s - %(name)s - %(levelname)s - %(message)s",
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)
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logger = logging.getLogger("AQ")
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CLIP_MODEL_NAME = "ViT-B/32"
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clip_model, preprocess = clip.load(CLIP_MODEL_NAME, device="cpu")
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def predict_fn(input_img):
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input_img = Image.fromarray(input_img.astype("uint8"), "RGB")
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image = preprocess(input_img).unsqueeze(0)
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with torch.no_grad():
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image_features = clip_model.encode_image(image).numpy()
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input_df = pd.DataFrame(image_features[0].reshape(1, -1))
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quality_score = predictor.predict(input_df).iloc[0]
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logger.info(f"decision: {quality_score}")
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decision_json = json.dumps({"quality_score": quality_score}).encode("utf-8")
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logger.info(f"decision_json: {decision_json}")
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return decision_json
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iface = gr.Interface(
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fn=predict_fn,
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inputs="image",
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outputs="text",
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description="""
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The model returns the probability of the image being a base body. If
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probability > 0.9, the image can be automatically tagged as a base body. If
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probability < 0.2, the image can be automatically REJECTED as NOT as base
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body. All other cases will be submitted for moderation.
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Please flag if you think the decision is wrong.
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""",
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allow_flagging="manual",
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flagging_options=[
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": decision should be accept",
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": decision should be reject",
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": decision should be moderation",
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],
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)
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iface.launch()
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requirements.txt
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torch
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torchvision
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ftfy
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regex
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tqdm
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autogluon
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git+https://github.com/openai/CLIP.git
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scikit-learn==1.3.0
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scipy
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