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import gradio as gr | |
import datasets | |
import transformers | |
import torch | |
from transformers import AutoFeatureExtractor, AutoModelForImageClassification | |
dataset = datasets.load_dataset('beans') | |
extractor = AutoFeatureExtractor.from_pretrained("saved_model_files") | |
model = AutoModelForImageClassification.from_pretrained("saved_model_files") | |
labels = dataset['train'].features['labels'].names | |
def classify(im): | |
features = extractor(im, return_tensors='pt') | |
with torch.no_grad(): | |
logits = model(**features).logits | |
probability = torch.nn.functional.softmax(logits, dim=-1) | |
probs = probability[0].detach().numpy() | |
confidences = {label: float(probs[i]) for i, label in enumerate(labels)} | |
return confidences | |
gr.Interface(fn = classify, | |
inputs = "image", | |
outputs = "label", | |
examples = "examples", | |
title='Leaf classification on beans dataset', | |
description='Fine-tuning a ViT for bean plant health classification' | |
).launch(debug=True) |