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import gradio as gr | |
from huggingface_hub import from_pretrained_fastai | |
from fastai.vision.all import * | |
repo_id = "hugginglearners/flowers_101_convnext_model" | |
learn = from_pretrained_fastai(repo_id) | |
labels = learn.dls.vocab | |
def predict(img): | |
img = PILImage.create(img) | |
_pred, _pred_w_idx, probs = learn.predict(img) | |
# gradio doesn't support tensors, so converting to float | |
labels_probs = {labels[i]: float(probs[i]) for i, _ in enumerate(labels)} | |
return labels_probs | |
interface_options = { | |
"title": "Identify which flower it is?", | |
"description": "It’s difficult to fathom just how vast and diverse our natural world is.There are over 5,000 species of mammals, 10,000 species of birds, 30,000 species of fish – and astonishingly, over 400,000 different types of flowers.\n Identify which flower variety it is by uploading your images of flowers.", | |
"interpretation": "default", | |
"layout": "horizontal", | |
"allow_flagging": "never", | |
} | |
demo = gr.Interface( | |
fn=predict, | |
inputs=gr.inputs.Image(shape=(192, 192)), | |
outputs=gr.outputs.Label(num_top_classes=3), | |
**interface_options, | |
) | |
launch_options = { | |
"enable_queue": True, | |
"share": True, | |
} | |
demo.launch(**launch_options) |