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import numpy as np # linear algebra | |
import pandas as pd # data processing, CSV file I/O (e.g. pd.read_csv) | |
import os | |
for dirname, _, filenames in os.walk('/kaggle/input'): | |
for filename in filenames: | |
print(os.path.join(dirname, filename)) | |
from fastai.vision.all import * | |
import gradio as gr | |
share = True | |
def is_cat(x): return x[0].isupper() | |
learn = load_learner('model.pkl') | |
categories = ('Dog', 'Cat') | |
def classify_image(img): | |
pred,idx,probs = learn.predict(img) | |
return dict(zip(categories, map(float, probs))) | |
image = "image" | |
label = "label" | |
intf = gr.Interface(fn=classify_image, inputs=image, outputs=label) | |
intf.launch(inline=False, share = True) |