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import streamlit as st | |
from transformers import pipeline | |
#from datasets import load_dataset, Image | |
from huggingface_hub import from_pretrained_keras | |
import keras | |
loaded_model = keras.saving.load_model("best_model.keras") | |
#model = from_pretrained_keras("jableable/road_model") | |
#pipe = pipeline('sentiment-analysis') | |
#text = st.text_area('enter some text!') | |
#if text: | |
#out = pipe(text) | |
#st.json(out) | |
#loaded_model = keras.saving.load_model("jableable/road_model") | |
#model = from_pretrained_keras("keras-io/ocr-for-captcha") | |
#model.summary() | |
#prediction = model.predict(image) | |
#prediction = tf.squeeze(tf.round(prediction)) | |
#print(f'The image is a {classes[(np.argmax(prediction))]}!') | |
#dataset = load_dataset("beans", split="train") | |
#loaded_img = dataset[0]["image"] | |
#print(loaded_img) | |