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bracken576
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1f85d6b
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Parent(s):
a702025
updated streamlit and requirements
Browse files- streamlit.py +3 -7
streamlit.py
CHANGED
@@ -7,20 +7,16 @@ import tensorflow as tf
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from keras.preprocessing import image
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#docker build -t streamlit
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# docker compose up
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model = tf.keras.models.load_model("cnnBoneFracRec.h5")
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st.markdown("## Bone Fracture Recognition with TensorFlow")
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# actu_loc = [actu + f"_{loc}" for loc in locations]
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# fore_loc = [fore + f"_{loc}" for loc in locations]
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image_file = st.file_uploader("Upload X-Ray Image", type=['png', 'jpg'])
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if image_file:
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st.image(image_file, caption=None, width=None, use_column_width=None, clamp=False, channels="RGB", output_format="auto")
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target_names = ['Non-Fractured', 'Fractured']
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temp_img = image.load_img(image_file, target_size=(100, 100))
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x = image.img_to_array(temp_img)
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from keras.preprocessing import image
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#docker build -t streamlit
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# docker compose up
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image_file_prev = ""
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model = tf.keras.models.load_model("cnnBoneFracRec.h5")
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st.markdown("## Bone Fracture Recognition with TensorFlow")
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image_file = st.file_uploader("Upload X-Ray Image", type=['png', 'jpg'])
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if image_file_prev != image_file and image_file:
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st.image(image_file, caption=None, width=None, use_column_width=None, clamp=False, channels="RGB", output_format="auto")
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image_file_prev = image_file
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target_names = ['Non-Fractured', 'Fractured']
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temp_img = image.load_img(image_file, target_size=(100, 100))
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x = image.img_to_array(temp_img)
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