Updating the input image sizes to have a higher resolution. Currently unclean data is reaching 70% accuracy.
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@@ -120,7 +120,6 @@ test_gen = test_idg.flow_from_directory(
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)
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len(test_gen.filenames)
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score = model.evaluate_generator(test_gen, workers=1, steps=len(test_gen))
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# predicts
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predicts = model.predict_generator(test_gen, verbose=True, workers=1, steps=len(test_gen))
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@@ -129,9 +128,6 @@ predicts = model.predict_generator(test_gen, verbose=True, workers=1, steps=len(
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keras_file = 'finished.h5'
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keras.models.save_model(model, keras_file)
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print("Loss: ", score[0], "Accuracy: ", score[1])
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print(score)
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print(predicts)
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print(type(predicts))
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print(predicts.shape)
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@@ -167,3 +163,4 @@ df_cm = pd.DataFrame(conf_mat, index=[i for i in list(set(reals))],
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plt.figure(figsize=(10, 7))
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sn.heatmap(df_cm, annot=True)
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plt.show()
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@@ -8,7 +8,7 @@ from PIL import ImageFile
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ImageFile.LOAD_TRUNCATED_IMAGES = True
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input_shape = (299, 299, 3)
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input_shape = (244, 244, 3)
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batch_size = 60
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model_name = "MobileNetV2FullDataset"
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