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  An embedding model to classify images into FLUX generated images and non-flux photographs.
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- The embeddings are 128 dimensional and can be used in another classifier to classify.
 
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  The model can load Fourier transformed images of size 512x512 which are then fed into the model and a 128 length output vector is produced.
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  The steps to create the embeddings can be described as:
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  3. Input the images into the model using predict.
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  4. The output will be a 128-length vector for use in classification models.
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- The preprocessing code along with the predict can calculate the embeddings for classification.
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  ```python
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- # load an image and apply the fourier transform
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  import numpy as np
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  from PIL import Image
 
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  An embedding model to classify images into FLUX generated images and non-flux photographs.
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+ The embeddings are 128 dimensional and can be used in another classifier to classify. Current classifiers can classify up to 83% accuracy.
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+ XGBoost has an F1 = 0.83 and KNN F1 = 0.87
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  The model can load Fourier transformed images of size 512x512 which are then fed into the model and a 128 length output vector is produced.
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  The steps to create the embeddings can be described as:
 
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  3. Input the images into the model using predict.
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  4. The output will be a 128-length vector for use in classification models.
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+ The preprocessing code along with predict can calculate the embeddings for classification.
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  ```python
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+ # load an image and apply the Fourier transform
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  import numpy as np
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  from PIL import Image