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    [Solved] leaf disease detection using keras

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    • salmanfaris
      salmanfaris last edited by salmanfaris

      @sreu13 said in leaf disease detection using keras:

      AttributeError: 'LabelBinarizer' object has no attribute 'classes_'

      Hi, Can you try downgrade the scikit by typing

      pip install scikit-learn==0.15.2
      

      and are you following any guide or something, if yes can you share that also?

      1 Reply Last reply Reply Quote 0
      • S
        sreu13 last edited by

        @salmanfaris said in leaf disease detection using keras:

        pip install scikit-learn==0.15.2

        tried downgrading, but came up with this error.

        ERROR: Failed building wheel for scikit-learn

        and I've been following Kaggle kernel,
        link-https://www.kaggle.com/emmarex/plant-disease-detection-using-keras

        1 Reply Last reply Reply Quote 0
        • S
          SuperGops last edited by

          I think you need to use the fit or fit_transform function before you predict the classes and use the Binarizer. Have a look at scikit's official documentation for the same.

          https://scikit-learn.org/stable/modules/generated/sklearn.preprocessing.LabelBinarizer.html

          S 1 Reply Last reply Reply Quote 1
          • S
            sreu13 @SuperGops last edited by

            @SuperGops

            i've entered this code,

            def fit_transform(self, n_classes):

            but as I run it, I get the indentation Error given below
            File"C:/Users/admin/Desktop/plant_disease_classification/plant_disease_classification/untitled1.py", line 42
            label_binarizer = LabelBinarizer()
            ^
            IndentationError: expected an indented block

            S 1 Reply Last reply Reply Quote 0
            • S
              SuperGops @sreu13 last edited by

              @sreu13
              fit and fit_transform are actually inbuilt functions found in the scikit-learn library. So I'd suggest you fit your model with the available data using those functions whose application can be found on scikit-learn's documentation and then proceed with the Binarizer.

              S 1 Reply Last reply Reply Quote 1
              • S
                sreu13 @SuperGops last edited by

                @SuperGops
                so basically ,i'll have to restart and retrain the model with fit_transform?

                S 1 Reply Last reply Reply Quote 0
                • S
                  SuperGops @sreu13 last edited by

                  @sreu13 Yup

                  S 1 Reply Last reply Reply Quote 0
                  • A
                    arunksoman last edited by

                    Could you please follow my steps:

                    1. Uninstall your current Python 3.7 version
                    2. Install Python 3.6.5
                    3. If you are using spyder editor make a change to vscode.
                    4. Go to integrated terminal of vscode and create a virtual environment
                    python -m venv venv
                    
                    1. Activate your virtual environment
                    .\venv\Scripts\activate
                    
                    1. Create a requirements.txt over your current working directory. Contents for requirements.txt given below:
                    h5py==2.8.0
                    imutils==0.5.1
                    Keras==2.2.4
                    Keras-Applications==1.0.6
                    Keras-Preprocessing==1.0.5
                    kiwisolver==1.0.1
                    matplotlib==3.0.2
                    numpy==1.15.3
                    opencv-contrib-python==3.4.3.18
                    Pillow==5.3.0
                    PyWavelets==1.0.1
                    scikit-image==0.14.1
                    scikit-learn==0.20.0
                    scipy==1.1.0
                    six==1.11.0
                    sklearn==0.0
                    tensorboard==1.12.0
                    tensorflow==1.12.0
                    termcolor==1.1.0
                    toolz==0.9.0
                    
                    1. Then install necessary packages using requirements.txt file
                    pip install -r requirements.txt
                    
                    1. Then run your code within this venv and say what happened as reply here.
                    S 2 Replies Last reply Reply Quote 0
                    • S
                      sreu13 @SuperGops last edited by

                      @SuperGops
                      i also have another pickle file "label_transform", which I got as an output from referring the initial code from gaggle, is there any use of this file?

                      label_binarizer = LabelBinarizer()
                      image_labels = label_binarizer.fit_transform(label_list)
                      pickle.dump(label_binarizer,open('label_transform.pkl', 'wb'))
                      n_classes = len(label_binarizer.classes_)
                      

                      Kaggle >https://www.kaggle.com/emmarex/plant-disease-detection-using-keras/data

                      1 Reply Last reply Reply Quote 0
                      • S
                        sreu13 @arunksoman last edited by

                        @arunksoman
                        i'll follow this proceedure, but would I be able to deploy this code in raspberry pi 4?

                        A 1 Reply Last reply Reply Quote 0
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