added model to registry, prediction on s434704
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@ -14,6 +14,7 @@ from tensorflow.keras.models import Model
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from tensorflow.keras.callbacks import EarlyStopping
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from keras.models import Sequential
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import mlflow
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from mlflow.tracking import MlflowClient
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@ -62,6 +63,11 @@ def my_main(epochs, batch_size):
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epochs = int(sys.argv[1]) if len(sys.argv) > 1 else 15
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batch_size = int(sys.argv[2]) if len(sys.argv) > 2 else 16
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mlflow.set_tracking_uri("http://172.17.0.1:5000")
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mlflow.set_experiment("s434742")
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client = MlflowClient()
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with mlflow.start_run():
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@ -71,4 +77,6 @@ with mlflow.start_run():
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mlflow.log_param("batch_size", batch_size)
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mlflow.log_metric("rmse", rmse)
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#mlflow.keras.log_model(model, 'avocado_model.h5')
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mlflow.keras.log_model(keras_model=model, path='avocado_model', signature=infer_signature(X_train, y_train), input_example=X_train.iloc[0])
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mlflow.keras.log_model(keras_model=model, path='avocado_model', registered_model_name="s434742", signature=infer_signature(X_train, y_train), input_example=X_train.iloc[0])
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mlflow.keras.save_model(keras_model=model, path='avocado_model', signature=infer_signature(X_train, y_train), input_example=X_train.iloc[0])
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40
predict-s434704.Jenkinsfile
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predict-s434704.Jenkinsfile
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@ -0,0 +1,40 @@
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pipeline {
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agent {
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dockerfile true
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}
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parameters {
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string(
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defaultValue: 'input_example.json',
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description: 'Input name',
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name: 'INPUT_EXAMPLE',
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trim: false
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)
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buildSelector(
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defaultSelector: lastSuccessful(),
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description: 'Which build to use for copying artifacts for predict',
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name: 'BUILD_SELECTOR_s434704')
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}
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stages{
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stage('copy artifacts from s434704') {
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steps {
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copyArtifacts filter: 'movies_on_streaming_platforms_model/**/*', fingerprintArtifacts: false, projectName: 's434704-training/master', selector: buildParameter('BUILD_SELECTOR_s434704')
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}
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}
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stage('predict data from s434704') {
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steps {
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script {
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sh 'chmod +x predict-s434704.py'
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sh 'python3 predict-s434704.py $INPUT_EXAMPLE'
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}
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}
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}
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}
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}
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13
predict-s434704.py
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predict-s434704.py
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import json
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import sys
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import mlflow
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filename = sys.argv[1]
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model = mlflow.keras.load_model("movies_on_streaming_platforms_model")
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path = 'movies_on_streaming_platforms_model/' + filename
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with open(path) as f:
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data = json.load(f)
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model.predict(data['inputs'])
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