ium_464914/Jenkinsfile

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pipeline {
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agent any
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parameters {
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string(name: 'KAGGLE_USERNAME', defaultValue: 'alicjaszulecka', description: 'Kaggle username')
password(name: 'KAGGLE_KEY', defaultValue:'', description: 'Kaggle Key')
string(name: 'CUTOFF', defaultValue: '100', description: 'cut off number')
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}
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stages {
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stage('Git Checkout') {
steps {
checkout scm
}
}
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stage('Download dataset') {
steps {
withEnv(["KAGGLE_USERNAME=${params.KAGGLE_USERNAME}", "KAGGLE_KEY=${params.KAGGLE_KEY}"]) {
sh 'pip install kaggle'
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sh 'kaggle datasets download -d uciml/forest-cover-type-dataset'
sh 'unzip -o forest-cover-type-dataset.zip'
sh 'rm forest-cover-type-dataset.zip'
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}
}
}
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stage('Build') {
steps {
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script {
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withEnv(["KAGGLE_USERNAME=${params.KAGGLE_USERNAME}",
"KAGGLE_KEY=${params.KAGGLE_KEY}" ]) {
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def customImage = docker.build("custom-image")
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customImage.inside {
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sh 'python3 ./IUM_2.py'
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archiveArtifacts artifacts: 'covtype.csv, forest_train.csv, forest_test.csv, forest_val.csv', onlyIfSuccessful: true
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}
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}
}
}
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}
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stage('Train and Predict') {
steps {
def customImage = docker.build("custom-image")
customImage.inside {
sh 'python3 ./model.py'
sh 'python3 ./prediction.py'
archiveArtifacts artifacts: 'model.pth, predictions.txt', onlyIfSuccessful: true
}
}
}
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}
}