ium_464903/Jenkinsfile4

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pipeline {
agent any
parameters {
string(
defaultValue: 'jakubbg',
description: 'Kaggle username',
name: 'KAGGLE_USERNAME',
trim: false
)
password(
defaultValue: 'e42b293c818e4ecd7b9365ee037af428',
description: 'Kaggle token taken from kaggle.json file, as described in https://github.com/Kaggle/kaggle-api#api-credentials',
name: 'KAGGLE_KEY'
)
}
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triggers {
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upstream(upstreamProjects: 'z-s464903-create-dataset', threshold: hudson.model.Result.SUCCESS)
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}
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stages {
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stage('Build image') {
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steps {
script {
checkout scm
def testImage = docker.build("test-image", "-f Dockerfile2 .")
}
}
}
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stage('Run in container') {
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steps {
script {
docker.image('test-image').inside {
stage('Checkout') {
steps {
// Step: Clone the git repository
checkout scm
}
}
stage('Build') {
steps {
withEnv(["KAGGLE_USERNAME=${params.KAGGLE_USERNAME}",
"KAGGLE_KEY=${params.KAGGLE_KEY}" ]) {
sh 'echo KAGGLE_USERNAME: $KAGGLE_USERNAME'
sh 'kaggle datasets list'
}
}
}
stage('Run ipynb script') {
steps {
sh "mkdir /notebooks"
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sh "cp Biblioteka_DL_trenowanie.ipynb /notebooks/Biblioteka_DL_trenowanie.ipynb"
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archiveArtifacts 'model.keras'
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}
}
}
}
}
}
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}
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}