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create-training-pipeline-tabular-classification.js
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create-training-pipeline-tabular-classification.js
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/*
* Copyright 2020 Google LLC
*
* Licensed under the Apache License, Version 2.0 (the "License");
* you may not use this file except in compliance with the License.
* You may obtain a copy of the License at
*
* https://www.apache.org/licenses/LICENSE-2.0
*
* Unless required by applicable law or agreed to in writing, software
* distributed under the License is distributed on an "AS IS" BASIS,
* WITHOUT WARRANTIES OR CONDITIONS OF ANY KIND, either express or implied.
* See the License for the specific language governing permissions and
* limitations under the License.
*/
'use strict';
async function main(
datasetId,
modelDisplayName,
trainingPipelineDisplayName,
targetColumn,
project,
location = 'us-central1'
) {
// [START aiplatform_create_training_pipeline_tables_classification]
/**
* TODO(developer): Uncomment these variables before running the sample.\
* (Not necessary if passing values as arguments)
*/
// const datasetId = 'YOUR_DATASET_ID';
// const modelDisplayName = 'YOUR_MODEL_DISPLAY_NAME';
// const trainingPipelineDisplayName = 'YOUR_TRAINING_PIPELINE_DISPLAY_NAME';
// const targetColumn = 'YOUR_TARGET_COLUMN';
// const project = 'YOUR_PROJECT_ID';
// const location = 'YOUR_PROJECT_LOCATION';
const aiplatform = require('@google-cloud/aiplatform');
const {
definition,
} = aiplatform.protos.google.cloud.aiplatform.v1beta1.schema.trainingjob;
// Imports the Google Cloud Pipeline Service Client library
const {PipelineServiceClient} = aiplatform;
// Specifies the location of the api endpoint
const clientOptions = {
apiEndpoint: 'us-central1-aiplatform.googleapis.com',
};
// Instantiates a client
const pipelineServiceClient = new PipelineServiceClient(clientOptions);
async function createTrainingPipelineTablesClassification() {
// Configure the parent resource
const parent = `projects/${project}/locations/${location}`;
const transformations = [
{auto: {column_name: 'sepal_width'}},
{auto: {column_name: 'sepal_length'}},
{auto: {column_name: 'petal_length'}},
{auto: {column_name: 'petal_width'}},
];
const trainingTaskInputsObj = new definition.AutoMlTablesInputs({
targetColumn: targetColumn,
predictionType: 'classification',
transformations: transformations,
trainBudgetMilliNodeHours: 8000,
disableEarlyStopping: false,
optimizationObjective: 'minimize-log-loss',
});
const trainingTaskInputs = trainingTaskInputsObj.toValue();
const modelToUpload = {displayName: modelDisplayName};
const inputDataConfig = {
datasetId: datasetId,
fractionSplit: {
trainingFraction: 0.8,
validationFraction: 0.1,
testFraction: 0.1,
},
};
const trainingPipeline = {
displayName: trainingPipelineDisplayName,
trainingTaskDefinition:
'gs://google-cloud-aiplatform/schema/trainingjob/definition/automl_tables_1.0.0.yaml',
trainingTaskInputs,
inputDataConfig,
modelToUpload,
};
const request = {
parent,
trainingPipeline,
};
// Create training pipeline request
const [response] = await pipelineServiceClient.createTrainingPipeline(
request
);
console.log('Create training pipeline tabular classification response');
console.log(`Name : ${response.name}`);
console.log('Raw response:');
console.log(JSON.stringify(response, null, 2));
}
createTrainingPipelineTablesClassification();
// [END aiplatform_create_training_pipeline_tables_classification]
}
process.on('unhandledRejection', err => {
console.error(err.message);
process.exitCode = 1;
});
main(...process.argv.slice(2));