Source code for tests.system.amazon.aws.example_emr_notebook_execution
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from __future__ import annotations
from datetime import datetime
from airflow.models.baseoperator import chain
from airflow.models.dag import DAG
from airflow.providers.amazon.aws.operators.emr import (
EmrStartNotebookExecutionOperator,
EmrStopNotebookExecutionOperator,
)
from airflow.providers.amazon.aws.sensors.emr import EmrNotebookExecutionSensor
from providers.tests.system.amazon.aws.utils import ENV_ID_KEY, SystemTestContextBuilder
[docs]DAG_ID = "example_emr_notebook"
# Externally fetched variables:
[docs]EDITOR_ID_KEY = "EDITOR_ID"
[docs]CLUSTER_ID_KEY = "CLUSTER_ID"
[docs]sys_test_context_task = (
SystemTestContextBuilder().add_variable(EDITOR_ID_KEY).add_variable(CLUSTER_ID_KEY).build()
)
with DAG(
dag_id=DAG_ID,
start_date=datetime(2021, 1, 1),
schedule="@once",
catchup=False,
tags=["example"],
) as dag:
[docs] test_context = sys_test_context_task()
env_id = test_context[ENV_ID_KEY]
editor_id = test_context[EDITOR_ID_KEY]
cluster_id = test_context[CLUSTER_ID_KEY]
# [START howto_operator_emr_start_notebook_execution]
start_execution = EmrStartNotebookExecutionOperator(
task_id="start_execution",
editor_id=editor_id,
cluster_id=cluster_id,
relative_path="EMR-System-Test.ipynb",
service_role="EMR_Notebooks_DefaultRole",
)
# [END howto_operator_emr_start_notebook_execution]
notebook_execution_id_1 = start_execution.output
# [START howto_sensor_emr_notebook_execution]
wait_for_execution_start = EmrNotebookExecutionSensor(
task_id="wait_for_execution_start",
notebook_execution_id=notebook_execution_id_1,
target_states={"RUNNING"},
poke_interval=5,
)
# [END howto_sensor_emr_notebook_execution]
# [START howto_operator_emr_stop_notebook_execution]
stop_execution = EmrStopNotebookExecutionOperator(
task_id="stop_execution",
notebook_execution_id=notebook_execution_id_1,
)
# [END howto_operator_emr_stop_notebook_execution]
wait_for_execution_stop = EmrNotebookExecutionSensor(
task_id="wait_for_execution_stop",
notebook_execution_id=notebook_execution_id_1,
target_states={"STOPPED"},
poke_interval=5,
)
finish_execution = EmrStartNotebookExecutionOperator(
task_id="finish_execution",
editor_id=editor_id,
cluster_id=cluster_id,
relative_path="EMR-System-Test.ipynb",
service_role="EMR_Notebooks_DefaultRole",
)
notebook_execution_id_2 = finish_execution.output
wait_for_execution_finish = EmrNotebookExecutionSensor(
task_id="wait_for_execution_finish",
notebook_execution_id=notebook_execution_id_2,
poke_interval=5,
)
chain(
# TEST SETUP
test_context,
# TEST BODY
start_execution,
wait_for_execution_start,
stop_execution,
wait_for_execution_stop,
finish_execution,
# TEST TEARDOWN
wait_for_execution_finish,
)
from dev.tests_common.test_utils.watcher import watcher
# This test needs watcher in order to properly mark success/failure
# when "tearDown" task with trigger rule is part of the DAG
list(dag.tasks) >> watcher()
from dev.tests_common.test_utils.system_tests import get_test_run # noqa: E402
# Needed to run the example DAG with pytest (see: tests/system/README.md#run_via_pytest)
[docs]test_run = get_test_run(dag)