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This PR adds BigQuery setup notes for the hspec test suite. PR-URL: https://github.com/hasura/graphql-engine-mono/pull/4444 GitOrigin-RevId: 4d3ea3315e60dedf47f6236ea79e6fa4945fa8f0
301 lines
15 KiB
Markdown
301 lines
15 KiB
Markdown
# Python Integration Test Suite
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This document describes the Python integration test suite. Please consult
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the `server/CONTRIBUTING` document for general information on the overall
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test setup and other testing suites.
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This document describes running and writing tests, as well as some
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information on how to update test dependencies.
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## Running tests
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Tests can be run using the `dev.sh` script or directly using `pytest`.
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Please note that running the `BigQuery` tests requires a few manual steps.
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### Running tests via dev.sh
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The easiest way to run the test suite is to do:
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```sh
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scripts/dev.sh test --integration
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```
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NOTE: this only runs the tests for Postgres. If you want to run tests
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for a different backend, use:
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```sh
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scripts/dev.sh test --integration --backend mssql
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```
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Available options are documented in `scripts/parse-pytest-backend`:
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- postgres (default)
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- bigquery (see section below)
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- citus
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- mssql
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- mysql
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#### Filtering tests
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You can filter tests by using `-k <name>`. Note that `<name>` is case-
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insensitive.
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```sh
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scripts/dev.sh test --integration --backend mssql -k MSSQL
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```
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Note that you can also use expressions here, for example:
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```sh
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scripts/dev.sh test --integration --backend mssql -k "MSSQL and not Permission"
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```
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See [pytest docs](https://docs.pytest.org/en/6.2.x/usage.html#specifying-tests-selecting-tests)
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for more details.
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#### Failures
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If you want to stop after the first test failure you can pass `-x`:
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```sh
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scripts/dev.sh test --integration --backend mssql -k MSSQL -x
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```
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#### Verbosity
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You can increase or decrease the log verbosity by adding `-v` or `-q`
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to the command.
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### Running tests directly
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WARNING: running tests manually will force skipping of some tests. `dev.sh`
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deals with setting up some environment variables which decide how and if
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some of the tests are executed.
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1. To run the Python tests, you’ll need to install the necessary Python dependencies first. It is recommended that you do this in a self-contained Python venv, which is supported by Python 3.3+ out of the box. To create one, run:
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```
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python3 -m venv .python-venv
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```
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(The second argument names a directory where the venv sandbox will be created; it can be anything you like, but `.python-venv` is `.gitignore`d.)
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With the venv created, you can enter into it in your current shell session by running:
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```
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source .python-venv/bin/activate
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```
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(Source `.python-venv/bin/activate.fish` instead if you are using `fish` as your shell.)
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2. Install the necessary Python dependencies into the sandbox:
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```
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pip3 install -r tests-py/requirements.txt
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```
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3. Install the dependencies for the Node server used by the remote schema tests:
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```
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(cd tests-py/remote_schemas/nodejs && npm ci)
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```
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4. Start an instance of `graphql-engine` for the test suite to use:
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```
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env EVENT_WEBHOOK_HEADER=MyEnvValue \
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WEBHOOK_FROM_ENV=http://localhost:5592 \
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SCHEDULED_TRIGGERS_WEBHOOK_DOMAIN=http://127.0.0.1:5594 \
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cabal new-run -- exe:graphql-engine \
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--database-url='postgres://<user>:<password>@<host>:<port>/<dbname>' \
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serve --stringify-numeric-types
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```
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Optionally, replace the `--database-url` parameter with `--metadata-database-url` to enable testing against multiple sources.
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The environment variables are needed for a couple of tests, and the `--stringify-numeric-types` option is used to avoid the need to do floating-point comparisons.
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5. Optionally, add more sources to test against:
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If the tests include more sources (e.g., by using `-k MSSQL or MySQL`), then you can use the following commands to add sources to your running graphql instance:
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```
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# Add a Postgres source
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curl "$METADATA_URL" \
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--data-raw '{"type":"pg_add_source","args":{"name":"default","configuration":{"connection_info":{"database_url":"'"$POSTGRES_DB_URL"'","pool_settings":{}}}}}'
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# Add a SQL Server source
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curl "$METADATA_URL" \
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--data-raw '{"type":"mssql_add_source","args":{"name":"mssql","configuration":{"connection_info":{"connection_string":"'"$MSSQL_DB_URL"'","pool_settings":{}}}}}'
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# Optionally verify sources have been added
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curl "$METADATA_URL" --data-raw '{"type":"export_metadata","args":{}}'
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```
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6. With the server running, run the test suite:
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```
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cd tests-py
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pytest --hge-urls http://localhost:8080 \
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--pg-urls 'postgres://<user>:<password>@<host>:<port>/<dbname>'
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```
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This will run all the tests, which can take a couple minutes (especially since some of the tests are slow). You can configure `pytest` to run only a subset of the tests; see [the `pytest` documentation](https://doc.pytest.org/en/latest/usage.html) for more details.
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Some other useful points of note:
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- It is recommended to use a separate Postgres database for testing, since the tests will drop and recreate the `hdb_catalog` schema, and they may fail if certain tables already exist. (It’s also useful to be able to just drop and recreate the entire test database if it somehow gets into a bad state.)
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- You can pass the `-v` or `-vv` options to `pytest` to enable more verbose output while running the tests and in test failures. You can also pass the `-l` option to display the current values of Python local variables in test failures.
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- Tests can be run against a specific backend (defaulting to Postgres) with the `backend` flag, for example:
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```
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pytest --hge-urls http://localhost:8080 \
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--pg-urls 'postgres://<user>:<password>@<host>:<port>/<dbname>'
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--backend mssql -k TestGraphQLQueryBasicCommon
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```
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For more details, please consult `pytest --help`.
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### Running BigQuery tests
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Running integration tests against a BigQuery data source is a little more involved due to the necessary service account requirements:
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```
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HASURA_BIGQUERY_PROJECT_ID=# the project ID of the service account
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HASURA_BIGQUERY_SERVICE_ACCOUNT_EMAIL=# eg. "<<SERVICE_ACCOUNT_NAME>>@<<PROJECT_NAME>>.iam.gserviceaccount.com"
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HASURA_BIGQUERY_SERVICE_KEY=# the service account key
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```
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Before running the test suite:
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1. Ensure you have access to a [Google Cloud Console service account](https://cloud.google.com/iam/docs/creating-managing-service-accounts#creating). Store the project ID and account email in `HASURA_BIGQUERY_PROJECT_ID` variable.
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2. [Create and download a new service account key](https://cloud.google.com/iam/docs/creating-managing-service-account-keys). Store the contents of file in a `HASURA_BIGQUERY_SERVICE_KEY` variable.
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```bash
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export HASURA_BIGQUERY_SERVICE_KEY=$(cat /path/to/service/account)
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```
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3. [Login and activate the service account](https://cloud.google.com/sdk/gcloud/reference/auth/activate-service-account), if it is not already activated.
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4. Verify the service account is accessible via the [BigQuery API](https://cloud.google.com/bigquery/docs/reference/rest):
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1. Run the following command:
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```bash
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source scripts/verify-bigquery-creds.sh $HASURA_BIGQUERY_PROJECT_ID $HASURA_BIGQUERY_SERVICE_KEY $HASURA_BIGQUERY_SERVICE_ACCOUNT_EMAIL
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```
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If the query succeeds, the service account is setup correctly to run tests against BigQuery locally.
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5. Finally, run the BigQuery test suite with `HASURA_BIGQUERY_SERVICE_KEY` and `HASURA_BIGQUERY_PROJECT_ID` environment variables set. For example:
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```
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scripts/dev.sh test --integration --backend bigquery -k TestGraphQLQueryBasicBigquery
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```
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*Note to Hasura team: a service account is already setup for internal use, please check the wiki for further details.*
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## Tests structure
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- Tests are grouped as test classes in test modules (names starting with `test_`)
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- The configuration files (if needed) for the tests in a class are usually kept in one folder.
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- The folder name is usually either the `dir` variable or the `dir()` function
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- Some tests (like in `test_graphql_queries.py`) requires a setup and teardown per class.
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- Here we are extending the `DefaultTestSelectQueries` class.
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- This class defines a fixture which will run the configurations in `setup.yaml` and `teardown.yaml` once per class
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- Extending test class should define a function name `dir()`, which returns the configuration folder
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- For mutation tests (like in `test_graphql_mutations.py`)
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- We need a `schema_setup` and `schema_teardown` per class
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- And `values_setup` and `values_teardown` per test
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- Doing schema setup and teardown per test is expensive.
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- We are extending the `DefaultTestMutations` class for this.
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- This class defines a fixture which will run the configuration in `setup.yaml` and `teardown.yaml` once per class.
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- Another fixture defined in this class runs the configuration in `values_setup.yaml` and `values_teardown.yaml` once per class.
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## Writing python tests
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1. Check whether the test you intend to write already exists in the test suite, so that there will be no
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duplicate tests or the existing test will just need to be modified.
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2. All the tests use setup and teardown, the setup step is used to initialize the graphql-engine
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and the database in a certain state after which the tests should be run. After the tests are run,
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the state needs to be cleared, which should be done in the teardown step. The setup and teardown
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is localised for every python test class.
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See `TestCreateAndDelete` in [test_events.py](test_events.py)
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for reference.
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3. The setup and teardown can be configured to run before and after every test in a test class
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or run before and after running all the tests in a class. Depending on the use case, there
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are different fixtures like `per_class_tests_db_state`,`per_method_tests_db_state` defined in the [conftest.py](conftest.py) file.
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4. Sometimes, it's required to run the graphql-engine with in a different configuration only
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for a particular set of tests. In this case, these tests should be run only when the graphql-engine
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is run with the said configuration and should be skipped in other graphql-engine configurations. This
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can be done by accepting a new command-line flag from the `pytest` command and depending on the value or
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presence of the flag, the tests should be run accordingly. After adding this kind of a test, a new section
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needs to be added in the [test-server.sh](../../oss-.circleci/test-server.sh). This new section's name should also
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be added in the `server-test-names.txt` file, otherwise the test will not be run in the CI.
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For example,
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The tests in the [test_remote_schema_permissions.py](test_remote_schema_permissions.py)
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are only to be run when the remote schema permissions are enabled in the graphql-engine and when
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it's not set, these tests should be skipped. Now, to run these tests we parse a command line option
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from pytest called (`--enable-remote-schema-permissions`) and the presence of this flag means that
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we need to run these tests. When the tests are run with this command line option, it's assumed that
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the server has enabled remote schema permissions.
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### Adding test support for a new backend
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The current workflow for supporting a new backend in integration tests is as follows:
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1. Add functions to launch and cleanup a server for the new backend. [Example](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-876c076817b4e593cf797bdfa378ac3a24b6dc76c6f6408dd2f27da903bb331dR520-R523).
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2. Connect to the database you've just launched. [Example](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-876c076817b4e593cf797bdfa378ac3a24b6dc76c6f6408dd2f27da903bb331dR554-R557).
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3. Add setup and teardown files:
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1. `setup_<backend>`: for `v1/query` or metadata queries such as `<backend>_track_table`. [Example](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-97ba2b889f4ed620e8bd044f819b1f94f95bfc695a69804519e38a00119337d9).
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2. `schema_setup_<backend>`: for `v2/query` queries such as `<backend>_run_sql`. [Example](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-b34081ef8e1c34492fcf0cf72a8c1d64bcb66944f2ab2efb9ac0812cd7a003c7).
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3. `teardown_<backend>` and `cleardb_<backend>`
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4. **Important:** filename suffixes _**should be the same**_ as the value that’s being passed to `—backend`; that's how the files are looked up.
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4. Specify a `backend` parameter for [the `per_backend_tests` fixture](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-1034b560ce9984643a4aa4edab1d612aa512f1c3c28bbc93364700620681c962R420), parameterised by backend. [Example](https://github.com/hasura/graphql-engine/commit/64d52f5fa333f337ef76ada4e0b6abd49353c457/scripts/dev.sh#diff-40b7c6ad5362e70cafd29a3ac5d0a5387bd75befad92532ea4aaba99421ba3c8R12-R13).
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Note: When teardown is not disabled (via `skip_teardown`(*) , in which case, this phase is skipped entirely), `teardown.yaml` always runs before `schema_teardown.yaml`, even if the tests fail. See `setup_and_teardown` in `server/tests-py/conftest.py` for the full source code/logic.
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(*): See `setup_and_teardown_v1q` and `setup_and_teardown_v2q` in `conftest.py` for more details.
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This means, for example, that if `teardown.yaml` untracks a table, and `schema_teardown.yaml` runs raw SQL to drop the table, both would succeed (assuming the table is tracked/exists).
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**Test suite naming convention**
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The current convention is to indicate the backend(s) tests can be run against in the class name. For example:
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* `TestGraphQLQueryBasicMySQL` for tests that can only be run on MySQL
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* `TestGraphQLQueryBasicCommon` for tests that can be run against more than one backend
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* If a test class doesn't have a suffix specifying the backend, nor does its name end in `Common`, then it is likely a test written pre-v2.0 that
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can only be run on Postgres
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This naming convention enables easier test filtering with [pytest command line flags](https://docs.pytest.org/en/6.2.x/usage.html#specifying-tests-selecting-tests).
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The backend-specific and common test suites are disjoint; for example, run `pytest --integration -k "Common or MySQL" --backend mysql` to run all MySQL tests.
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Note that `--backend` does not interact with the selection of tests. You will generally have to combine `--backend` with `-k`.
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## Updating Python requirements
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The packages/requirements are documented in two files:
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- `server/tests-py/requirements-top-level.txt`
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- `server/tests-py/requirements.txt`
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The `server/tests-py/requirements-top-level.txt` file is the main file. It
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contains the direct dependencies along with version requirements we know
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we should be careful about.
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The `server/tests-py/requirements.txt` file is the _lock_ file. It holds
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version numbers for all direct and transitive dependencies. This file
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can be re-generated by:
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1. alter `server/tests-py/requirements-top-level.txt`
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2. remove `server/tests-py/requirements.txt`
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3. run `dev.sh test --integration`
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4. update `DEVSH_VERSION` in `scripts/dev.sh` to force reinstall
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these dependencies
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Steps 3 can be done manually:
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```sh
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pip3 install -r requirements-top-level.txt
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pip3 freeze > requirements.txt
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```
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