Flask: How to manage different environment databases?

Question

I am working on an app which looks similar to

facebook/
         __init__.py
         feed/
             __init__.py
             business.py
             views.py
             models/
                    persistence.py
                    user.py
         chat/
             __init__.py
             models.py
             business.py
             views.py
         config/
                dev.py
                test.py
                prod.py 

I want to have three environments Dev, Test and Production.
I have the following requirements:
a.) When I start the server python runserver.py, I would like to mention which environment I want to connect - Dev, Test or Production.
b.) Dev & Production should have the schema built and just need to connect to machine
c.) I would also like for my test to connect to sqlite db, and create the schema, run tests

How can I achieve this in a configuration manner so that I do not have to hardcode anything related to database.

Are there any good patterns available in flask?

Currently my runerver.py has hardcoding for environment that I don't like,

app = Flask(__name__)
app.config['SECRET_KEY'] = dev.SECRET_KEY

I am looking for better ideas than I have

Answer 1

Solution I use:

#__init__.py
app = Flask(__name__)
app.config.from_object('settings')
app.config.from_envvar('MYCOOLAPP_CONFIG',silent=True)

On the same level from which application loads:

#settings.py
SERVER_NAME="dev.app.com"
DEBUG=True
SECRET_KEY='xxxxxxxxxx'


#settings_production.py
SERVER_NAME="app.com"
DEBUG=False

So. If Environment Variable MYCOOLAPP_CONFIG does not exist -> only settings.py will load, which refers to default settings (development server as for me)
This is the reason for "silent=True", second config file not required, while settings.py default for development and with default values for common config keys

If any other settings_file will be loaded in addition to first one values inside it overrides values in original one. (in my example DEBUG and SERVER_NAME will be overrided, while SECRET_KEY stays same for all servers)

The only thing you should discover for yourself depends on the way how you launch your application
Before launching ENVVAR MYCOOLAPP_CONFIG should be set
For example I run with supervisor daemon and on production server I just put this in supervisor config file:

environment=MYCOOLAPP_CONFIG="/home/tigra/mycoolapp/settings_production.py"

With this way you can easily manage all your configuration files, moreover, with this way you can exclude this files from git or any other version control utility

default Linux way is this one in console before launching:
export MYCOOLAPP_CONFIG="/home/tigra/mycoolapp/settings_production.py"

Answer 2

I think this is what your looking for:

http://flask.pocoo.org/docs/config/#configuring-from-files

But also checkout the flask-empty project, it's a boilerplate for flask applications with environment specific configurations.

https://github.com/italomaia/flask-empty

You specify your configurations in config.py like so:

class Dev(Config):
    DEBUG = True
    MAIL_DEBUG = True
    SQLALCHEMY_ECHO = True
    SQLALCHEMY_DATABASE_URI = "sqlite:////tmp/%s_dev.sqlite" % project_name

This inherits the Config class which can contain your defaults. From there, main.py has methods for creating a flask instance from the config.py file, manage.py determines which config is loaded.

Here's a snippet from main.py so you get the idea:

def app_factory(config, app_name=None, blueprints=None):
    app_name = app_name or __name__
    app = Flask(app_name)

    config = config_str_to_obj(config)
    configure_app(app, config)
    configure_blueprints(app, blueprints or config.BLUEPRINTS)
    configure_error_handlers(app)
    configure_database(app)
    configure_views(app)

    return app

And then manage.py handles setup of the environment based upon command line arguments passed, however you can get an idea of how it works (note this requires flask-script):

from flask.ext import script

import commands

if __name__ == "__main__":
    from main import app_factory
    import config

    manager = script.Manager(app_factory)
    manager.add_option("-c", "--config", dest="config", required=False, default=config.Dev)
    manager.add_command("test", commands.Test())
    manager.run() 

From here you could choose the required Config class from an environmental variable, or other method of your choosing.

Answer 3

You can create a "config" module which contains the configuration for each environment. Thereafter the currently running environment can be specified by setting a shell variable.

If you are initializing your flask application in the main init file, the configuration also could be set there. This is how I set my configuration:

def setup_config(app):
    """Set the appropriate config based on the environment settings"""
    settings_map = {'development': DevelopmentSettings,
                    'staging': StagingSettings,
                    'testing': TestingSettings,
                    'production': ProductionSettings}
    env = environ['ENV'].lower()
    settings = settings_map[env]
    app.config.from_object(settings)

Setting up environment variable before running the development server or even the tests can be a hassle, therefore I automate these actions with a makefile.

Also take a look at flask-script http://flask-script.readthedocs.org/en/latest/.