I want to know the correct way to start a flask application. The docs show two different commands:
$ flask -a sample run and
$ python3.4 sample.py produce the same result and run the application correctly.
What is the difference between the two and which should be used to run a Flask application?
08 Answers
The flask command is a CLI for interacting with Flask apps. The docs describe how to use CLI commands and add custom commands. The flask run command is the preferred way to start the development server.
Never use this command to deploy publicly, use a production WSGI server such as Gunicorn, uWSGI, Waitress, or mod_wsgi.
Set the FLASK_APP environment variable to point the command at your app. It can point to an import name or file name. It will automatically detect an app instance or an app factory called create_app. Set FLASK_ENV=development to run with the debugger and reloader.
$ export FLASK_APP=sample $ export FLASK_ENV=development $ flask run On Windows CMD, use set instead of export.
> set FLASK_APP=sample For PowerShell, use $env:.
> $env:FLASK_APP = "sample" The python sample.py command runs a Python file and sets __name__ == "__main__". If the main block calls app.run(), it will run the development server. If you use an app factory, you could also instantiate an app instance at this point.
if __name__ == "__main__": app = create_app() app.run(debug=True) Both these commands ultimately start the Werkzeug development server, which as the name implies starts a simple HTTP server that should only be used during development. You should prefer using the flask run command over the app.run() method.
Latest documentation has the following example assuming you want to run hello.py(using .py file extension is optional):
Unix, Linux, macOS, etc.:
$ export FLASK_APP=hello $ flask run Windows:
> set FLASK_APP=hello > flask run 0you just need to run this command
python app.py
(app.py is your desire flask file)
but make sure your .py file has the following flask settings(related to port and host)
from flask import Flask, request from flask_restful import Resource, Api import sys import os app = Flask(__name__) api = Api(app) port = 5100 if sys.argv.__len__() > 1: port = sys.argv[1] print("Api running on port : {} ".format(port)) class topic_tags(Resource): def get(self): return {'hello': 'world world'} api.add_resource(topic_tags, '/') if __name__ == '__main__': app.run(host="0.0.0.0", port=port) For Linux/Unix/MacOS :-
export FLASK_APP = sample.py flask run For Windows :-
python sample.py OR set FLASK_APP = sample.py flask run it will work in cmd only if you type
> pipenv shell start subshell in virtual environment first then type
> set FLASK_APP=hello > flask run The very simples automatic way without exporting anything is using python app.py see the example here
from flask import ( Flask, jsonify ) # Function that create the app def create_app(test_config=None ): # create and configure the app app = Flask(__name__) # Simple route @app.route('/') def hello_world(): return jsonify({ "status": "success", "message": "Hello World!" }) return app # do not forget to return the app APP = create_app() if __name__ == '__main__': # APP.run(host='0.0.0.0', port=5000, debug=True) APP.run(debug=True) Please use the simplified form:
$ FLASK_APP=sample flask run Run as API service
from flask import Flask class A: def one(port): app = Flask(__name__) app.run(port=port) print("something") one(port=2222) output:
* Running on (Press CTRL+C to quit)