5

So, here's a file I made (flaskblog.py):

from flask import Flask
app = Flask(__name__)

@app.route("/")
def hello():
    return "<h1>Home Page</h1>"

Here's how I first ran it:

$ export FLASK_APP=flaskblog.py
$ flask run

Here's how I ran it in debug mode:

$ export FLASK_APP=flaskblog.py
$ export FLASK_DEBUG=1
$ flask run

Now I want to run the application directly using python. I first updated the .py file:

from flask import Flask
app = Flask(__name__)

@app.route("/")
def hello():
    return "<h1>Home Page</h1>"

if __name__ == "__main__":
    app.run()

This is the command I used to run the python file:

$ python3 flaskblog.py

It worked fine. Now I want to run the application in debug mode. So, I updated the file:

from flask import Flask
app = Flask(__name__)

@app.route("/")
def hello():
    return "<h1>Home Page</h1>"

if __name__ == "__main__":
    app.run(debug=True) #Added ("debug=True") here

Command used to run the file:

$ python3 flaskblog.py

Here's the error:

 * Serving Flask app "flaskblog" (lazy loading)
 * Environment: production
   WARNING: Do not use the development server in a production environment.
   Use a production WSGI server instead.
 * Debug mode: on
 * Running on http://127.0.0.1:5000/ (Press CTRL+C to quit)
 * Restarting with stat
Traceback (most recent call last):
  File "flaskblog.py", line 9, in <module>
    app.run(debug=True)
  File "/usr/local/lib/python3.6/dist-packages/flask/app.py", line 943, in run
    run_simple(host, port, self, **options)
  File "/usr/local/lib/python3.6/dist-packages/werkzeug/serving.py", line 988, in run_simple
    run_with_reloader(inner, extra_files, reloader_interval, reloader_type)
  File "/usr/local/lib/python3.6/dist-packages/werkzeug/_reloader.py", line 332, in run_with_reloader
    sys.exit(reloader.restart_with_reloader())
  File "/usr/local/lib/python3.6/dist-packages/werkzeug/_reloader.py", line 176, in restart_with_reloader
    exit_code = subprocess.call(args, env=new_environ, close_fds=False)
  File "/usr/lib/python3.6/subprocess.py", line 267, in call
    with Popen(*popenargs, **kwargs) as p:
  File "/usr/lib/python3.6/subprocess.py", line 709, in __init__
    restore_signals, start_new_session)
  File "/usr/lib/python3.6/subprocess.py", line 1344, in _execute_child
    raise child_exception_type(errno_num, err_msg, err_filename)
OSError: [Errno 8] Exec format error: '/XXX/XXX/XXX/XXX/XXX/XXX/XXX/XXX/Flask_Blog/flaskblog.py'

I just used "XXX" instead of the actual directories. Any help will be appreciated!

PS: All the code is from this video: https://www.youtube.com/watch?v=MwZwr5Tvyxo&list=PL-osiE80TeTs4UjLw5MM6OjgkjFeUxCYH

11
  • I just followed the steps you mentioned and it works fine on my machine. What OS are you using? Also, did you try deleting the whole directory and starting over from scratch, with a new virtual environment? – Sumit Mar 24 '19 at 9:11
  • 1
    I think you should, it's usually a good idea to use virtual environments anyway as they let you work on multiple Python projects with different dependencies. It's a much cleaner approach overall. Can't be sure it'll fix your problem, but it can't hurt to try. – Sumit Mar 24 '19 at 9:45
  • 2
    Edit the file .../python3.6/site-packages/werkzeug/_reloader.py (use your stack trace to get the full path) and, right before line 176 (the exit_code = ... line), add a new statement print('args: {!r}'.format(args)), then try again. What do you see in the output? – Sumit Mar 24 '19 at 10:02
  • 1
    That's weird, I saw ['/path/to/python3', '/path/to/flaskblog.py'] on my system. It looks like it's trying to run ./flaskblog.py directly on your system rather than python3 flaskblog.py. Can you try adding a shebang (#!/usr/bin/env python3) to flaskblog.py, make the file executable (chmod +x flaskblog.py) and try again? – Sumit Mar 24 '19 at 10:57
  • 1
    @Sumit Wow! It works! Thank you so much. Why was it trying to run it directly rather than python3 flaskblog.py? – sg7610 Mar 24 '19 at 11:18
12

It looks like Flask is trying to run ./flaskblog.py directly for some reason, rather than with the python binary (python3 flaskblog.py), which is not working since flaskblog.py isn't executable.

So just add the following line (shebang) at the top of flaskblog.py

#!/usr/bin/env python3

...and make the file executable:

chmod +x flaskblog.py

Then try again, either with python3 flaskblog.py or directly as ./flaskblog.py.

5
  • How to run it on Docker on Windows? No chmod command here I believe? How to run such commands inside container? – Piotrek Apr 2 '19 at 14:19
  • @Piotrek I've never used Docker, but a quick Google search suggests adding RUN ["chmod", "+x", "flaskblog.py"] to your Dockerfile might work? – Sumit Apr 2 '19 at 14:22
  • 1
    Yes, I've just found that too. Here is a link: github.com/pallets/werkzeug/issues/1482#issuecomment-477437009 Thanks anyway! – Piotrek Apr 2 '19 at 14:27
  • I use a virtualenv and I got this problem too. Running chmod 644 app.py solved the problem. – Logan Yang Jun 17 '19 at 21:38
  • Anyone running into this problem using Docker and Flask - don't try to run the application directly (python app.py). Instead use 'CMD ["flask", "run", "--host=0.0.0.0", "--port=80"]` in your Dockerfile (if you're exposing port 80). – andydavies Jul 2 '19 at 22:39
0

I simply changed the permissions on the .py file from 775 to 664, essentially removing the 'x' from the permissions.

Changed it from:

-rwxrwxr-x 1 ubuntu ubuntu 

to:

-rw-rw-r-- 1 ubuntu ubuntu 
0

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