112

I have a Flask server running in standalone mode (using app.run()). But, I don't want any messages in the console, like

127.0.0.1 - - [15/Feb/2013 10:52:22] "GET /index.html HTTP/1.1" 200 -
...

How do I disable verbose mode?

2
  • So now you have an app kicking off threads (which are difficult enough to debug themselves) and now you're going to suppress logging on top of that? Eesh, sounds like the opposite of what I'd do.. The more verbose your logging the better (obviously as long as it's relevant ;)). Feb 15 '13 at 15:25
  • 7
    @DemianBrecht The thing is, the logs are send to stderr but they are just logging each HTTP transaction, kinda irrelevant for me...
    – ATOzTOA
    Feb 15 '13 at 15:42

12 Answers 12

164

You can set level of the Werkzeug logger to ERROR, in that case only errors are logged:

import logging
log = logging.getLogger('werkzeug')
log.setLevel(logging.ERROR)

Here is a fully working example tested on OSX, Python 2.7.5, Flask 0.10.0:

from flask import Flask
app = Flask(__name__)

import logging
log = logging.getLogger('werkzeug')
log.setLevel(logging.ERROR)

@app.route("/")
def hello():
    return "Hello World!"

if __name__ == "__main__":
    app.run()
6
  • 9
    This doesn't seem to stop HTTP logs going to stderr; It DOES stop the "starting" message (which clearly has the "werkzeug" module name in the log format".
    – rsb
    Jul 28 '15 at 20:05
  • 3
    Works for me. The request debug messages are supressed. Using Python 3.5.2, Flask 0.12 and Werkzeug 0.11.11 Jan 12 '17 at 10:03
  • 5
    Also works using Python 3.6, Flask 0.12 and Werkzeug 0.11.15.
    – vallentin
    Jan 21 '17 at 14:17
  • 8
    Unfortunately no longer fully works due to Flask using click.secho
    – Peter
    Aug 9 '18 at 0:09
  • 3
    Changing the level of logging shouldn't be the solution to avoid logging one particular request only.
    – gented
    Jun 12 '19 at 13:15
16

This solution provides you a way to get your own prints and stack traces but without information level logs from flask suck as 127.0.0.1 - - [15/Feb/2013 10:52:22] "GET /index.html HTTP/1.1" 200

from flask import Flask
import logging

app = Flask(__name__)
log = logging.getLogger('werkzeug')
log.disabled = True
1
  • This works when running my server locally, but strangely on Heroku, it doesn't.
    – Garrett
    Jan 9 '20 at 22:44
16

None of the other answers worked correctly for me, but I found a solution based off Peter's comment. Flask apparently no longer uses logging for logging, and has switched to the click package. By overriding click.echo and click.secho I eliminated Flask's startup message from app.run().

import logging

import click
from flask import Flask

app = Flask(__name__)

log = logging.getLogger('werkzeug')
log.setLevel(logging.ERROR)

def secho(text, file=None, nl=None, err=None, color=None, **styles):
    pass

def echo(text, file=None, nl=None, err=None, color=None, **styles):
    pass

click.echo = echo
click.secho = secho

@app.route("/")
def hello():
    return "Hello World!"

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

Between setting the logging level to ERROR and overriding the click methods with empty functions, all non-error log output should be prevented.

1
  • This should be the accepted answer for most recent Flask versions
    – alphazeta
    Aug 22 '21 at 12:09
15

To suppress Serving Flask app ...:

os.environ['WERKZEUG_RUN_MAIN'] = 'true'
app.run()
1
  • 3
    This works for me, I used it when testing flask application (using nose2) this removes the clutter in the terminal. Thanks
    – CpK
    May 28 '19 at 16:00
10

@Drewes solution works most of the time, but in some cases, I still tend to get werkzeug logs. If you really don't want to see any of them, I suggest you disabling it like that.

from flask import Flask
import logging

app = Flask(__name__)
log = logging.getLogger('werkzeug')
log.disabled = True
app.logger.disabled = True

For me it failed when abort(500) was raised.

9

In case you are using WSGI server , please set the log to None

gevent_server = gevent.pywsgi.WSGIServer(("0.0.0.0", 8080), app,log = None)
1
  • This is the only solution that worked for me, and I use Flask with WSGIServer
    – Woody
    Apr 2 '20 at 21:07
8

Late answer but I found a way to suppress EACH AND EVERY CONSOLE MESSAGE (including the ones displayed during an abort(...) error).

import os
import logging

logging.getLogger('werkzeug').disabled = True
os.environ['WERKZEUG_RUN_MAIN'] = 'true'

This is basically a combination of the answers given by Slava V and Tom Wojcik

7

Another reason you may want to change the logging output is for tests, and redirect the server logs to a log file.

I couldn't get the suggestion above to work either, it looks like loggers are setup as part of the app starting. I was able to get it working by changing the log levels after starting the app:

... (in setUpClass)
server = Thread(target=lambda: app.run(host=hostname, port=port, threaded=True))
server.daemon = True
server.start()
wait_for_boot(hostname, port)  # curls a health check endpoint

log_names = ['werkzeug']
app_logs = map(lambda logname: logging.getLogger(logname), log_names)
file_handler = logging.FileHandler('log/app.test.log', 'w')

for app_log in app_logs:
    for hdlr in app_log.handlers[:]:  # remove all old handlers
        app_log.removeHandler(hdlr)

    app_log.addHandler(file_handler)

Unfortunately the * Running on localhost:9151 and the first health check is still printed to standard out, but when running lots of tests it cleans up the output a ton.

"So why log_names?", you ask. In my case there were some extra logs I needed to get rid of. I was able to find which loggers to add to log_names via:

from flask import Flask
app = Flask(__name__)

import logging
print(logging.Logger.manager.loggerDict)

Side note: It would be nice if there was a flaskapp.getLogger() or something so this was more robust across versions. Any ideas?

Some more key words: flask test log remove stdout output

thanks to:

0
4

I spent absolute ages trying to get rid of these response logs with all the different solutions, but as it turns out it wasn't Flask / Werkzeug but Gunicorn access logs dumped on stderr...

The solution was replacing the default access log handler with NullHandler by adding this block in the Gunicorn config file:

logconfig_dict = {
    "version": 1,
    "disable_existing_loggers": False,
    "handlers": {
        "console": {"class": "logging.StreamHandler", "level": "INFO"},
        "null": {"class": "logging.NullHandler"},
    },
    "loggers": {
        "gunicorn.error": {"level": "INFO", "propagate": False, "handlers": ["console"]},
        "gunicorn.access": {"level": "INFO", "propagate": False, "handlers": ["null"]},
    },
}
1
  • this was the only option that worked for me
    – jerryb
    Dec 31 '21 at 20:23
1

somehow none of the above options, including .disabled = True, worked for me.

The following did the trick though:

logging.getLogger('werkzeug').setLevel(logging.CRITICAL)

Using the latest versions as of November 2021 under Python 3.7.3:

pip3 list | grep -E "(connexion|Flask|Werkzeug)"
connexion2               2.10.0
Flask                    2.0.2
Werkzeug                 2.0.2
-1

A brute force way to do it if you really don't want anything to log into the console beside print() statements is to logging.basicConfig(level=logging.FATAL). This would disable all logs that are of status under fatal. It would not disable printing but yeah, just a thought :/

EDIT: I realized it would be selfish of me not to put a link to the documentation I used :) https://docs.python.org/3/howto/logging.html#logging-basic-tutorial

-3

The first point: In according to official Flask documentation, you shouldn't run Flask application using app.run(). The best solution is using uwsgi, so you can disable default flask logs using command "--disable-logging"

For example:

uwsgi --socket 0.0.0.0:8001 --disable-logging --protocol=http -w app:app

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