184

I have a complex Flask-based web app. There are lots of separate files with view functions. Their URLs are defined with the @app.route('/...') decorator. Is there a way to get a list of all the routes that have been declared throughout my app? Perhaps there is some method I can call on the app object?

11 Answers 11

186

All the routes for an application are stored on app.url_map which is an instance of werkzeug.routing.Map. You can iterate over the Rule instances by using the iter_rules method:

from flask import Flask, url_for

app = Flask(__name__)

def has_no_empty_params(rule):
    defaults = rule.defaults if rule.defaults is not None else ()
    arguments = rule.arguments if rule.arguments is not None else ()
    return len(defaults) >= len(arguments)


@app.route("/site-map")
def site_map():
    links = []
    for rule in app.url_map.iter_rules():
        # Filter out rules we can't navigate to in a browser
        # and rules that require parameters
        if "GET" in rule.methods and has_no_empty_params(rule):
            url = url_for(rule.endpoint, **(rule.defaults or {}))
            links.append((url, rule.endpoint))
    # links is now a list of url, endpoint tuples

See Display links to new webpages created for a bit more information.

7
  • Sweet! Except I had an issue with the line url = url_for(rule.endpoint). I just got this error BuildError: ('DeleteEvent', {}, None). Instead, to get the url I just did url = rule.rule. Any idea why your method doesn't work for me?
    – J-bob
    Nov 11, 2012 at 19:57
  • @J-bob - most likely the route associated with DeleteEvent has a required parameter - you can either special-case that one or filter out any rules where len(rule.arguments) > len(rule.defaults) Nov 11, 2012 at 22:59
  • Oh I think I get it. url_for can't generate the URL for that methid without a parameter, right? OK, but it looks like my method works anyway, it just keeps that portion if the URL as a parameter. Thanks!
    – J-bob
    Nov 12, 2012 at 2:34
  • 1
    This is a great start. Any suggestions for how to create a fully self-documenting flask-based web service, where all of the parameters (such as ?spam="eggs") are listed? Perhaps this info can be extracted from a docstring of an implementing method.
    – Leonid
    Aug 10, 2014 at 4:44
  • 2
    Instead of use url_for(rule.endpoint) use rule.rule that is much better beacause solve cases where you have more than one route for the same method.
    – Zini
    Jul 10, 2015 at 14:39
139

I just met the same question. Those solutions above are too complex. Just open a new shell under your project:

>>> from app import app
>>> app.url_map

The first 'app' is my project script: app.py, another is my web's name.

(this solution is for the tiny web with a little route)

4
  • 1
    This probably does not answer the question directly. But it sure deserves many more upvotes. Mar 29, 2017 at 23:28
  • This answer is great for not requiring you to add any code to your application. I used it to get the answer I wanted in seconds without rebuilding my code.
    – joshdick
    Aug 9, 2018 at 15:19
  • " Is there a way to get a list of all the routes that have been declared throughout my app?" I think this answers the question directly and should be the accepted answer. So easy. Thanks.
    – andho
    Sep 8, 2018 at 5:31
  • 2
    I don't really see how this any simpler or clearer than the accepted answer. It's suggesting the same approach, but takes longer to get to the point and doesn't show how to iterate over the Map instance or access any of the properties of the Rules it contains, without which you can't actually do anything useful.
    – Mark Amery
    Nov 30, 2018 at 18:38
62

I make a helper method on my manage.py:

@manager.command
def list_routes():
    import urllib
    output = []
    for rule in app.url_map.iter_rules():

        options = {}
        for arg in rule.arguments:
            options[arg] = "[{0}]".format(arg)

        methods = ','.join(rule.methods)
        url = url_for(rule.endpoint, **options)
        line = urllib.unquote("{:50s} {:20s} {}".format(rule.endpoint, methods, url))
        output.append(line)

    for line in sorted(output):
        print line

It solves the the missing argument by building a dummy set of options. The output looks like:

CampaignView:edit              HEAD,OPTIONS,GET     /account/[account_id]/campaigns/[campaign_id]/edit
CampaignView:get               HEAD,OPTIONS,GET     /account/[account_id]/campaign/[campaign_id]
CampaignView:new               HEAD,OPTIONS,GET     /account/[account_id]/new

Then to run it:

python manage.py list_routes

For more on manage.py checkout: http://flask-script.readthedocs.org/en/latest/

2
  • 6
    The above works very well. Just change urllib.unquote to urllib.parse.unquote and print line to print(line) and it works in python 3.x as well.
    – squeegee
    Oct 3, 2013 at 19:01
  • 2
    This doesn't work for non-string arguments, I recommend to use John Jiang's answer instead.
    – nico
    Jul 5, 2018 at 19:25
60

Apparently, since version 0.11, Flask has a built-in CLI. One of the built-in commands lists the routes:

FLASK_APP='my_project.app' flask routes
3
  • 2
    flask urls for me (0.12.1). Saw that in flask --help but I don't see routes or urls on the CLI page
    – mrgnw
    May 20, 2019 at 17:39
  • routes seems to be removed in flask 1.1.2
    – Jerry Ji
    Jul 11, 2020 at 4:34
  • 1
    @JerryJi That does not look right. routes is still there in 1.1.2 Aug 11, 2021 at 15:08
44

Similar to Jonathan's answer I opted to do this instead. I don't see the point of using url_for as it will break if your arguments are not string e.g. float

@manager.command
def list_routes():
    import urllib

    output = []
    for rule in app.url_map.iter_rules():
        methods = ','.join(rule.methods)
        line = urllib.unquote("{:50s} {:20s} {}".format(rule.endpoint, methods, rule))
        output.append(line)

    for line in sorted(output):
        print(line)
8

Since you did not specify that it has to be run command-line, the following could easily be returned in json for a dashboard or other non-command-line interface. The result and the output really shouldn't be commingled from a design perspective anyhow. It's bad program design, even if it is a tiny program. The result below could then be used in a web application, command-line, or anything else that ingests json.

You also didn't specify that you needed to know the python function associated with each route, so this more precisely answers your original question.

I use below to add the output to a monitoring dashboard myself. If you want the available route methods (GET, POST, PUT, etc.), you would need to combine it with other answers above.

Rule's repr() takes care of converting the required arguments in the route.

def list_routes():
    routes = []

    for rule in app.url_map.iter_rules():
        routes.append('%s' % rule)

    return routes

The same thing using a list comprehension:

def list_routes():
    return ['%s' % rule for rule in app.url_map.iter_rules()]

Sample output:

{
  "routes": [
    "/endpoint1", 
    "/nested/service/endpoint2", 
    "/favicon.ico", 
    "/static/<path:filename>"
  ]
}
2
  • TypeError: The view function did not return a valid response. The return type must be a string, dict, tuple, Response instance, or WSGI callable, but it was a list.
    – Spooky
    Apr 26, 2021 at 0:04
  • return "\n<br/>\n".join(map(escape, app.url_map.iter_rules())) for a plain HTML.
    – Lenormju
    Jun 15 at 15:39
8

Use cli command in Directory where your flask project is.

flask routes
1
  • 1
    This is the most convenient one, good answer.
    – avocado
    Jun 15, 2021 at 21:22
5

If you need to access the view functions themselves, then instead of app.url_map, use app.view_functions.

Example script:

from flask import Flask

app = Flask(__name__)

@app.route('/foo/bar')
def route1():
    pass

@app.route('/qux/baz')
def route2():
    pass

for name, func in app.view_functions.items():
    print(name)
    print(func)
    print()

Output from running the script above:

static
<bound method _PackageBoundObject.send_static_file of <Flask '__main__'>>

route1
<function route1 at 0x128f1b9d8>

route2
<function route2 at 0x128f1ba60>

(Note the inclusion of the "static" route, which is created automatically by Flask.)

4

You can view all the Routes via flask shell by running the following commands after exporting or setting FLASK_APP environment variable. flask shell app.url_map

3

inside your flask app do:

flask shell
>>> app.url_map
Map([<Rule '/' (OPTIONS, HEAD, GET) -> helloworld>,
 <Rule '/static/<filename>' (OPTIONS, HEAD, GET) -> static>])
1
print(app.url_map)

That, is, if your Flask application name is 'app'.

It's an attribute of the instance of the Flask App.

See https://flask.palletsprojects.com/en/2.1.x/api/#flask.Flask.url_map

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