So this is embarrassing. I've got an application that I threw together in Flask and for now it is just serving up a single static HTML page with some links to CSS and JS. And I can't find where in the documentation Flask describes returning static files. Yes, I could use render_template but I know the data is not templatized. I'd have thought send_file or url_for was the right thing, but I could not get those to work. In the meantime, I am opening the files, reading content, and rigging up a Response with appropriate mimetype:

import os.path

from flask import Flask, Response


app = Flask(__name__)
app.config.from_object(__name__)


def root_dir():  # pragma: no cover
    return os.path.abspath(os.path.dirname(__file__))


def get_file(filename):  # pragma: no cover
    try:
        src = os.path.join(root_dir(), filename)
        # Figure out how flask returns static files
        # Tried:
        # - render_template
        # - send_file
        # This should not be so non-obvious
        return open(src).read()
    except IOError as exc:
        return str(exc)


@app.route('/', methods=['GET'])
def metrics():  # pragma: no cover
    content = get_file('jenkins_analytics.html')
    return Response(content, mimetype="text/html")


@app.route('/', defaults={'path': ''})
@app.route('/<path:path>')
def get_resource(path):  # pragma: no cover
    mimetypes = {
        ".css": "text/css",
        ".html": "text/html",
        ".js": "application/javascript",
    }
    complete_path = os.path.join(root_dir(), path)
    ext = os.path.splitext(path)[1]
    mimetype = mimetypes.get(ext, "text/html")
    content = get_file(complete_path)
    return Response(content, mimetype=mimetype)


if __name__ == '__main__':  # pragma: no cover
    app.run(port=80)

Someone want to give a code sample or url for this? I know this is going to be dead simple.

  • 3
    Why not use nginx or other web servers to serve static file. – atupal Dec 18 '13 at 1:10
  • 7
    Please keep in mind that how you are actually "serving" the files will probably differ between production (on your web server) and development (on your local computer, or some other test area). As some answers have pointed out, you will probably NOT want to serve your static files with flask, but instead have them in their own directory and then have your actual web server (Apache, nginx, etc.) server those files directly. – Mark Hildreth Dec 19 '13 at 20:40
  • Possible duplicate of Static files in Flask - robot.txt, sitemap.xml (mod_wsgi) – bebbi Nov 6 '15 at 9:18
  • 32
    "Why not use nginx …" Because when I'm running it in developer mode on my laptop, it's nice to just need to run one thing, and one thing only. Yes, it makes things a tad different, but that's okay. – Thanatos Oct 12 '16 at 21:25
  • Even in production, it's very very common to see this, with of course a cache layer in front (such as Varnish or Nginx or a CDN). – Thomas Decaux Sep 19 at 17:33

13 Answers 13

up vote 447 down vote accepted

The preferred method is to use nginx or another web server to serve static files; they'll be able to do it more efficiently than Flask.

However, you can use send_from_directory to send files from a directory, which can be pretty convenient in some situations:

from flask import Flask, request, send_from_directory

# set the project root directory as the static folder, you can set others.
app = Flask(__name__, static_url_path='')

@app.route('/js/<path:path>')
def send_js(path):
    return send_from_directory('js', path)

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

Do not use send_file or send_static_file with an user-supplied path.

send_static_file example:

from flask import Flask, request
# set the project root directory as the static folder, you can set others.
app = Flask(__name__, static_url_path='')

@app.route('/')
def root():
    return app.send_static_file('index.html')
  • 9
    to support Windows: return app.send_static_file(os.path.join('js', path).replace('\\','/')) – Tony BenBrahim Mar 30 '14 at 8:56
  • 6
    can an attacker exploit this method to browse the flask source files by browsing kind of /js/ <some clever encoding of "../yourflaskapp.py"> ? – akiva May 5 '14 at 16:54
  • 19
    @kiwi send_from_directory is designed to solve that security problem. It exists to error out if the path leads to outside the particular directory. – jpmc26 May 5 '14 at 20:59
  • 7
    "Do not use send_file or send_static_file with an user-supplied path." why not? – Drew Verlee Apr 8 '15 at 15:29
  • 3
    @drewverlee I'd guess it doesn't make sure it doesn't lead out of the designated directory, in which case they have access to files they shouldn't have access to – EpicPandaForce Apr 8 '15 at 20:48

I'm sure you'll find what you need there: http://flask.pocoo.org/docs/quickstart/#static-files

Basically you just need a "static" folder at the root of your package, and then you can use url_for('static', filename='foo.bar') or directly link to your files with http://example.com/static/foo.bar.

EDIT: As suggested in the comments you could directly use the '/static/foo.bar' URL path BUT url_for() overhead (performance wise) is quite low, and using it means that you'll be able to easily customise the behaviour afterwards (change the folder, change the URL path, move your static files to S3, etc).

  • 11
    Why not '/static/foo.bar' directly? – Tyler Long Sep 19 '14 at 9:26
  • 2
    @TylerLong is right - if you want to link to a file which is already saved in your static directory, you can link directly to it without any route code. – hamx0r Dec 23 '14 at 1:19
  • 3
    @TylerLong - edited to include your suggestions. – b4stien Dec 27 '14 at 10:53

You can also, and this is my favorite, set a folder as static path so that the files inside are reachable for everyone.

app = Flask(__name__, static_url_path='/static')

With that set you can use the standard HTML:

<link rel="stylesheet" type="text/css" href="/static/style.css">
  • 5
    it is not working mate. – Volatil3 Nov 7 '14 at 10:06
  • 3
    Works well if there is file project/static/style.css available. – Pavel Vlasov Jan 17 at 16:05
  • the line "app = Flask(....)" needs "static_folder" to be a parameter too – datdinhquoc Jun 5 at 7:01

What I use (and it's been working great) is a "templates" directory and a "static" directory. I place all my .html files/Flask templates inside the templates directory, and static contains CSS/JS. render_template works fine for generic html files to my knowledge, regardless of the extent at which you used Flask's templating syntax. Below is a sample call in my views.py file.

@app.route('/projects')
def projects():
    return render_template("projects.html", title = 'Projects')

Just make sure you use url_for() when you do want to reference some static file in the separate static directory. You'll probably end up doing this anyways in your CSS/JS file links in html. For instance...

<script src="{{ url_for('static', filename='styles/dist/js/bootstrap.js') }}"></script>

Here's a link to the "canonical" informal Flask tutorial - lots of great tips in here to help you hit the ground running.

http://blog.miguelgrinberg.com/post/the-flask-mega-tutorial-part-i-hello-world

You can use this function :

send_static_file(filename)
Function used internally to send static files from the static folder to the browser.

app = Flask(__name__)
@app.route('/<path:path>')
def static_file(path):
    return app.send_static_file(path)
  • 1
    This was the only one that worked for me without a large headache. – Kenny Powers Mar 22 '16 at 1:24
  • Same. Where I realize Flash heavily relies on the idea that we're gonna use their template system, not some RIA where the HTML is produced elsewhere. – NiKo Oct 5 '17 at 11:54
  • 2
    WARNING: This is a huge security concern to call send_static_file with user input. Don't use this solution in anything important. – xApple Aug 2 at 6:12

A simplest working example based on the other answers is the following:

from flask import Flask, request
app = Flask(__name__, static_url_path='')

@app.route('/index/')
def root():
    return app.send_static_file('index.html')

if __name__ == '__main__':
  app.run(debug=True)

With the HTML called index.html:

<!DOCTYPE html>
<html>
<head>
    <title>Hello World!</title>
</head>
<body>
    <div>
         <p>
            This is a test.
         </p>
    </div>
</body>
</html>

IMPORTANT: And index.html is in a folder called static, meaning <projectpath> has the .py file, and <projectpath>\static has the html file.

If you want the server to be visible on the network, use app.run(debug=True, host='0.0.0.0')

EDIT: For showing all files in the folder if requested, use this

@app.route('/<path:path>')
def static_file(path):
    return app.send_static_file(path)

Which is essentially BlackMamba's answer, so give them an upvote.

If you just want to move the location of your static files, then the simplest method is to declare the paths in the constructor. In the example below, I have moved my templates and static files into a sub-folder called web.

app = Flask(__name__,
            static_url_path='', 
            static_folder='web/static',
            template_folder='web/templates')
  • static_url_path='' removes any preceding path from the URL (i.e. the default /static).
  • static_folder='web/static' will tell Flask serve the files found at web/static.
  • template_folder='web/templates', similarly, this changes the templates folder.

Using this method, the following URL will return a CSS file:

<link rel="stylesheet" type="text/css" href="/css/bootstrap.min.css">

And finally, here's a snap of the folder structure, where flask_server.py is the Flask instance:

Nested Static Flask Folders

  • 1
    Thnx very much you save my life . good luck what are you do – user7956520 Sep 5 '17 at 10:21
  • 1
    that is very nice , thanks – Espoir Murhabazi Jun 28 at 14:15
  • 1
    This is what worked for me as well. Send_from_directory just didn't work despite all the recommendations for it. – G.A. Jul 24 at 20:09

For angular+boilerplate flow which creates next folders tree:

backend/
|
|------ui/
|      |------------------build/          <--'static' folder, constructed by Grunt
|      |--<proj           |----vendors/   <-- angular.js and others here
|      |--     folders>   |----src/       <-- your js
|                         |----index.html <-- your SPA entrypoint 
|------<proj
|------     folders>
|
|------view.py  <-- Flask app here

I use following solution:

...
root = os.path.join(os.path.dirname(os.path.abspath(__file__)), "ui", "build")

@app.route('/<path:path>', methods=['GET'])
def static_proxy(path):
    return send_from_directory(root, path)


@app.route('/', methods=['GET'])
def redirect_to_index():
    return send_from_directory(root, 'index.html')
...

It helps to redefine 'static' folder to custom.

So I got things working (based on @user1671599 answer) and wanted to share it with you guys.

(I hope I'm doing it right since it's my first app in Python)

I did this -

Project structure:

enter image description here

server.py:

from server.AppStarter import AppStarter
import os

static_folder_root = os.path.join(os.path.dirname(os.path.abspath(__file__)), "client")

app = AppStarter()
app.register_routes_to_resources(static_folder_root)
app.run(__name__)

AppStarter.py:

from flask import Flask, send_from_directory
from flask_restful import Api, Resource
from server.ApiResources.TodoList import TodoList
from server.ApiResources.Todo import Todo


class AppStarter(Resource):
    def __init__(self):
        self._static_files_root_folder_path = ''  # Default is current folder
        self._app = Flask(__name__)  # , static_folder='client', static_url_path='')
        self._api = Api(self._app)

    def _register_static_server(self, static_files_root_folder_path):
        self._static_files_root_folder_path = static_files_root_folder_path
        self._app.add_url_rule('/<path:file_relative_path_to_root>', 'serve_page', self._serve_page, methods=['GET'])
        self._app.add_url_rule('/', 'index', self._goto_index, methods=['GET'])

    def register_routes_to_resources(self, static_files_root_folder_path):

        self._register_static_server(static_files_root_folder_path)
        self._api.add_resource(TodoList, '/todos')
        self._api.add_resource(Todo, '/todos/<todo_id>')

    def _goto_index(self):
        return self._serve_page("index.html")

    def _serve_page(self, file_relative_path_to_root):
        return send_from_directory(self._static_files_root_folder_path, file_relative_path_to_root)

    def run(self, module_name):
        if module_name == '__main__':
            self._app.run(debug=True)
from flask import redirect, url_for
...
@app.route('/', methods=['GET'])
def metrics():
    return redirect(url_for('static', filename='jenkins_analytics.html'))

This servers all the files (css & js...) referenced in your html file.

   By default, flask use a "templates" folder to contain all your template files(any plain-text file, but usually .html or some kind of template language such as jinja2 ) & a "static" folder to contain all your static files(i.e. .js .css and your images).
   In your routes, u can use render_template() to render a template file (as I say above, by default it is placed in the templates folder) as the response for your request. And in the template file (it's usually a .html-like file), u may use some .js and/or `.css' files, so I guess your question is how u link these static files to the current template file.

If you are just trying to open a file, you could use app.open_resource(). So reading a file would look something like

with app.open_resource('/static/path/yourfile'):
      #code to read the file and do something

Thought of sharing.... this example.

from flask import Flask
app = Flask(__name__)

@app.route('/loading/')
def hello_world():
    data = open('sample.html').read()    
    return data

if __name__ == '__main__':
    app.run(host='0.0.0.0')

This works better and simple.

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