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This question already has an answer here:

I've read on quiet a few places that serving static files should be left to the server, for example in a couple of the answers on this SO question. But I use the OpenShift PaaS, and can't figure out how to modify the .htaccess file there.

I came across this piece of code that serves the sitemap from a template. I did that on my app for both the sitemap, and robots.txt, like so -

@app.route("/sitemap.xml")
def sitemap_xml():
    response= make_response(render_template("sitemap.xml"))
    response.headers['Content-Type'] = 'application/xml'
    return response

@app.route("/robots.txt")
def robots_txt():
    return render_template("robots.txt")

Is there any harm in this, or is my approach okay?

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marked as duplicate by Frank van Puffelen, Pieter Goosen, JKirchartz, Chris, Marcel Gwerder Dec 22 '14 at 19:22

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

up vote 43 down vote accepted

Put robots.txt and sitemap.xml into your app's static directory and define this view:

from flask import Flask, request, send_from_directory

@app.route('/robots.txt')
@app.route('/sitemap.xml')
def static_from_root():
    return send_from_directory(app.static_folder, request.path[1:])
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1  
thanks, pretty much what I was looking for. – elssar Dec 27 '12 at 11:44
    
Thanks - this will do for Flask apps on Heroku. Seems to be pretty much impossible to get Heroku's (Nginx-based) router to directly serve static content, unless it's in the static or public directory of a project. Would prefer, of course, to serve robots.txt and sitemap.xml directly with Nginx, in environments that let me do it. – Jaza Sep 30 '15 at 23:28
    
Correction to my above comment: looks like Heroku doesn't use Nginx at all, it actually passes all requests (including requests to the static or public dir) directly to an app process (e.g. directly to Gunicorn for a typical Python app), only going via a custom proxy / load-balancer called Vegur - see: superuser.com/questions/837925/… – Jaza Sep 30 '15 at 23:45

Flask has built in support for serving static files.

Make a /static directory and put your files there. Then, when you instantiate Flask, specify the static_url_path parameter:

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

The default is to serve static files from the /static/ path, but you want them served from / so they are where expected.

See the Flask API Docs for more info.

In addition to overhead and unnecessary code, the problem with your approach is if / when one of the files you want to serve contains something that looks like a template tag to render_template -- you can cause a rendering error. If you were to read the file into memory (once, not inside the method) then use that string as the body of the response without calling render_template, you would at least avoid that problem.

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You mean something like this - robots= open(cwd+'/static/robots.txt', 'r').read() and then return robots in the robots_txt function? – elssar Dec 27 '12 at 3:43
    
@elssar - I don't think you should reinvent file caching - check out packages.python.org/Flask-Cache – Alex L Dec 27 '12 at 4:32
    
@elssar Yes, that's what I mean, but I'm not suggesting you actually do that. I was just pointing out that if you were intending to read in and output static files, render_template wasn't doing just that. – agf Dec 27 '12 at 5:54

The best way is to set static_url_path to root url

from flask import Flask

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