6

How can I achieve this I'm new to python and flask, I am trying to redirect my 404 to a external url like this:

@app.route('404')
def http_error_handler(error):
return flask.redirect("http://www.exemple.com/404"), 404

but it does not work i'm getting

Not Found The requested URL was not found on the server. If you entered the URL manually please check your spelling and try again.

  • the problem may be the 404 status you are passing alongside the redirect. – Sidhin S Thomas Mar 28 '17 at 16:39
9

You should try something like this:

from flask import render_template

@app.errorhandler(404)
def page_not_found(e):
    return render_template('404.html'), 404

Source http://flask.pocoo.org/docs/1.0/patterns/errorpages/

  • I don't have the 404.html file on the same project I need to redirect to another website and still have my 404 status code I already look at the doc many times.. – Phosy Apr 8 '15 at 13:33
  • 2
    Well you dont have to actually redirect to a template, do something like this return redirect("example.com", code=302) – lapinkoira Apr 8 '15 at 13:34
  • It just an example to show how to handle the error, then inside you do whatever you want – lapinkoira Apr 8 '15 at 13:35
  • 1
    Dude, just type 404, it's an example, what do u want, to just copy and paste? – lapinkoira Apr 8 '15 at 13:36
  • So you are handing the 404 error but when should be redirected to exemple.com/404 you are getting this error instead? "Not Found The requested URL", like, some 500 internal server error? – lapinkoira Apr 8 '15 at 13:41
5

You cannot do this - the user-agent (in most cases, a browser) looks at the status code that is returned to determine what to do. When you return a 404 status code what you are saying to the user-agent is, "I don't know what this thing is you are requesting" and the user-agent can then:

  • Display what you return in the body of the response
  • Display its own error message to the end user
  • Do some combination of the above two options

redirect actually creates a little HTML response (via werkzeug.exceptions), which normally the end user doesn't see because the user-agent follows the Location header when it sees the 302 response. However, you override the status code when you provide your own status code (404).

The fix is to either:

  • Remove the status code (at the cost of sending the wrong signal to the end user, potentially)
  • or Send a 404 with a meta:refresh and / or JavaScript redirect (slightly better, still confusing):

    return redirect("/where-ever"), 404, {"Refresh": "1; url=/where-ever"}
    
  • 1
    It is much better to redirect(url_for('your.endpoint')) – Jamie Lindsey Feb 4 at 10:28
2

Try this instead of a route

@app.errorhandler(404)
def own_404_page(error):
    pageName =  request.args.get('url')
    print(pageName)
    print(error)
    f = open('erreur404.tpl')
    return f.read()
  • Nearly every line in your example is very non-pythonic. You suggest to use CamelCase in place of snake_case, your reading a file template instead of return a response, and pointlessly printing the page name. Just my opinion. – Jamie Lindsey Feb 4 at 10:26

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