5

I have simply created a python server with :

python -m SimpleHTTPServer

I had a .htaccess (I don't know if it is usefull with python server) with:

AddHandler cgi-script .py
Options +ExecCGI

Now I am writing a simple python script :

#!/usr/bin/python
import cgitb
cgitb.enable()
print 'Content-type: text/html'
print '''
<html>
     <head>
          <title>My website</title>
     </head>
     <body>
          <p>Here I am</p>
     </body>
</html>
'''

I make test.py (name of my script) an executed file with:

chmod +x test.py

I am launching in firefox with this addres: (http : //) 0.0.0.0:8000/test.py

Problem, the script is not executed... I see the code in the web page... And server error is:

localhost - - [25/Oct/2012 10:47:12] "GET / HTTP/1.1" 200 -
localhost - - [25/Oct/2012 10:47:13] code 404, message File not found
localhost - - [25/Oct/2012 10:47:13] "GET /favicon.ico HTTP/1.1" 404 -

How can I manage the execution of python code simply? Is it possible to write in a python server to execute the python script like with something like that:

import BaseHTTPServer
import CGIHTTPServer
httpd = BaseHTTPServer.HTTPServer(\
    ('localhost', 8123), \
CGIHTTPServer.CGIHTTPRequestHandler)
###  here some code to say, hey please execute python script on the webserver... ;-)
httpd.serve_forever()

Or something else...

3 Answers 3

11

You are on the right track with CGIHTTPRequestHandler, as .htaccess files mean nothing to the the built-in http server. There is a CGIHTTPRequestHandler.cgi_directories variable that specifies the directories under which an executable file is considered a cgi script (here is the check itself). You should consider moving test.py to a cgi-bin or htbin directory and use the following script:

cgiserver.py:

#!/usr/bin/env python3

from http.server import CGIHTTPRequestHandler, HTTPServer

handler = CGIHTTPRequestHandler
handler.cgi_directories = ['/cgi-bin', '/htbin']  # this is the default
server = HTTPServer(('localhost', 8123), handler)
server.serve_forever()

cgi-bin/test.py:

#!/usr/bin/env python3
print('Content-type: text/html\n')
print('<title>Hello World</title>')

You should end up with:

|- cgiserver.py
|- cgi-bin/
   ` test.py

Run with python3 cgiserver.py and send requests to localhost:8123/cgi-bin/test.py. Cheers.

5
  • Thank for you answer! I replaced the first line by that: from BaseHTTPServer import HTTPServer from CGIHTTPServer import CGIHTTPRequestHandler But I don't understand why you say You should consider moving test.py to a cgi-bin or htbin where are these directory? Is it possible to generate it (with or without root permission?) Commented Oct 25, 2012 at 11:44
  • 1
    It's not necessary to put test.py in a cgi-bin dir if you modify the cgi_directories list. Setting it to handler.cgi_directories = ['/'] will allow you to have test.py and cgiserver.py in the same directory. Otherwise cgi-bin and htbin are just two directories relative to cgiserver.py. I'll update the answer.
    – gvalkov
    Commented Oct 25, 2012 at 11:54
  • 2
    Yes it's work! Thank you so much!!! I found no site or forum which explain as clearly as you explained!! Thank you! Commented Oct 25, 2012 at 12:09
  • @gvalkov Can I somehow serve python script from http://localhost:8123/? I tried setting cgi_directories = ['/'] and putting my python in index.html but it complains with code 403, message CGI script is not a plain file ('//'). P.s. I'm kinda sorry for digging out the old answer. :(
    – cprn
    Commented Aug 30, 2016 at 22:33
  • 1
    Hello @CyprianGuerra. If you insist on using a CGI script for the root resource, you would have to overwrite the is_cgi method of CGIHTTPRequestHandler and make it set self.cgi_info = '/', 'your-script.py'; return True. You might also consider just implementing the do_GET method of a SimpleHTTPRequestHandler subclass, if you don't want to deal with cgi.
    – gvalkov
    Commented Sep 8, 2016 at 23:08
3

Have you tried using Flask? It's a lightweight server library that makes this really easy.

from flask import Flask

app = Flask(__name__)


@app.route('/')
def hello_world():
    return '<title>Hello World</title>'


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

The return value, in this case <title>Hello World</title>, is rendered has HTML. You can also use HTML template files for more complex pages.

Here's a good, short, youtube tutorial that explains it better.

0

You can use a simpler approach and use the --cgi option launching the python3 version of http server:

python3 -m http.server --cgi

as pointed out by the command:

python3 -m http.server --help

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