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How do I login to www.###.nl/admin and print the source?

I've tried several things.

Here's what I tried recently using requests:

import requests

url = "http://www.###.nl/admin"
r = requests.get(url, auth=('***', '***'))
page = r.text

print(page)

This code just prints out the code of the login page.

Thanks for the help.

share|improve this question
1  
Look at the source code for the page... There's a form - look at where the action= points to on that, and take note of what name= the form elements have for username and password. Then issue a requests.post with that data to the form processing URL and keep your fingers crossed that's all you need to do. – Jon Clements Jun 24 '13 at 18:47
    
it is probably a good idea to collect all form elements inside that form or you might miss stuff like csrf tokens. Use lxml oder BeautifulSoup for that - then add the key->value for everything else as well as the username and pw – javex Jun 24 '13 at 21:47

Inspect the source of this page, and identify the form element that is being submitted (you can use Chrome Developer Tools for this purpose). You can then find the input elements and identify the required name attributes.

An example (untested):

import requests
payload = {
'username': 'USERNAME', 
'password': 'PASSWORD'
}
url = 'http://www.fonexshop.nl/admin/index.php?route=common/login'
r = requests.post(url, data=payload)
print r.text

Check the documentation for Requests library here.

UPDATE (if the site uses cookies)

From the documentation wiki,

The Session object allows you to persist certain parameters across requests. It also persists cookies across all requests made from the Session instance.

Here's another example:

from requests import session

payload = {
    'action': 'login',
    'username': USERNAME,
    'password': PASSWORD
}

with session() as c:
    c.post('http://www.fonexshop.nl/admin/index.php?route=common/login', data=payload)
    request = c.get('http://www.fonexshop.nl/the/page/you/want/to/view/source/for.php')
    print request.headers
    print request.text

Hope this helps. Good luck!

share|improve this answer
    
This is a great answer. Unfortunately the python code gives me the source code of the login page. – narzero Jun 24 '13 at 20:20
    
Thanks for your efforts Amal. Unfortunately it still doesn't work. I can't accept an answer that doesn't work. – narzero Jun 24 '13 at 20:53
3  
@narek_a: It's okay. But nobody is going to give you the exact script that works. You'll have to play with it, test it, and see what works and what doesn't. We're just helping :) – Amal Murali Jun 24 '13 at 21:12
    
@narek_a Check carefully that there's no other information in the page that's returned that could indicate something useful about why the site's not accepting your login... – Jon Clements Jun 24 '13 at 21:56
    
the html source shows that enctype=multipart/form-data is required. files parameter could be used – J.F. Sebastian Jun 25 '13 at 1:26

Find out whether you need javascript to login or to see the data (disable javascript in the browser and try to login manually). If javascript is required then you could use something like Selenium Webdriver to get page with a javascript-generated content. Or use a network sniffer such as wireshark to find out what requests exactly your browser sends and then try to replicate them using requests library.

You could start with sending a post request using multipart/form-data content type that you could see in the html source of /admin page. Building on @Amal Murali's answer:

#!/usr/bin/env python3
import sys
from requests import session  # pip install requests

credentials = dict(username='your username', password='your password')
login_url = 'http://www.fonexshop.nl/admin/index.php?route=common/login'

with session() as s:
    r = s.post(login_url, files=credentials)
    # print some debugging info
    print("Post status: {}".format(r.status_code), file=sys.stderr)
    print(r.headers, file=sys.stderr)
    print("Cookies: {}".format(dict(r.cookies)), file=sys.stderr)

    r = s.get('http://www.fonexshop.nl/' + 'path you actually want')
    print("Get status: {}".format(r.status_code), file=sys.stderr)
    print(r.headers, file=sys.stderr)
    print(r.text) # print the web page source to stdout

Note: files is used instead of data to generate multpart/form-data request instead of x-www-form-urlencoded.

share|improve this answer
    
Unfortunately this didn't work for me. I got it to work using Splinter (a test framework for web applications). – narzero Jun 25 '13 at 8:59
up vote 1 down vote accepted

I got it working using Splinter.

Phantomjs (headless WebKit) is used as the browser. You can also use other browsers, check out the documentation for Splinter.

This is the working code:

from splinter import *
from selenium import *

username1 = '***'
password1 = '***'

browser1 = Browser('phantomjs')
browser1.visit('http://***.nl/admin')
browser1.fill('username', username1)
browser1.fill('password', password1)
browser1.click_link_by_text('Inloggen')

url1 = browser1.url
title1 = browser1.title

titlecheck1 = 'Dashboard'

print "Step 1 (***):"

if title1 == titlecheck1:
    print('Succeeded')

else:
    print('Failed')
    browser1.quit()

print 'The source is:'
print browser1.html

browser1.quit()
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