Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Basically I have this xml element (xml.etree.ElementTree) and I want to POST it to a url. Currently I'm doing something like

xml_string = xml.etree.ElementTree.tostring(my_element)
data = urllib.urlencode({'xml': xml_string})
response = urllib2.urlopen(url, data)

I'm pretty sure that works and all, but was wondering if there is some better practice or way to do it without converting it to a string first.

Thanks!

share|improve this question

3 Answers 3

up vote 10 down vote accepted

If this is your own API, I would consider POSTing as application/xml. The default is application/x-www-form-urlencoded, which is meant for HTML form data, not a single XML document.

req = urllib2.Request(url=url, 
                      data=xml_string, 
                      headers={'Content-Type': 'application/xml'})
urllib2.urlopen(req)
share|improve this answer
    
Note that you don't have to build the opener. You can simply call urllib2.urlopen(req) -- urlopen can take Request objects as well as plain URL strings. –  Walter Mundt Jun 24 '10 at 0:51
    
Thanks, @Walter. –  Matthew Flaschen Jun 24 '10 at 0:57

No, I think that's probably the best way to do it - it's short and simple, what more could you ask for? Obviously the XML has to be converted to a string at some point, and unless you're using an XML library with builtin support for POSTing to a URL (which xml.etree is not), you'll have to do it yourself.

share|improve this answer

Here is a full example (snippet) for sending post data (xml) to an URL:

def execQualysAction(username,password,url,request_data):
  import urllib,urrlib2
  xml_output = None 
  try:
    base64string = base64.encodestring('%s:%s' % (username, password)).replace('\n', '')  
    headers = {'X-Requested-With' : 'urllib2','Content-Type': 'application/xml','Authorization': 'Basic %s' % base64string}
    req = urllib2.Request(url=url,data=request_data,headers=headers)
    response = urllib2.urlopen(req,timeout=int(TIMEOUT))
    xml_output = response.read()
    if args.verbose>1:
      print "Result of executing action request",request_data,"is:",xml_output
  except:
    xml_output = '<RESULT></RESULT>'
    traceback.print_exc(file=sys.stdout)
    print '-'*60

finally:

return xml_output
share|improve this answer
    
Please, improve your formatting. –  pinckerman Sep 25 '13 at 20:56

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.