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I'm trying to parse mailto URLs into a nice object or dictionary which includes subject, body, etc. I can't seem to find a library or class that achieves this- Do you know of any?
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using the re module could be a fast solution – juliomalegria Jan 30 '12 at 17:07

7 Answers 7

up vote 2 down vote accepted

Seems like you might just want to write your own function to do this.

Edit: Here is a sample function (written by a python noob).

Edit 2, cleanup do to feedback:

from urllib import unquote
test_mailto = ''

def parse_mailto(mailto):
   result = dict()
   colon_split = mailto.split(':',1)
   quest_split = colon_split[1].split('?',1)
   result['email'] = quest_split[0]

   for pair in quest_split[1].split('&'):
      name = unquote(pair.split('=')[0])
      value = unquote(pair.split('=')[1])
      result[name] = value

   return result

print parse_mailto(test_mailto)
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Worked for me- Thanks Robert – Yarin Jan 30 '12 at 17:36
You should probably use .split(sep, 1) to limit to one split, and save the results instead of splitting multiple times. Plus, you will need urllib.unquote() to decode %xx placeholders in the query string keys and variables. – Ferdinand Beyer Jan 30 '12 at 18:26
cool, thanks for the tips. – Robert Peters Jan 30 '12 at 19:12

The core urlparse lib does less than a stellar job on mailtos, but gets you halfway there:

In [3]: from urlparse import urlparse

In [4]: urlparse("")
Out[4]: ParseResult(scheme='mailto', netloc='', path='', params='', query='', fragment='')


A little research unearths this thread. Bottom line: python url parsing sucks.

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Why it does not catch the query part beats me, tho' – Alien Life Form Jan 30 '12 at 17:12
Tried this- doesn't seem to do anything but grab the scheme – Yarin Jan 30 '12 at 17:16
It should also url-decode the chunks. No big feat, but still. – Alien Life Form Jan 30 '12 at 17:23
Right- thanks for the link and the research – Yarin Jan 30 '12 at 17:40
urlparse() returns correct result see rfc3986 – J.F. Sebastian Jan 30 '12 at 18:19

Here is a solution using the re module...

import re

def parse_mailto(a):'mailto:.+?@.+\\..+?', a)[7:-1]'@.+?\\..+?\\?subject=.+?&', a)[19:-1]'&.+?=.+', a)[6:]


This assumes it is in the same format as you posted. You may need to make modifications to better fit your needs.

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import urllib

query = ''.partition('?')[2]
print dict((urllib.unquote(s).decode('utf-8') for s in pair.partition('=')[::2])
           for pair in query.split('&'))
# -> {u'body': u'mybody', u'subject': u'mysubject'}
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Thanks bladerunner, this works too- Gave it to Robert because he was first – Yarin Jan 30 '12 at 17:37

Batteries included: urlparse.

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+1. It keeps going, and going, and going... – kindall Jan 30 '12 at 17:11
Doesn't work- urlparse result = ParseResult(scheme='mailto', netloc='', path='', params='', query='', fragment='') - Does not read subject/body/etc – Yarin Jan 30 '12 at 17:12

You shold use special library like that

and contribute and create issue to make Python better ;)

P.S. Does not use Robbert Peters solution bcz it hack and does not work properly. Also using a regular expression is using super BFG Gun to get small bird.

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You can use urlparse and parse_qs to parse urls with mailto as scheme. Be aware though that according to scheme definition:,

is identical to


Here's an example:

from urlparse import urlparse, parse_qs
from email.message import Message

url = ''
msg = Message()
parsed_url = urlparse(url)

header = parse_qs(parsed_url.query)
header['to'] = header.get('to', []) + parsed_url.path.split(',')

for k,v in header.iteritems():
    msg[k] = ', '.join(v)

print msg.as_string()

# Will print:
# body: mybody
# to:,
# subject: mysubject
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