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Right now I have a string in the form xxx@yyy.com@zzz.com and I want to strip off the @zzz.com so that it comes out as xxx@yyy.com.

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'@'.join('xxx@yyy.com@zzz.com'.split('@')[:-1])? – Travis Gockel Sep 8 '11 at 6:15
up vote 3 down vote accepted

You can use:

"xxx@yyy.com@zzz.com".replace("@zzz.com", "")

If you know it will always be "@zzz.com".

Otherwise, you could try:

data = "xxx@yyy.com@zzz.com"
if data.count("@") == 2:
    data = data.rsplit('@', 1)[0]

Or, more generally:

data = "xxx@yyy.com@zzz.com@___.com"
if data.count("@") > 1:
    data = data.rsplit('@', data.count("@")-1)[0]

You can learn more about the string methods I have used at Python : String Methods

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thanks. is there any documentation for each of the methods that you use here? – locoboy Sep 8 '11 at 6:19
    
@cfarm54 You can find it in the usual place for documentation: docs.python.org/library/stdtypes.html#string-methods – Duncan Sep 8 '11 at 7:24
>>> 'xxx@yyy.com@zzz.com'.rpartition('@')[0]
'xxx@yyy.com'
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string = "xxx@yyy.com@zzz.com"
string = "@".join(string.split("@")[:2])

Simple way to do the job. I don't think it's very safe though.

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$ python
Python 2.6.6 (r266:84292, Nov 19 2010, 21:55:12) 
[GCC 4.2.1 (Apple Inc. build 5664)] on darwin
Type "help", "copyright", "credits" or "license" for more information.
>>> import re
>>> re.sub('@[^@.]*\.com$', '', 'xxx@yyy.com@zzz.com')
'xxx@yyy.com'
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This would work. Please check it.

st='xxx@yyy.com@zzz.com'  
print st  
newstr=st[0:st.rfind('@')]  
print newstr

Idea is to use rfind and strip find the @ symbol from the end.

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string = "xxx@yyy.com@zzz.com"

print string[0:string.rfind('@')]

can help you

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Not sure if this code is too much for the task, but here ya go.

data = "xxx@yyy.com@zzz.com"

def cleaner(email):
   counter = 0
   result = ''
   for i in data:
      if i == "@":
        counter += 1
      if counter == 2:
        break
      result += i
   return result

data = cleaner(data)

data = 'xxx@yyy.com'

Just pass the data to the cleaner function. For example: cleaner(data) will return the correct answer.

edit: what gribbler posted is 1000x better than this...lol I am still learning :)

data.rpartition('@')[0]
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