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This is what I have so far:

EX1 = open('ex1.txt')
EX1READ = EX1.read()
X1READ.splitlines(0)

['jk43:23 Marfield Lane:Plainview:NY:10023',
 'axe99:315 W. 115th Street, Apt. 11B:New      York:NY:10027',
 'jab44:23 Rivington Street, Apt. 3R:New York:NY:10002',
 'ap172:19 Boxer Rd.:New York:NY:10005',
 'jb23:115 Karas Dr.:Jersey City:NJ:07127',
 'jb29:119 Xylon Dr.:Jersey City:NJ:07127',
 'ak9:234 Main Street:Philadelphia:PA:08990']

I'd like to be able to just grab the userId from this list and print it alphabetized. Any hints would be great.

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6  
I hope that isn't real user data... –  srgerg May 11 '12 at 1:31
1  
The user ID is which part of the file, exactly? –  Johnsyweb May 11 '12 at 1:39

3 Answers 3

This does it:

IDs=[]
with open('ex1.txt', 'rb') as f:
    for line in f:
        IDs.append(line.split(':')[0])

print sorted(IDs)     

Prints:

['ak9', 'ap172', 'axe99', 'jab44', 'jb23', 'jb29', 'jk43']

If your user id's like jk43:23 use IDs.append(line.split(' ')[0]) and that prints:

['ak9:234', 'ap172:19', 'axe99:315', 'jab44:23', 'jb23:115', 'jb29:119', 'jk43:23']

If your user ids are the number only, use IDs.append(int(line.split(' ')[0].split(':')[1])) which prints:

[19, 23, 23, 115, 119, 234, 315]
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The issue is, this doesn't return the actual value of the ID, just its name... –  Elliot Bonneville May 11 '12 at 1:45
1  
Setting maxsplit to 1 may prove more efficient if line is long, e.g. IDs.append(line.split(':', 1)[0]). –  zigg May 11 '12 at 1:47
    
It is unclear what the user id is: jk43:23 or just jk43 for example. This is the former, not the latter. Extending to the later is trivial. –  the wolf May 11 '12 at 1:47
userIds = []

EX1 = open('ex1.txt')
X1READ = EX1.readlines()

for line in X1READ:
    useridname = line.split(" ")[0].split(":")[0];
    userid = line.split(" ")[0].split(":")[1]
    userIds.append([useridname, userid])

I'm sure there are more Pythonic ways to do this, but my method will return an list of lists, where each child list in the parent list is formatted like this:

["jk43", "23"]

So to get the first user id and id number, you'd do this:

firstUserId = userIds[0][0] + ": " + userIds[0][1]

Which would output

"jk43: 23"

To sort the list of IDs, you'd do something like this:

userIds = sorted(userIds, key = id: id[0])
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IndexError: list index out of range –  user1388430 May 11 '12 at 1:37
    
ok thank you i will try this –  user1388430 May 11 '12 at 1:39
    
@user1388430: Yep, there was a bug in the code. Fixed. –  Elliot Bonneville May 11 '12 at 1:40
    
To alphabetize, you can just write userIds.sort() at the end of the above solution. It will sort by the first field, and if they are identical, by the second field. –  happydave May 11 '12 at 1:42

Assuming the part before the first ":" is the userID you could do it in a more pythonic way like that:

with open("ex1.txt") as f:
    lines = f.readlines()
    userIDs = [l.split(":",1)[0] for l in lines]
    print "\n".join(sorted(userIDs))
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