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.

I have a text file in which I have something like this-

10.2.57.44      56538154    3028
120.149.20.197  28909678    3166
10.90.158.161   869126135   6025

In that text file, I have around 400,000 rows exactly as above. I have opened the same text file in Notepad++. I needed a way to remove everything from that text file leaving only IP Address (first column in the above text file is IP Address). I think, I can do that using Regular Expression. And notepad++ also has the option of using Regular Expression. But not sure what regular expression I need to use. Can anyone help me out here?

So output should be something like this-

10.2.57.44
120.149.20.197
10.90.158.161
share|improve this question
    
Welcome to Regular Expressions! You're gonna love it, especially with Notepad++ on your screen. Be sure and check out the regex-related plug-ins. –  Smandoli Jan 11 '13 at 1:57

3 Answers 3

up vote 2 down vote accepted

Just replace \s.* with nothing! A regex needs only to match what it needs to match, and what you want to match here is a space followed by anything (thus leaving the IP address alone, since it starts the line and there are no spaces in it)

Alternatively, if you have them, this is even better done with a classical Unix command:

sed -i 's/\s.*//' thefile

Example:

$ cat <<EOF | sed 's/\s.*//'
> 10.2.57.44      56538154    3028
> 120.149.20.197  28909678    3166
> 10.90.158.161   869126135   6025
> EOF
10.2.57.44
120.149.20.197
10.90.158.161
$ 
share|improve this answer

If you have gawk or something:

gawk "{print $1}" filename

In linux(bash) usage of awk will look like following:

suku@ubuntu-vm:~$ cat stack 
10.2.57.44      56538154    3028
120.149.20.197  28909678    3166
10.90.158.161   869126135   6025
suku@ubuntu-vm:~$ cat stack | awk '{ print $1 }'
10.2.57.44
120.149.20.197
10.90.158.161
share|improve this answer

Find:

(\d+\.\d+\.\d+\.\d+).*

And replace with:

\1

The parentheses will capture that part of the regex to a variable, which is named \1 (since it is the first capture block in the regex). The rest of the line is not captured but simply thrown out by the replace operation.

share|improve this answer
    
+1, I'm liking it. –  Smandoli Jan 11 '13 at 1:46
    
This will work but is basically not needed: you don't need to match the IP address at all, since what you want is to replace what is after it (with nothing). Matching what is after it is much more simple. –  fge Jan 11 '13 at 1:52
    
Sure, but I prefer the verbose version because it leaves alone any other text that might be in the file. See it as defensive programming with regexes. –  praseodym Jan 11 '13 at 1:57
    
The OP says that all lines are exactly as the above. As such, matching the IP address is of no help ;) See my answer –  fge Jan 11 '13 at 2:02

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.