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What regular expression is used to delete everything except the first word from each line:

Data:

JAMES          3.318  3.318      1
JOHN           3.271  6.589      2
ROBERT         3.143  9.732      3

I'm trying to do this in Notepad++ as a replace.

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Regular expressions are used to find complex matches across strings, not to manipulate them. –  Ben Nov 14 '11 at 2:53

4 Answers 4

up vote 2 down vote accepted

Depends on what regex implementation you're using.

the regex ^[A-Za-z_]+ will capture the first word on a line. So, you can capture this first word and print it out and you're good to go, if your implementation permits.

If you need to use substitute, you can substitute ^([A-Za-z_]+).* for \1 E.g., in vi, you would use the command :%s/^\([A-Za-z_]+\).*/\1/

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Actually I was trying to do it in Notepad++, and none of these seem to to do. –  Alasdair Nov 14 '11 at 3:06
    
Replacing ^([A-Za-z_]+).* by \1 just worked for me. –  aleph_null Nov 14 '11 at 3:42
    
Sorry, didn't see that bit for some reason. –  Alasdair Nov 14 '11 at 3:49

In perl notation:

s/^(\w+).*$/$1/
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You can replace ^(\s*\w+)\s+.*$ with \1 and it will retain the first word and delete the rest of the line.

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I know, this post is a few years old ... ;) Anyway:

Assuming that a word is any sequence of characters followed by space:

The regex would be: /\s.*/g

"." stands for anything but line break.

in vi you would use following command to "delete" the rest of any line after the first word: :%s/\s.*//g

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