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I have a file, say 'names' that looks like this

first middle last     userid
Brian Duke Willy      willybd
...

whenever I use the following

line=`grep "willybd" /dir/names`
name=`echo $line | cut -f1-3 -d' '`
echo $name

It prints the following:

Brian Duke Willy      willybd
Brian Duke Willy

My question is, how would I get it to print just "Brian Duke Willy" without first printing the original line that I cut?

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1  
What shell are you using that causes the line from the file to be printed? The code you have posted should not give the output you show. –  William Pursell Oct 5 '12 at 0:05
    
Run $SHELL -x yourscript and look at the value assigned to line; is one or two lines? –  Jonathan Leffler Oct 5 '12 at 0:18

3 Answers 3

The usual way to do this sort of thing is:

awk '/willybd/{ print $1, $2, $3 }' /dir/names

or, to be more specific

awk '$4 ~ /willybd/ { print $1, $2, $3 }' /dir/names

or

awk '$4 == "willybd" { print $1, $2, $3 }' /dir/names
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grep "willybd" /dir/names | cut "-d " -f1-3

The default delimiter for cut is tab, not space.

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Unless you need the intermediate variables, you can use

grep "willybd" /dir/names | cut -f1-3 -d' '

One of the beautiful features of linux is that most commands can be used as filters: they read from stdin and write to stdout, which means you can "pipe" the output of one command into the next command. That's what the | character does. It's pronounced pipe.

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edit This worked, thanks –  richard008 Oct 4 '12 at 23:22
    
Funny, I ran the commands you listed, and as I expected, it didn't print the original line. Are you sure you didn't $echo $line? Otherwise, I'm not sure why my one-line version would behave differently from yours. –  Adam Liss Oct 4 '12 at 23:29

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