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Let's say I have a file that looks like this:

user ID   time started  time ended yes/no 
3523         15:00          0        yes  
2356         12:13       12:18       yes  
4690         09:10          0        no  

I want to write shell script that will pick out all of the lines in the file that have a time ended of '0' and 'yes'.

For this example it'd be the first line only:

3523     15:00       0        yes  
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4 Answers 4

up vote 3 down vote accepted

awk '$3 == "0" && $4 == "yes" { print; }' myfile

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Wow, I didn't realize how simple this is to do with awk. As a side question before the print statement do you have to write END ? –  에이바 Dec 7 '10 at 23:04
2  
Take a look at the man page for awk. An awk script is basically a list of CONDITION ACTION pairs. In this case, the condition is $3=0 and $4=yes. The corresponding action is print. END is a condition that is true after the last line of the file is read. So, any actions placed after that will only happen at the end of the file. At that point, print will have no line to show. In practice, other clauses would have stored values in globals for END's actions to make use of. –  jtdubs Dec 7 '10 at 23:13
2  
When you get comfortable with awk, you may want to remove the {print} body (which is the default action): awk '$3==0 && $4=="yes"' file –  glenn jackman Dec 8 '10 at 2:27
1  
@glenn-jackman: Cool. Never knew that. Thanks. –  jtdubs Dec 8 '10 at 4:02
grep -E '^[^ ]+ +[^ ]+ +0 +yes$' inputfile

or

grep -E '^([^ ]+ +){2}0 +yes$' inputfile

or

sed -n '/^\([^ ]\+ \+\)\{2\}0 \+yes$/p' inputfile

or

sed -nr '/^([^ ]+ +){2}0 +yes$/p' inputfile
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This might work for you:

 sed '/\s0\s\+yes\s*$/!d' inputfile
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this will work as well

grep '............................0........yes' myfile

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1  
This is terrible, but I lol'd. –  에이바 Jul 30 '13 at 14:42

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