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echo -e "55 11\n25 11.0" | awk '$2 ~ /11/{print $1}'

I only want to match "11", and not "11.0"'s value 25. Any tips?

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3 Answers 3

up vote 5 down vote accepted

Match the whole field:

% echo -e "55 11\n25 11.0" | awk '$2 ~ /^11$/{print $1}'
55

If you did want to match numerically, you should not use a regular expression, of course (your current one would also match 6119.42):

% echo -e "55 11\n25 11.0" | awk '$2 == 11 { print $1 }'
55
25
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2  
+1 for == -- you don't need regular expressions for everything. –  glenn jackman Jan 12 '12 at 13:33
echo -e "55 11\n25 11.0" | awk '$2 ~ /^11$/ {print $1}'
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Ensure last field does not contain a decimal point.

[jaypal:~/Temp] echo -e "55 11\n25 11.0" | awk '$NF!~/\./{print $1}'
55
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Given the title of the question is "print matching exact column contents" this is a little too permissive. –  Johnsyweb Jan 13 '12 at 2:34
    
@Johnsyweb I agree, I couldn't come up with a better solution then yours so just made an attempt to solve it. Should I go ahead and delete it? –  jaypal Jan 13 '12 at 2:58

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