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I want to select line of a file where the absolute value of column 9 is less than 500. Column is sometimes positive, sometimes negative.

awk -F'\t' '{ if ($9 < |500|) {print $0} }' > output.bam

This doesn't work so far .. one round on internet told me that to use the absolute value we should add

func abs(x) { return (x<0) ? x*-1 : x }

Then how am I suppose to put this along with the value of column 9?? I don't know what could be a proper syntax..

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2 Answers 2

up vote 17 down vote accepted
awk -F'\t' 'function abs(x){return ((x < 0.0) ? -x : x)} {if (abs($9) < 500) print $0}'
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I'd prefer to see that as a multi-liner instead of a one-liner, but what's there should work. –  Jonathan Leffler Jun 25 '12 at 8:22

For quick one-liners, I use this approach:

awk -F'\t' 'sqrt($9*$9) < 500' > output.bam

It's quick to type, but for large jobs, I'd imagine that sqrt() would impose a performance hit.

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{print} is implied, you can drop that part. –  Adrian Frühwirth Nov 13 '13 at 15:37
3  
+1; slight simplification: sqrt($9^2) (note the use of ^ rather than ** for exponentiation - ** is not POSIX-compliant). –  mklement0 Apr 8 '14 at 15:07

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