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To change the output from 2012 1 5 to 20120105, is it sufficient to change from

ls $run |xargs sed q |awk '{print $1,$2,$3} ' >> stin-2

to

ls $run |xargs sed q |awk '{printf "%2.2i" $1,$2,$3} ' >> stin-2
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2  
Why not just use stat(1) in the first place? –  Ignacio Vazquez-Abrams Aug 12 '12 at 5:58
    
You can use ls $run |xargs sed q |awk '{print $1," ",$2," ",$3} ' >> stin-2. Or ls $run |xargs sed q |awk '{printf "%d %d %d", $1,$2,$3} ' >> stin-2. Heck, as Ignacio Vazquez-Abrams suggested, you can even use "stat" ;) –  paulsm4 Aug 12 '12 at 6:00
    
Don't parse the output from ls. –  tripleee Aug 12 '12 at 6:05

1 Answer 1

If you use printf() (which is probably the correct to get the output you want) you should use as many conversion specifiers as there are arguments, like you would in C.

awk '{printf "%.4d%.2d%.2d\n", $1, $2, $3}'

Note the comma after the format; that is crucial. The example code omits that, so it concatenates the given format string and $1 as the format string, which is then given two arguments. You probably want the newline too, which printf() does not add automatically (unlike print). The choice of %d over %i is arbitrary; they're the same. The use of %.2d is not entirely arbitrary; it achieves the same effect as %2.2d, but uses fewer characters to do the job.

This answer does not attempt to address whether what you're trying to do is sensible on the larger scale; it simply shows how it could/should be done assuming that it needs to be done. There's also an assumption that there is a space between the fields for 2012 11 25.

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