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I have the following file, where I want to left-pad with zeros when the value is numeric, but leave it as it is when value is a string:

cat test.txt 
2032
12
XXXXX
507
334

This works only for numeric values, the string being ignored:

awk '{printf "%05d\n",$1}' test.txt 
02032
00012
00000
00507
00334

I can get it with a condition, but is there a simpler way ?

awk '{if ($1 ~ /^[0-9]+$/) printf "%05d\n",$1; else printf "%s\n",$1}' test.txt 
02032
00012
XXXXX
00507
00334
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What does "numeric" mean in your context? For example, which if any of "2.3", ".5", "NaN", "Inf", "1e3" are numeric? –  Ed Morton Mar 20 '13 at 19:12
    
Here, numeric would be integer. –  Sébastien Clément Mar 21 '13 at 15:36

1 Answer 1

up vote 3 down vote accepted

I think your awk solution is ok. if your "simpler" means "shorter":

awk '$0*1==$0{$0=sprintf("%05d",$0)}1' file

or

awk '/^[0-9]+$/{$0=sprintf("%05d",$0)}1' file

or

awk '$0*1==$0{printf("%05d\n",$0);next}1' file

or if you are sure there is no empty line in your file:

awk '$0=$0*1==$0?sprintf("%05d",$0):$0' file

in examples above, I used $0, not $1, since in your input example, there is only one column.

share|improve this answer
    
Thanks a lot for the solutions. In my 'real' file, there are several columns with that potential double format, that's why I wanted a better solution than my if condition above. –  Sébastien Clément Mar 20 '13 at 15:35
    
What does the 1 mean at the end of your first 3 solutions ? –  Sébastien Clément Mar 20 '13 at 15:38
1  
@SébastienClément 1 is a boolean expression, means true. awk will print $0 if true. you can try seq 10|awk '$0%2' then you will understand. –  Kent Mar 20 '13 at 15:42

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