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I have a large .csv file that looks like this

19186;1964;F;001;;;;19000101;21000101;20110630
19187;1972;M;001;MMag. Dr.;;;19000101;21000101;20110630
19190;1936;F;999;3;;;19000101;21000101;20110630

Everytime the 5th value is not an integer <10 (not 0-9) it should be removed. So the result should look like this

19186;1964;F;001;;;;19000101;21000101;20110630
19187;1972;M;001;;;;19000101;21000101;20110630
19190;1936;F;999;3;;;19000101;21000101;20110630

how can this be done with sed?

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up vote 2 down vote accepted

This might work for you (GNU sed):

sed -r 's/^(([^;]*;){4})[^;0-9]+/\1/' file
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cool. but this wouldn't go together with my existing sed command (which is not using the argument -r). Can this be done without extended regexp? – speendo Nov 22 '12 at 9:07
    
got it: sed 's/\(\([^;]*;\)\{4\}\)[^;0-9]\+/\1/g' file – speendo Nov 22 '12 at 9:49

You could do it in sed but it's simpler with awk:

awk 'BEGIN{FS=OFS=";"} $5!~/^[0-9]$/{$5=""} 1' file
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+1; much cleaner solution than mine with regex matching! – sampson-chen Nov 21 '12 at 17:54

If you can use awk instead, this would be cleaner to read than a sed solution, I think:

#!/bin/bash

awk 'BEGIN{FS=OFS=";"}
     {if (($5 >= 10) || ($5 < 0) || ($5 % 1 != 0)) {$5=""} print}' in_file

Input:

19186;1964;F;001;;;;19000101;21000101;20110630
19187;1972;M;001;MMag. Dr.;;;19000101;21000101;20110630
19190;1936;F;999;3;;;19000101;21000101;20110630
19190;1936;F;999;-3;;;19000101;21000101;20110630
19190;1936;F;999;3.5;;;19000101;21000101;20110630
19190;1936;F;999;10;;;19000101;21000101;20110630

Output:

19186;1964;F;001;;;;19000101;21000101;20110630
19187;1972;M;001;;;;19000101;21000101;20110630
19190;1936;F;999;3;;;19000101;21000101;20110630
19190;1936;F;999;;;;19000101;21000101;20110630
19190;1936;F;999;;;;19000101;21000101;20110630
19190;1936;F;999;;;;19000101;21000101;20110630

Explanation:

  • awk: invoke the awk command
  • '...': provide the instructions to awk inside single quotes
  • BEGIN{FS=OFS=";"}: before reading input, tell awk to use ; as delimiters for both input and output (FS stands for Field Separator, OFS stands for Output Field Separator)
  • {if (($5 >= 10) || ($5 < 0) || ($5 % 1 != 0)) {$5=""}: If the 5th field is not between 0-9, or is not an integer, set that field to the empty string.
  • print: print the (possibly) modified line.
  • in_file: specify "in_file" as input file to your awk script
  • Optionally, add > out_file to the end of the above script to redirect output to a file instead of stdout

Alternatively: for a cleaner & more robust solution, see Ed's answer.

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That will fail for some strings. Try it with $5 set to "1-foo". – Ed Morton Nov 21 '12 at 18:03
    
@EdMorton Ah, I think I see what the problem is: awk must consider 1-foo as an expression and it evaluates into 1-0=1. I played around with different cases: 1:foo and 1foo both work correctly; and 5+foo+6 (which is 11) will also get the 5th field removed. This is pretty cool =) TIL. – sampson-chen Nov 21 '12 at 18:16
    
No. Try it with "1 MMag Dr.". :-) – Ed Morton Nov 21 '12 at 18:17
    
See "String Type Versus Numeric Type" under gnu.org/software/gawk/manual/gawk.html#Typing-and-Comparison for a big hint. – Ed Morton Nov 21 '12 at 18:31
1  
np. As you've probably realized by now the issue is that when $5 is non-numeric you're doing string comparisons, not numeric comparisons, and those are done char-by-char left-to-right so there are some characters X for which the string "1X" is less than the string "10" but any string starting with "1" is always greater than the string "0". Then you have an arithmetic operation (%) which chops off the num-numeric tail of $5 so "1X" becomes "1" before the comparison with 0. – Ed Morton Nov 21 '12 at 18:40

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