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If I have

days="1 2 3 4 5 6"

func() {
    echo "lSecure1"
    echo "lSecure"
    echo "lSecure4"
    echo "lSecure6"
    echo "something else"

and do

func | egrep "lSecure[1-6]"

then I get


but what I would like is


which is all the days that doesn't have a lSecure string.


My current idea is to use awk to split the $days and then loop over all combinations.

Is there a better way?

Note that grep -v inverts the sense of a plain grep and does not solve the problem as it does not generate the required strings.

share|improve this question
@fedorqui: READ THE QUESTION. Reversing the sense of grep DOES NOT ANSWER IT. –  Vicky May 21 '13 at 12:40
Are you trying to generate the strings by tacking on each element of $day at the end? Your func so far only echos what you have in it. –  Vilhelm Gray May 21 '13 at 12:44
@fedorqui, I am shouting because yours is the third suggestion to use -v that I have just commented on (one answer now deleted, one answer still there as at time of writing this comment, then your comment as well) and I feel sorry for the OP when nobody actually reads the question. –  Vicky May 21 '13 at 12:44
Farceword change policy? –  Johnsyweb May 21 '13 at 12:44

4 Answers 4

up vote 1 down vote accepted

I am not sure exactly what you are trying to achieve, but you might consider using uniq -u which deletes repeated sequences. For example you can do this with it:

( echo "$days" | tr -s ' ' '\n'; func | grep -oP '(?<=lSecure)[1-6]' ) | sort | uniq -u


share|improve this answer
When I try it the first pipe gives Syntax error: redirection unexpected –  Sandra Schlichting May 21 '13 at 14:17
Which version of bash are you using? You can make it more portable by replacing the tr bit with: echo "$days" | tr ' ' '\n'. –  Thor May 21 '13 at 15:24
@SandraSchlichting: see edit, I made the example more portable. –  Thor May 21 '13 at 16:02

I usually use the -f flag of grep for similar purposes. The <( ... ) code generates a file with all possibilities, grep only selects those not present in the func.

func | grep 'lSecure[1-6]' | grep -v -f- <( for i in $days ; do echo lSecure$i ; done )

Or, you may prefer it the other way round:

for i in $days ; do echo lSecure$i ; done | grep -vf <( func | grep 'lSecure[1-6]' )
share|improve this answer

for f in $days; do
    if ! echo $F | grep -q lSecure$f; then
    echo lSecure$f
share|improve this answer
this will call the func again and again. So if the func is having any cumulative side effect, that gets to destroy your main purpose :) –  abasu May 21 '13 at 13:06
Now updated it, so it is only called once =) –  Sandra Schlichting May 21 '13 at 13:08
Nice solution using simple yet elegant method :) +1 for that –  abasu May 21 '13 at 13:18

An awk solution:

$ func | awk -v i="${days}" 'BEGIN{split(i,a," ")}{gsub(/lSecure/,"");
                             for(var in a)if(a[var] == $0){delete a[var];break}} 
                             END{for(var in a) print "lSecure" a[var]}' | sort

We store it in an awk array a then while reading a line, get the last number, if it is present in array, then remove that from the array. So at the end, in the array, only those element which have not been found remains. Sort is just to present in a sorted manner :)

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