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I need to search for files which has string str1 appearing before string str2. both strings are in separate lines.

for example, file1 looks like:

abc
def
str1
ghi
str2

file2 looks like:

abc
str2
def
ghi
str1
pqe

My search should return file1.

It should be a one liner script I can run on command line on unix.

Thanks in advance.

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3 Answers 3

up vote 0 down vote accepted

This is not exactly an one-liner but you can delete the newlines and the problem is solved :)

for file in $(ls) ; do
  awk "/str1/{found=1}/str2/{if(found) print \"$file\"}" $file
done

What does it do: for each file listed by ls, if str1 appears in it, the script marks it in a variable found:

/str1/{found=1}

then, when str2 appears in a line, it verifies if found is set. If so, prints the file name:

/str2/{
    if (found) 
        print "$file"
}

EDIT: there is still a more concise way to solve your problem, using find and xargs:

find . -print0 -maxdepth 1 | \
    xargs -0 -I{} awk '/str1/{found=1}/str2/{if(found) print "{}"}' "{}"

It is safer, too, because it handles files with spaces in their names. Also, you can extend it to search in subdirectories just removing the -maxdepth 1 option. Note that the awk script was not changed.

(There always is a good solution using find and xargs but this solution is always a bit hard to find :D )

HTH!

share|improve this answer
    
useless use of ls. Use shell expansion –  ghostdog74 Apr 27 '11 at 23:27
    
@ghostdog74 you are right. Fortunately, the second solution already solves this problem, too. –  brandizzi Apr 28 '11 at 15:57
    
@brandizzi: the second approach finds a file eveif str2 comes before str1. which is not what it should do. BTW, in first solution, instead of "ls" in current dir, how can I look into all dirs below current dir? –  hari Apr 28 '11 at 23:29
    
I am trying find . -print0 | xargs -0 -I{} awk '/str1/{found=1}/str2/{if(found) print "{}"}' "{}" But it returns file name if str2 comes before str1. –  hari Apr 29 '11 at 0:29
1  
@hari: do you mean to search only in directories below or also in directories below? If it is the second case, just replace $(ls) by $(find .) If you want to look only on files exactly one directory below, replace $(ls) by $(find . -depth 2); if you to look for files in all directories below, use $(find . -mindepth 2). find is a wonderful tool, I'd say :) –  brandizzi Apr 29 '11 at 16:09

So, here is your awk one liner

awk -vRS="\0777" '/str1.*str2/{print FILENAME}' file*
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1  
@ghostdog...does this imply RS="\0777" record separator is New line?what does this exactly do? –  Vijay Apr 28 '11 at 5:09
1  
this means slurping the whole file in (as a whole string). so finding str1 before str2 would print the filename –  ghostdog74 Apr 28 '11 at 6:20
    
+1 from me .This is a new thing i have learnt.Thanks ghostdog –  Vijay Apr 28 '11 at 10:10
    
@zombie, no problem. actually RS="\0" should do the same thing as well. –  ghostdog74 Apr 28 '11 at 10:14

Sed 1 liner for above:

F="file1" && test ! -z $(sed -n '/str1/,/str2/{/^str2$/p;}' "$F") && echo "$F"

F="file2" && test ! -z $(sed -n '/str1/,/str2/{/^str2$/p;}' "$F") && echo "$F"

OUTPUT

file1

And here is awk one liner

F="file1" && awk '{if ($0 == "str1") {a=NR} else if ($0 == "str2" && a> 0 && a<NR) {print FILENAME} }' $F

F="file2" && awk '{if ($0 == "str1") {a=NR} else if ($0 == "str2" && a> 0 && a<NR) {print FILENAME} }' $F

OUTPUT

file1
share|improve this answer
    
you can use FILENAME instead of passing $F as a variable into awk –  ghostdog74 Apr 27 '11 at 23:33
    
Thanks a lot, I didn't know about FILENAME. –  anubhava Apr 27 '11 at 23:41

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