Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

This question already has an answer here:

So, I want to read file from stdin, delete all '/' in line that contain exactly 3 '/', and write the output to stdout. So a file contain:

/a1/b/c
/a/b2
///
/a

will have output:

a1bc
/a/b2

/a

I am thinking something like this:

sed -r 's/\/[^\/]*\/[^\/]*\/.*/"I not sure what do I need to put in here"/g'

however, I am not really sure what do I need to put in the replace session.

share|improve this question

migrated from programmers.stackexchange.com Mar 20 '13 at 5:09

This question came from our site for professional programmers interested in conceptual questions about software development.

marked as duplicate by casperOne Mar 21 '13 at 11:24

This question has been asked before and already has an answer. If those answers do not fully address your question, please ask a new question.

    
Hello and Welcome to Programmers. Implementation specific questions are off-topic here. This question is on-topic for Stack Overflow but it appears you've already posted it there. Please don't crosspost. Have a pleasant day. –  World Engineer Mar 20 '13 at 5:09
    
You should have a sample line such as /opt/hal/9000/monitor with 4 or more slashes in it; it should also be left unchanged. –  Jonathan Leffler Mar 20 '13 at 6:31

3 Answers 3

A sed solution:

sed '/.*\/.*\/.*\//{s#/##g}' file

If Perl is ok for you:

perl -F/ -ape '$_=@F>3?join"",@F:join "/",@F;' file
share|improve this answer
    
I can only use sed –  Hanna Gabby Mar 20 '13 at 5:04
    
added sed solution –  Guru Mar 20 '13 at 5:05
    
what is "{s#/##g}" mean? don't you think, if I replace it with nothing, it will delete the whole line instead of deleting only the '/' –  Hanna Gabby Mar 20 '13 at 5:07
    
Instead of using /, i used # as limitor. It will not delete the whole line, you can definitely test it against a sample file.. –  Guru Mar 20 '13 at 5:09
    
That regex will work on lines with three or more slashes, not just those with strictly three slashes. –  Jonathan Leffler Mar 20 '13 at 5:19
sed -e '/^[^\/]*\/[^\/]*\/[^\/]*\/[^\/]*$/ s%/%%g'

The gruesome pattern looks for start of line, a sequence of zero or more non-slashes followed by a slash, more non-slashes and a second slash, more non-slashes and a third slash, more non-slashes and the end of line. On any line that matches that, substitute the slashes by nothing globally.

There are other ways to write the regex, but they aren't substantially clearer. This will work in pretty much any version of sed. So will this:

sed -e '/^\([^\/]*\/\)\{3\}[^\/]*$/ s%/%%g'

It looks for start of line, 3 units of (zero or more non-slashes followed by a slash), zero or more non-slashes and end of line.

If your sed has extended regular expressions (GNU sed, for example), then you can gain some notational convenience.

sed -r -e '/^([^\/]*\/){3}[^\/]*$/ s%/%%g'

sed -r -e 's%^([^/]*)/([^/]*)/([^/]*)/([^/]*)$%\1\2\3\4%'

The latter captures the four sets of 'zero or more non-slashes' and pastes them together to make the replacement. You could write that with the non-extended regular expressions, but it would be even more laden with backslashes than before.

share|improve this answer

This is much simpler in awk:

awk -F/ 'NF==4 { gsub("/","") } {print}' tmp.txt
share|improve this answer
1  
A comment to the answer by Guru indicates that the program must be sed. –  Michael Gardner Mar 20 '13 at 13:06

Not the answer you're looking for? Browse other questions tagged or ask your own question.