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How can I get rid of unnecessary slashes in a given path?

Example:

p="/foo//////bar///hello/////world"

I want:

p="/foo/bar/hello/world"
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Use readlink:

p=$(readlink -m "/foo//////bar///hello/////world")

Notice that this will canonicalize symbolic links. If that's not what you want, use sed:

p=$(echo "/foo//////bar///hello/////world" | sed s#//*#/#g)
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3  
Could use readlink -m instead, and the directory doesn't need to exist. – Ryan Li Jan 9 '11 at 12:13
    
@Ryan Li Thanks, that's indeed way better. Updated. – phihag Jan 9 '11 at 12:17
    
Thanks. I already tried sed 's/\/\//\//g' which doesnt worked in the way I want. – casper Jan 9 '11 at 12:40

Using pure Bash:

shopt -s extglob
echo ${p//\/*(\/)/\/}
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  1. Consider if you need to do this. On Unix, specifying duplicate path separators (and even things like /foo/.//bar///hello/./world work just fine.
  2. You can use readlink -f, but this will also canonicalize the symlinks in that path, so the result depends on your filesystem and the path supplied must actually exist, so this won't work for virtual paths.
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most of the time, extra slashes work fine, but in some cases they cause problems (I once had this with an rsync option not working correctly if the path had doubles slashes) – steabert Aug 16 '11 at 8:26

This works with multiple separators and does not assume the given path should exist:

p=/foo///.//bar///foo1/bar1//foo2/./bar2; 
echo $p | awk '{while(index($1,"/./")) gsub("/./","/"); while(index($1,"//"))
     gsub("//","/");  print $1;}'

But does not simplify well strings containing ".."

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up vote -1 down vote accepted

Thanks for the replys. I know the path works fine. I just want this for optical reasons.

I found another solution: echo $p | replace '//' ''

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