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I'm trying to cut the URL out of a web link

Say for example, I want take http://site.com/path/to/site.html to just print out 'site.com' or 'http://site.com'

This is the closest I can figure out but it's not working right:

echo "https://site.com/shisad/sadh" | sed -n "s/.*\(http.*\/\).*/\1/p"

which prints: https://site.com/shisad/

It's something I'm doing wrong with the special character '/" I think. Any ideas ?

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put the right command in –  Mike Q Aug 23 '12 at 4:18

3 Answers 3

up vote 2 down vote accepted
  1. When you're using sed to match path names, or other patterns containing slashes, use a character other than slash to delimit the regular expression; it makes life a lot easier.

  2. The .* pattern is greedy; it matches the longest possible string. You want a more constrained expression.

To print out http://site.com, you might use:

sed -n 's%.*\(https\{0,1\}://[^/]*\).*%\1%p'

To print out site.com, you might use:

sed -n 's%.*https\{0,1\}://\([^/]*\)/.*%\1%p'

If you think you might have a site without the slash after the host name (so the input only contains http://site.com), then you could use:

sed -n -e 's%.*https\{0,1\}://\([^/]*\)/.*%\1%p' \
       -e 's%.*https\{0,1\}://\([^/]*\)$%\1%p'

Note that these accept all sorts of punctuation characters as 'valid'; you can be more discriminating if you wish using, perhaps, [-a-zA-Z0-9_.]* in place of [^/]* — but beware internationalized domain names. The two pattern version doesn't stop at a blank after the URL; it would include the close parenthesis of (http://example.com). This is a corollary of the point about which characters are valid.

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echo "https://site.com/shisad/sadh"|awk -F/ '{print $1"//"$2$3}'
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This is very straight forward! Any downsides to this ? –  Mike Q Aug 23 '12 at 16:38

I'm assuming you're using GNU sed.

echo "https://site.com/shisad/sadh" | sed -r 's%.*(https://[^/]*).*%\1%'
https://site.com

To get just the domain name, you can simply to change the location of the storing parentheses:

echo "https://site.com/shisad/sadh" | sed -r 's%.*https://([^/]*).*%\1%'
site.com

You can of course do what you want with a simple perl grep:

echo "https://site.com/shisad/sadh" | grep -oP 'https://[^/]*'
https://site.com
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