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What I need to do is retrieve a link through a command such as:

wget --quiet -O - linkname

Then pipe it to sed to just display ONLY the links on the page not the formatting.

What i got so far only displays lines with the all the html code along side of it.

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could you show the code you written for last 2 lines? Also what is your expected output? show a sample – shiplu.mokadd.im Mar 28 '12 at 1:12
    
You might also want to look into web scraping tools. – Brian Swift Mar 28 '12 at 1:51

You can pipe the result to grep with -o(match-only) option:

$ wget --quiet -O - http://stackoverflow.com | grep -o 'http://[^"]*'

To get all url inside href="...":

grep -oP '(?<=href=")[^"]*(?=")'
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I am looking more along the lines of using sed. I need to learn it. What I got is this... but I want an all sed command - wget --quiet -O - link | grep -o '<a href=['"'"'"][^"'"'"']*['"'"'"]' | sed -e 's/^<a href=["'"'"']//' -e 's/["'"'"']$//' – leeman24 Mar 30 '12 at 3:59
up vote 1 down vote accepted

I believe this is what I was looking for.

sed -n "/href/ s/.*href=['\"]\([^'\"]*\)['\"].*/\1/gp"
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grep "<a href=" sourcepage.html
  |sed "s/<a href/\\n<a href/g" 
  |sed 's/\"/\"><\/a>\n/2'
  |grep href
  |sort |uniq
  1. The first grep looks for lines containing urls. You can add more elements after if you want to look only on local pages, so no http, but relative path.
  2. The first sed will add a newline in front of each a href url tag with the \n
  3. The second sed will shorten each url after the 2nd " in the line by replacing it with the /a tag with a newline Both seds will give you each url on a single line, but there is garbage, so
  4. The 2nd grep href cleans the mess up
  5. The sort and uniq will give you one instance of each existing url present in the sourcepage.html
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