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In Linux how can I fetch an URL and get its contents in a variable in shell script?

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6 Answers 6

up vote 53 down vote accepted

You can use wget command to download the page and read it into a variable as:

content=$(wget google.com -q -O -)
echo $content

We use the -O option of wget which allows us to specify the name of the file into which wget dumps the page contents. We specify - to get the dump onto standard output and collect that into the variable content. You can add the -q quiet option to turn off's wget output.

You can use the curl command for this aswell as:

content=$(curl -L google.com)
echo $content

We need to use the -L option as the page we are requesting might have moved. In which case we need to get the page from the new location. The -L or --location option helps us with this.

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That doesn't answer the "and get it's content in a variable" part of the question. –  Vivien Barousse Sep 18 '10 at 18:48
    
@Downvoter: care to explain ? –  codaddict Sep 18 '10 at 18:55
1  
I explained, and your question has been edited since, so my downvote doesn't mean anything anymore... (It actually turned into an upvote). –  Vivien Barousse Sep 18 '10 at 19:08
    
This is a really neat trick. I invoke a shell script via a php script on a proxy server. When asked, the proxy server turns on expensive servers which shut themselves off after 2 hours. I need the output from wget for standard output to feed back to the Jenkins console record. –  Dennis Jul 12 '12 at 1:42

There is the wget command or the curl.

You can now use the file you downloaded with wget. Or you can handle a stream with curl.


Resources :

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Hi there is many way to get a page in command line... but it also depends if you want the code source or the page itself:

If you need the code source

with curl: curl $url

with wget: wget -O - $url

but if you want to get what you can see with a browser, lynx can be usefull: lynx -dump $url

I think you can find so many solutions for this little problem, maybe you should read all man page for those commands. And don't forget to replace $url by your url :)

Good luck :)

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content=`wget -O - $url`
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2  
$(...) is preferred over ..., see mywiki.wooledge.org/BashFAQ/082 –  rjack Sep 18 '10 at 19:18
1  
I guess I'm showing my age. Back in the day, all we had were backticks...and we liked it! Now get off my lawn! –  Jim Lewis Sep 18 '10 at 19:28
    
@rjack: (But the article you linked to does make a pretty good case for the $(...) syntax.) –  Jim Lewis Sep 18 '10 at 19:33

You can use curl or wget to retrieve the raw data, or you can use w3m -dump to have a nice text representation of a web page.

$ foo=$(w3m -dump http://www.example.com/); echo $foo
You have reached this web page by typing "example.com", "example.net","example.org" or "example.edu" into your web browser. These domain names are reserved for use in documentation and are not available for registration. See RFC 2606, Section 3.
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If you have LWP installed, it provides a binary simply named "GET".

$ GET http://example.com
<!DOCTYPE HTML PUBLIC "-//W3C//DTD HTML 4.01 Transitional//EN">
<HTML>
<HEAD>
  <META http-equiv="Content-Type" content="text/html; charset=utf-8">
  <TITLE>Example Web Page</TITLE>
</HEAD> 
<body>  
<p>You have reached this web page by typing &quot;example.com&quot;,
&quot;example.net&quot;,&quot;example.org&quot
  or &quot;example.edu&quot; into your web browser.</p>
<p>These domain names are reserved for use in documentation and are not available 
  for registration. See <a href="http://www.rfc-editor.org/rfc/rfc2606.txt">RFC 
  2606</a>, Section 3.</p>
</BODY>
</HTML>

wget -O-, curl, and lynx -source behave similarly.

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