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Using php how would I be able to define the variable $type into the content-type of http://www.example.com

For example: $type defined as "text/html"

So far this is what i am working with:

<?php
$url = 'http://www.example.com';
print_r(get_headers($url));
print_r(get_headers($url, 1));
?>

The code may be changed as much as needed

share|improve this question

Have you tried:

$type = get_headers($url, 1)["Content-Type"];

As noted in comments by @Michael, this syntax won't work without a very current version of PHP.

Have you also tried:

$headers = get_headers($url, 1);
$type = $headers["Content-Type"];

?

share|improve this answer
    
Note that this syntax ()[] is only valid in PHP 5.4. Earlier versions require you save the array to a variable, then retrieve the key. – Michael Berkowski Aug 19 '12 at 3:20
    
@Michael you read my mind – Lusitanian Aug 19 '12 at 3:20
    
My php is 5.3.13, is the second code snippet supposed to work on versions below 5.4 because i'm getting Parse error: syntax error, unexpected T_VARIABLE – Dual Signal Aug 19 '12 at 5:10
    
Second snippet worked great for me on PHP 5.4.36. +1 – Andrew Bucklin Feb 2 '15 at 1:53

Sometimes get_header return wrong values becouse it read http headers, but not file. It should be better use finfo:

$finfo = new finfo(FILEINFO_MIME_TYPE);
$type = $finfo->buffer(file_get_contents($link));
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