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I have a small question; In PHP I have used curl to get data from an URL:

$url = "http://www.prelovac.com/vladimir/wp-content/uploads/2008/03/example.jpg";

With that I use curl_getinfo() which gave me an array:

Array
(
[url] => http://www.prelovac.com/vladimir/wp-content/uploads/2008/03/example.jpg
[content_type] => image/jpeg
[http_code] => 200
[header_size] => 496
[request_size] => 300
[filetime] => -1
[ssl_verify_result] => 0
[redirect_count] => 0
[total_time] => 2.735
[namelookup_time] => 0.063
[connect_time] => 0.063
[pretransfer_time] => 0.063
[size_upload] => 0
[size_download] => 34739
[speed_download] => 12701
[speed_upload] => 0
[download_content_length] => 34739
[upload_content_length] => -1
[starttransfer_time] => 1.282
[redirect_time] => 0
)

How can I get the name of the image in the link [url] => http://www.prelovac.com/vladimir/wp-content/uploads/2008/03/example.jpg such as

[image_name] : example
[image_ex] : jpg

Thanks for any suggestion!

share|improve this question
    
Strictly that isn't the name of the image, though it is the name most browsers would give it if they saved it most of the time, because most entites on the web don't have names but it's likely to be a good choice. If the person in charge of prelovac.com had really wanted to set a name they'd have used the content-disposition header. While browsers are allowed to still ignore that, if you want to match what most users will see files saved as, then examine that first and only examine the URI's path-information if it's absent. –  Jon Hanna Dec 19 '11 at 11:37

4 Answers 4

up vote 3 down vote accepted

Use pathinfo

share|improve this answer
    
Thank you Tobi , it worked ! :D –  johnITBonuc Dec 19 '11 at 4:30
    
@NameNo Don't forget to accept Tobi's answer –  Phil Dec 19 '11 at 4:32
$url_arr = explode ('/', $arr['url']);
$ct = count($url_arr);
$name = $url_arr[$ct-1];
$name_div = explode('.', $name);
$ct_dot = count($name_div);
$img_type = $name_div[$ct_dot -1];

echo $name . "  " . $img_type;
share|improve this answer
    
thanks check123 –  johnITBonuc Dec 19 '11 at 4:43
$URL = urldecode('http://www.greenbiz.com/sites/default/files/imagecache/wide_large/Woman_HORIZ.jpg?sunny=20$mal+1');
$image_name = (stristr($URL,'?',true))?stristr($URL,'?',true):$URL;
$pos = strrpos($image_name,'/');
$image_name = substr($image_name,$pos+1);
$extension = stristr($image_name,'.');
if($extension == '.jpg' || $extension == '.png' || $extension == '.gif' || $extension == '.jpeg'){`enter code here`
print $image_name;
}
share|improve this answer
    
There are PHP functions that can do this in one go. –  tntu Oct 21 '12 at 13:22
$imagePath = 'http://www.prelovac.com/vladimir/wp-content/uploads/2008/03/example.jpg';

$imageName = get_basename($imagePath);

function get_basename($filename)
{
    return preg_replace('/^.+[\\\\\\/]/', '', $imagePath);
}
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