1

I have got a PHP code to get all images in a URL. It will display the URL of the image. But there are some problems with the URL of the image obtained.

1: If the images are hosted in the root directory, it will not show the domain. For example, if the given URL is www.google.com, the URL of the image obtained is

"/logos/doodles/2014/womens-day-2014-6253511574552576.3-hp.png"

and what I need is

"www.google.com/logos/doodles/2014/womens-day-2014-6253511574552576.3-hp.png"

2: The URL obtained is always between " ". How can I remove it??

Here the PHP code

<?php
$url_image = $_GET['url'];
$homepage = file_get_contents($url_image);
preg_match_all("{<img\\s*(.*?)src=('.*?'|\".*?\"|[^\\s]+)(.*?)\\s*/?>}ims", $homepage, $matches, PREG_SET_ORDER);
foreach ($matches as $val) {
echo $val[2];
echo "<br>";
}
?>
1
3

try this:

$url_image = $_GET['url'];
$homepage = file_get_contents($url_image);
preg_match_all("{<img\\s*(.*?)src=('.*?'|\".*?\"|[^\\s]+)(.*?)\\s*/?>}ims", $homepage, $matches, PREG_SET_ORDER);
foreach ($matches as $val) {

    $pos = strpos($val[2],"/"); 
    $link = substr($val[2],1,-1);
    if($pos == 1)
        echo "http://domain.com" . $link;
    else
        echo $link;
    echo "<br>";
}
2
  • 1
    thanks it worked. I made some modifications and got the right thing. thanks a lot here is the modified code <?php $url_image = $_GET['url']; $homepage = file_get_contents($url_image); preg_match_all("{<img\\s*(.*?)src=('.*?'|\".*?\"|[^\\s]+)(.*?)\\s*/?>}ims", $homepage, $matches, PREG_SET_ORDER); foreach ($matches as $val) { $pos = strpos($val[2],"/"); if($pos == 1) { $link = substr($val[2],2,-1); echo $url_image. $link; } else { $link = substr($val[2],1,-1); echo $link; echo "<br>"; } } ?> Mar 7 '14 at 14:07
  • you are welcome,please upvote or accept as answer if it was of some use :)
    – ehmad11
    Mar 7 '14 at 14:28
0

You can remove the "" using substr($url,1,-1);

1
  • @keepwalking wow, that really worked. Thanks a lot. I used first one Mar 7 '14 at 13:56

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