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I am querying image using getElementsByTagName("img") and printing it using image->src , it does not work. I also tried to use image->nodeValue this to does not work.

require('simple_html_dom.php');

$dom=new DOMDocument();
$dom->loadHTML( $str);       /*$str contains html output */

$xpath=new DOMXPath($dom); 
$imgfind=$dom->getElementsByTagName('img');  /*finding elements by tag name img*/

foreach($imgfind as $im)
{
    echo $im->src;        /*this doesnt work  */   
    /*echo $im->nodeValue;  and also this doesnt work (i tried both of them             separately ,Neither of them worked)*/

    // echo "<img src=".$im->nodeValue."</img><br>"; //This also did not work
}

/*the image is encolsed within div tags.so i tried to query value of div and print but still image was not printed*/

$printimage=$xpath->query('//div[@class="abc"]'); 
foreach($printimage as $image)
{
    echo $image->src;   //still i could not accomplish my task
}
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Emmm.. Could you reduce the length of that title please? –  Hanky 웃 Panky Apr 17 '13 at 5:28
    
Did you try var_dump($imgfind); –  Hanky 웃 Panky Apr 17 '13 at 5:29
1  
use echo $im->getAttribute('src'); instead of echo $im->src; –  saveATcode Apr 17 '13 at 5:31
    
Also, since you're using DOM, there doesn't seem to be necessary to require('simple_html_dom.php'). –  Passerby Apr 17 '13 at 5:46
    
@saveATcode i tried using echo $im->getAttribute('src'); it just prints src value of image and not the image.i.e.<img src='a.jpg'> it prints a.jpg as text and it does not print the actual image . –  sujai Apr 17 '13 at 6:18

1 Answer 1

up vote 1 down vote accepted

Okay, use this to display your image:

foreach($imgfind as $im)
{
  echo "<img src=".$im->getAttribute('src')."/>"; //use this instead of echo $im->src;
}

and it will surely display your image. Make sure path to the image is correct.

share|improve this answer
    
,Thanks the code worked ,there is one small correction i made to ur code ,i.e,a space before ending slash in echo "<img src=".$im->getAttribute('src')." />"; rather than echo "<img src=".$im->getAttribute('src')."/>";(it considers image to be a directory without space ..otherways its perfectly fine.thanks a lot buddy. –  sujai Apr 17 '13 at 13:48
    
Great !!!!!!!!!! –  saveATcode Apr 17 '13 at 14:12

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