Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

For instance, if I input: http://www.google.com/

It would return: http://www.google.com/images/logos/ps_logo2.png

Using javascript/jquery. These sites would all be external. Thank you!

share|improve this question
    
you have asked the exact same question some time ago here: stackoverflow.com/questions/3615983/… - why again? –  oezi Sep 16 '10 at 11:08
add comment

3 Answers

up vote 3 down vote accepted

Since that is a Google Chrome extension, you are not bound to same origin policy.

Basically, you would need content scripts to fetch all the images within a page, and check each image's size within the DOM to know if its larger the last fetched image.

You can use Message Passing, to communicate from the Content Script to the popup/background page.

For example, I will show you how to get the largest image from a page and show it within the popup. We use all the techniques shown above and you will see the largest image within the popup if you activate it. (should show I believe :))

manifest.json (snippet)

 ...

 "permissions": [
   "tabs",
   "http://*/*"
 ],
  "content_scripts": [
  {
    "matches": ["http://*/*"],
    "js": ["images.js"],
    "run_at": "document_start",
    "all_frames": true
  }
 ]

...

popup.html

<!DOCTYPE html> 
<html>
<head>
<script>
function getImage() {
  chrome.tabs.getSelected(null, function(tab) {
    chrome.tabs.sendRequest(tab.id, {method: "getImage"}, function (response) {
      var text = document.getElementById('image'); 
      var image = response.data;
      text.src = image ? response.data : 'no_image.gif';
    });
  });
}
</script>
</head>
<body>
<button onclick="getImage(); ">Get Largest Image</button>
<img src="no_image.gif" id="image"/>
</body>
</html>

images.js (content script)

function getMaxImage() {
  var maxDimension = 0;
  var maxImage = null;

  // Iterate through all the images.
  var imgElements = document.getElementsByTagName('img');
  for (var index in imgElements) {
    var img = imgElements[index];
    var currDimension = img.width * img.height;
    if (currDimension  > maxDimension){
       maxDimension = currDimension
       maxImage = img;
    }
  }
  // Check if an image has been found.
  if (maxImage) 
    return maxImage.src;
  else
    return null;
}

// Listen for extension requests.
chrome.extension.onRequest.addListener(function(request, sender, sendResponse) {
  if (request.method == "getImage") {
    sendResponse({data: getMaxImage()});
  } else {
    sendResponse({}); // snub them.
  }
});
share|improve this answer
1  
though it's an old answer, but you can use document.images instead of document.getElementsByTagName('img') :) –  bitsMix Mar 29 '12 at 9:42
add comment

This is more web-scaping that JavaScript/jQuery.

However, given that you've recieved the HTML, and that it is available somehow in a JavaScript string, then something like the following might suffice for finding the maximum dimension image:

var sHTML = getHTMLSomehow(sURL);
var nMaxDim = 0;
var $pageDOM = $(sHTML);
var $objMaxDimImage;

$pageDOM.("img").each(function(){
    var $this = $(this);
    var nDim = parseFloat($this.width()) * parseFloat($(this).height());
    if (nDim > nMaxDim){
        $objMaxDimImage = $this;
        nMaxDim = nDim
    }
});

alert("Max dim is:" nMaxDim);
alert("Image Source:" $objMaxDimImage.attr("src"));
share|improve this answer
add comment

due to the same origin policy you cant access an external site with javascript. maybe you can write a server-side script that downloads the page (for example using wget), search for img-tags in the html code and load all found images to check the size.

share|improve this answer
add comment

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.