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.

I have this code:

<script type="text/javascript">
var url = "http://www.xxxxx.xxx/xxxxxxxxx";

var txt;
var id1;
var id2;
var imgarres = [];
var imgarr = [];
var imgels = [];

function getdata() {
    if (id1){clearTimeout(id1);}
    if (id2){clearTimeout(id2);}

    var xhr = new XMLHttpRequest();
    xhr.open('GET',url, true);
    xhr.setRequestHeader('Cache-Control', 'no-cache');
    xhr.setRequestHeader('Pragma', 'no-cache');

    xhr.onreadystatechange = function() {
        if (xhr.readyState == 4)  {
            txt = xhr.responseText;

            var r = txt.indexOf('<b class="fl_r">Online</b>');
            var el = document.createElement("div");

            el.innerHTML = txt;

            var n = imgprocess(el);     
            var nam = el.getElementsByTagName("title")[0].innerHTML;

            if (r != -1) {
                var notification = webkitNotifications.createNotification('plus.gif',  nam, 'online!!' );
                notification.show();
                var id1 = setTimeout(getdata, 60000);
            } else {
                var notification = webkitNotifications.createNotification(n,  nam, 'offline!!' );
                notification.show();
                var id2 = setTimeout(getdata, 600000);
            }
        }
    }

    xhr.send();    
}

function imgprocess(text) {
    imgels = text.getElementsByTagName("IMG");
    for (var i=0;i< imgels.length;i++) {
        if (imgels[i].src.indexOf(parse(url)) != -1) {
            imgarr = imgels[i];
        }
    }

    for (var p=0; p< imgarr.length; p++) {
        if (imgarr[p].parentNode.nodeName=="A") {
            imgarres = imgarr[p];
        }
    }

    var z = imgarres[0].src;
    return z; 
}

function init() {
    getdata();
}
</script>
</head>
<body onload="init();">

When I execute this code, error says "src cannot be read of undefined" about var z = imgarres[0].src; When I remove src from that line, extension works without errors, but imgprocess routine doesn't return expected value! The expected value is imgurl, which is in src that I removed. It seems that the second for loop (for (var p=0; p< imgarr.length; p++){) doesn't run at all, but the first one is OK. How do I fix this?

P.S.: I tried passing callback like this: xhr.onreadystatechange = function(imgprocess) { but it doesnt work. It says "uncaught typeerror" object is not a function.

share|improve this question

1 Answer 1

up vote 3 down vote accepted
 if (imgels[i].src.indexOf(parse(url)) != -1){
    imgarr = imgels[i];
 }

it looks like you're overwriting an array with a single element in the above code.

Added edit:

If the if condition is true, imgels[i] is an element (with an src) but instead of adding imgels[i] to the imgarr array, you are changing imgarr to point to a single element.

Then in the second for loop, you are treating it as an array.

In fact, this is also a mistake in the second loop. Is imgarres supposed to be an array or not? If it is then imgarres = imgarr[p]; is wrong (it points to an element after you do that). If it isn't then var z = imgarres[0].src; is wrong (if it is an element you don't need the [0]).

Added edit:

somearray = someelement; 

does not add the element to the array!

somearray.push(someelement);

does.

Added edit: just try this instead. Who knows, it might work...

function imgprocess(text){
 // get all IMG elements below the div
 imgels = text.getElementsByTagName("IMG");
 // filter them somehow
 imgarr = [];
 for (var i=0;i< imgels.length;i++){
   if (imgels[i].src.indexOf(parse(url)) != -1){
    imgarr.push(imgels[i]);
   }
 }

 // filter again, could probably be joined into one loop
 imgarres = [];
 for (var p=0; p< imgarr.length; p++){
   if (imgarr[p].parentNode.nodeName=="A"){
     imgarres.push(imgarr[p]);
   }
 }
 // return the first image's src if any
 if (imgarres.length > 0) {
   return imgarres[0].src;
 }
 return null;
}
share|improve this answer
    
what do you mean?? i checked first for loop with console.log(imgarr); the first for loop was fine.. –  DrStrangeLove Jul 4 '11 at 1:06
    
I added some explanation and explained why the second loop is wrong. –  lmz Jul 4 '11 at 1:13
    
then why does console.log(imgarr) outputs img elements i need?? –  DrStrangeLove Jul 4 '11 at 1:18
    
imgarres is array. i want to put filtered elements in it. filtered from imgarr array. –  DrStrangeLove Jul 4 '11 at 1:20
    
Your console.log(imgarr), does it output the "img elements" you need or does it output the "img element" you need? Try console.log(imgarr.length), does it output anything? –  lmz Jul 4 '11 at 1:23

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.