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I'm trying to use a for loop to cycle through an array of URLs and use them for ajax calls. Outside of the ajax call, i changes value correctly, but when I try and access it from inside the call it always returns 2. It loops correctly but with the same value instead of cycling through 0, 1 etc.

var i = 0;
for(i = 0; i <= 1; ++i) {
    console.log("Value outside of call = " + i);
    $.ajax({
        url : urls[i],
        dataType : 'jsonp',
        timeout : 3000,
        count : 0,
        success : function(data) {
            console.log("Value inside of call = " + i);
            shotInfo[i] = data;
        },
        error : function() {
        }
    })
}

I've tried using a while loop too, but it has the same effect.

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1  
@TomalakGeret'kal whatever lets you sleep well, it's harsh. The guy is probably new. You've never made silly mistakes I guess. Just looked, he is 14 years old. As for the up vote, I agree but I wouldn't bother to give an up vote to someone being rude. –  Craig Dec 28 '11 at 15:12
1  
I did research, both SO and the web, sorry. And I'd love to read a book, what would you recommend? –  ZeshanA Dec 28 '11 at 15:14
1  
It would be great if we take nothing to our heart and be more professional. This is a beginner question and we must help beginners understand. @ZenshanA You can understand easily from your loggers. You could see the logs inside your AJAX after all your logs outside the AJAX prints. –  hop Dec 28 '11 at 15:20
1  
What would have helped you here is understanding variable scope which is a concept for beginners but I see this confusion come up often enough with ajax and async calls. Remember that your success option is a callback which is not executed in conjunction with the loop. –  Craig Dec 28 '11 at 15:26
1  
@hop 's last comment is what you are looking for. You could add the index as a querystring param and return it as a part of the data. –  Craig Dec 28 '11 at 15:44
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2 Answers 2

You only have one variable i. When the callbacks fire, it has its final value of 2.

Make a closure.

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Basically, the success call back happens after the AJAX request completes. That may be the issue. Try if this works.

var i = 0;
for(i = 0; i <= 1; ++i) {
    console.log("Value outside of call = " + i);
    var currentIndex = i;
    $.ajax({
        url : urls[currentIndex],
        dataType : 'jsonp',
        timeout : 3000,
        count : 0,
        success : function(data) {
            console.log("Value inside of call = " + currentIndex);
            shotInfo[currentIndex] = data;
        },
        error : function() {
        }
    })
}
share|improve this answer
    
Thanks for replying, but that code has the same issue. I'm reading up on closures before I ask any more stupid questions, thanks again! –  ZeshanA Dec 28 '11 at 15:29
    
Yes you are correct. Probably, I would suggest you to carry the currentIndex through the AJAX request and read the index from the response. –  hop Dec 28 '11 at 15:33
    
I'm sorry for being so thick, but I'm not quite sure what you mean, could you explain what you mean a bit more please, if it isn't too much trouble? –  ZeshanA Dec 28 '11 at 17:32
    
You need to send the current index as a parameter in your request and send it back in the response. It can be some thing like url:urls[currentIndex]+'?currentIndex='+currentIndex. And in your code, you need to add it with the response. Say it will be like shotInfo[data.currentIndex] = data.actualData; –  hop Dec 29 '11 at 3:58
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