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Im having problems using a counter with $.each I am getting a JSON feed and then want to loop out the 'title' of the results. If I use a number then it works but when I try using a counter 'ie var i = 1', it doesnt work. I think it is something to do with the variable not being passed to the function correctly?

Thanks

  var i = 1;

  $.getJSON("http://www.aaronlumsden.com/api/?json=get_category_posts&slug=portfolio",function(data) {

   $.each(data, function(i) {
                    $('#navScroller').append('<li><a rel=""href="" title="">'+data.posts[i].title+'</a></li>');
                    i++;
                });
 });
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1  
The parameter i you define for the callback shadows the variable i you define. You could just omit the parameter, but I think there is a much easier solution than using a counter, depending on data. –  Felix Kling Mar 3 '12 at 10:53

4 Answers 4

Even when fixing the shadow problem, I don't think your code will work like expected.

data is an object and $.each() [docs] iterates over each property of the object. So far I can see that it has 5 properties (here as JSON):

{
    "status":"ok",
    "count":8,
    "pages":1,
    "category":{...},
    "posts": [...]
}

If these are the only ones, $.each() will call the callback five times, which means you get the title of the first five posts. Or in case there are less than 5 posts, you will get an error.

I think you actually want to iterate over all posts from the response, which would be:

var $scroller = $('#navScroller');
$.each(data.posts, function(i, post) {
    $scroller.append('<li><a rel=""href="" title="">'+post.title+'</a></li>');
});

If you have many posts it also makes sense to create the complete HTML string beforehand and only call .append() once, for example:

$('#navScroller').append($.map(data.posts, function(post) {
    return '<li><a rel=""href="" title="">'+post.title+'</a></li>';
}).join('')); // not sure if you actually need `.join`
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var k = 1;

  $.getJSON("http://www.aaronlumsden.com/api/?json=get_category_posts&slug=portfolio",function(data) {

   $.each(data, function(i) {
     $('#navScroller').append('<li><a rel=""href="" title="">'+data.posts[i].title+'</a></li>');
     k++;
   });
   // Use k here
 });
share|improve this answer
    
I cannot imagine how this should work... i will be the name of a property of data (i.e. a string) but data.posts is an array, so data.posts[i] will be undefined. Did you mean data.posts[k]? –  Felix Kling Mar 3 '12 at 11:06
    
@Felix Kling No see stackoverflow.com/questions/2342371/… i variable will be the key –  dotoree Mar 3 '12 at 11:13
    
Ok, three remarks on that: (a) If you read my answer you will see that data is not an array but an object. Have you actually looked at the URL and the response? In the question you linked to, data is an array, that is a different scenario. (b) If data was an array, it would not have a property data.posts and even if it had, what makes you think that data and data.posts have the same length? What if data.post is shorter than data? (c) Why do you keep a useless variable k` in your example then? –  Felix Kling Mar 3 '12 at 11:22
    
Yes, you 're right, didn't see you answer. I meant that data.posts would be array containing objects. Regarding k var, I put it instead of i to fix the code. –  dotoree Mar 3 '12 at 11:56

In the each-function. You declare a parameter i. This overrides the var i = 1 that is on the first line. Remove the i in function(i) and I think it will be fine.

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Excellent, worked like a treat. Thank you for your help :-) –  Aaron Lumsden Mar 3 '12 at 10:54
var k = 1;

  $.getJSON("http://www.aaronlumsden.com/api/?json=get_category_posts&slug=portfolio",function(data) {

   $.each(data.posts, function(i) {
     $('.nav').append('<li><a rel=""href="" title="">'+data.posts[i].title+'</a></li>');
     k++;
   });
   // Use k here
 });

I tried in that website. It is working

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If so, please check my answer as the correct one :) –  dotoree Mar 3 '12 at 11:00
    
For the question ur answer is correct, but i tried with the selector on main site, used ur code because it is correct –  ranganadh Mar 3 '12 at 11:03

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