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There is some error in the code below. The rJSON object contains a single sURL and single iURL(as found by checking in the console.log).
But when the imgList displays after the each condition, it has 3 identical sURL and iURLs in it.

Do you see any issues with this code below?

C.forgotIt = function (page, rJSON) {
    var tempPage = page;
    var imgList = "";

    $.each(rJSON, function (index, value) {
        imgList += "<a href='" + rJSON.sURLS + "'><img class='hsImage' src='" + rJSON.iURLS + "' /></a>";
    });

    page.find('.hsImages').html("<div class='imgListCont'>" + imgList + "</div>");
};

EDIT: rJSON looks like this through console: {iURLS: Array[1], sURLS: Array[1], RESULT: "OTHER_MEMBER"}

UPDATE: Currently it has one set of iURLS and sURLS but it could display any number of iURLS(and the same number of sURLS)

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They definitely should be duplicates since you are appending the same content to each anchor tag. the $.each is going through each property of rJSON in this case. –  Kevin B Jan 29 '13 at 19:47

1 Answer 1

up vote 0 down vote accepted

Most likely rJSON is an object with 3 properties. I already know there are at least 2 properties, sURLS and iURLS, and since it's iterating three times, there must be a 3rd unused property. (confirmed by edit to OP)

To get your current code to work, you don't need the $.each at all because you don't have an array.

 C.forgotIt = function (page, rJSON) {
     var tempPage = page;
     var imgList = "<a href='" + rJSON.sURLS + "'><img class='hsImage' src='" + rJSON.iURLS + "' /></a>";
     page.find('.hsImages').html("<div class='imgListCont'>" + imgList + "</div>");
 };

Update for your edit:

you need to use $.each on each property since the properties contain arrays.

 C.forgotIt = function (page, rJSON) {
     var tempPage = page;
     var imgList = "";
     $.each(rJSON.sURLS,function(i) {
         imgList += "<a href='" + rJSON.sURLS[i] + "'><img class='hsImage' src='" + rJSON.iURLS[i] + "' /></a>";
     });
     page.find('.hsImages').html("<div class='imgListCont'>" + imgList + "</div>");
 };

This assumes sURLS and iURLS will always have the same number of items and that they are in the same order.

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