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I'm creating eight divs which I want to be appended one and one to eight other divs, with the use of these divs classes:

var foo1 = "<span class='fooClass'>Foo text1</span>";
var foo2 = "<span class='fooClass'>Foo text2</span>";
var foo3 = "<span class='fooClass'>Foo text3</span>";
var foo4 = "<span class='fooClass'>Foo text4</span>";
var foo5 = "<span class='fooClass'>Foo text5</span>";
var foo6 = "<span class='fooClass'>Foo text6</span>";
var foo7 = "<span class='fooClass'>Foo text7</span>";
var foo8 = "<span class='fooClass'>Foo text8</span>";

$('.fooData').each(function(i) {
    $('this').append('foo' + i);
});

The .fooData divs (again, there are eight of them as well) is created before the divs that I want to append is created.

However this doesn't work (i.e no data is added to the .fooData-divs). What am I doing wrong?

Note: The .fooData-divs also have other classes if that matters, e.g:

<div class="color4 fooData leftSide"></div>
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.Foodata doesnt exist, so that wont work. –  JonathanRomer Jan 27 '13 at 14:08
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2 Answers 2

up vote 2 down vote accepted

It would be better to use array instead of using variables and evaluating their names.

foo = [];
var foo[0] = $("<span class='fooClass'>Foo text1</span>");
var foo[1] = $("<span class='fooClass'>Foo text2</span>");

$('.fooData').each(function(i) {
    $(this).append(foo[i]);
});
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Thanks alot for this. Worked like a charm! I'll accept your answer as soon as it's possible. –  holyredbeard Jan 27 '13 at 14:18
    
You are welcome, so nice of you. –  Adil Jan 27 '13 at 14:26
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Nearly everything in this script is wrong. The index of the each starts with 0and you do not have a variable foo0 defined. Adding to this you append a string to the fooData Elements, not your defined variables. Also $('this')(again a string) will not work.

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Thanks. Ok, but what should I do to append the variables? –  holyredbeard Jan 27 '13 at 14:14
    
Do you want to append these 8 span elements to every fooData element? Or are the fooData numbered? Or what do you want to append exactly where? @Adil's answer shows you how to correctly use jQuery.each. Maybe this already fixes you problem? If not you have to clarify what you are trying to do. –  migg Jan 27 '13 at 14:17
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