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.

Here is an example of what I am trying to do, although originally I was attempting something more complicated I have tracked the problem to this bit of code. I am sure the problem relates to what is being passed to the array but all my attempts get the same result, four divs on top of each other in the corner.

--CSS--

div {
    position : absolute;
    border: 2px solid black;
}

--SCRIPT--

$(document).ready(function(){

var coordinates = [
"{'top' : '100px'}",
"{'top' : '200px'}",
"{'top' : '300px'}",
"{'top' : '400px'}"
]

var numberOfDivs = coordinates.length;

for (i=0; i<numberOfDivs; i++){
$('#parent').append('<div>'+i+'</div>').css(coordinates[i]);
}
}); 

--HTML--

<div id = "parent">
    parent
</div>
share|improve this question
2  
so what is the question? –  NullPoiиteя Sep 23 '12 at 10:54

5 Answers 5

up vote 1 down vote accepted

Two problems;

1) you need to get rid of the quotations around each object in the coordinates array like this:

var coordinates = [
{'top' : '100px'},
{'top' : '200px'},
{'top' : '300px'},
{'top' : '400px'}
]

2) you need to then apply the css to the <div>, not to the #parent.

$("<div></div>").appendTo('#parent').css(coordinates[i]);

Here is a jsFiddle for you to show it working http://jsfiddle.net/BZpRG/

share|improve this answer

Abody97 as right about the problem with passing a string as parameter to css. You also have a problem with applying .css to the wrong element (beacuse of jQuery chaining: http://tobiasahlin.com/blog/quick-guide-chaining-in-jquery/). I guess you want the css to be applied to each appended child, right?

Here is a jsFiddle that does that: http://jsfiddle.net/U3ezb/

share|improve this answer

Change your coordinates definition to this:

var coordinates = [
{'top' : '100px'},
{'top' : '200px'},
{'top' : '300px'},
{'top' : '400px'}
];

The key here is that you need to pass an object as a parameter to .css(), not a string.

Note: (thanks to @MartinLodgberg for pointing that out); another issue is that when you do:

$('#parent').append('<div>' + i + '</div>').css(coordinates[i]);

.css() is being called on $("#parent"). To apply it on the newly appended div, use something like this:

var div = $("<div>" + i + "</div>").css(coordinates[i]);
$("#parent").append(div);
share|improve this answer
    
Thank you and to everyone else who replied. I understand now what I was doing wrong, I had already tried passing objects, it was the #parent issue that I hadn't realised. –  Martin Welbourne Sep 23 '12 at 21:51

can you try the following

$(document).ready(function(){

    var coordinates = ['100px',200px','300px','400px'];
    var numberOfDivs = coordinates.length;
        for (i=0; i<numberOfDivs; i++){

       $('#parent').append('<div>'+i+'</div>').css('top',cordinates[i]);

              }
     });
share|improve this answer

You can't use the 'top' property with relative position You have 2 choices

var coordinates = [
        "top: 100px; position : absolute;",
        "top: 200px; position : absolute;",
        "top: 300px; position : absolute;",
        "top: 400px; position : absolute;"
        ]

Or

 var coordinates = [
         "margin-top: 100px;",
         "margin-top: 200px;",
         "margin-top: 300px;",
         "margin-top: 400px;"
         ]
share|improve this answer
    
He already has position : absolute; set... not relative at all –  Hank Sep 23 '12 at 11:36

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.