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i have this small peace of js code:

var config = $('.fullscreen_src');
var i=0;
function display_images(){
    i++;
    var image = config[i % config.length];
    image.css('display', 'block');
}
setInterval(display_images, 3000);

and it throws error every 3 sec because of delay. The error is this TypeError: image.css is not a function and i don't know what cuse it. When i change function display_image to this:

function display_images(){
    i++;
    alert('tralal ' + i);
}

it's working fine, why ?

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1  
css is function of Jquery object. wrap the object inside $(image) –  Ravi Gadag Jan 31 '13 at 11:10
    
just a note that use of setInterval is discouraged; it is far better to use setTimeout, with a repeated call inside the function. See this page for a detailed explaination of why. –  SDC Jan 31 '13 at 11:18

4 Answers 4

up vote 1 down vote accepted
function display_images(){
    i++;
    var image = config[i % config.length];
    $(image).css('display', 'block');  // Use jQuery object..
}
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thanks for quick responde :D –  Viszman Jan 31 '13 at 11:21

You need to create a Jquery Object which contains the css function

function display_images(){
    i++;
    var image = $(config[i % config.length]);
    image.css('display', 'block');
}
share|improve this answer

css is function of Jquery object. wrap the object inside $(image), try like this

function display_images(){
    i++;
    var image = $(config[i % config.length]); // now image is Jquery object, so you can access CSS methods 
    image.css('display', 'block');
}

or you can wrap the image object with jquery

 $(image).css('display', 'block');
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Try modifying your code like this.

var image = config[i % config.length];
image = $(image);
image.css('display', 'block');
share|improve this answer

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