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how can i select the 3 balls in the same function call?

here is the fiddle link: http://jsfiddle.net/X3SVp/2/

function flipper(){
    $('#ball_1, #ball_2').each.animate({
        "left": '-90',
    }, function(){
        $('#ball_1, #ball_2').animate({
            "left": '200',
        }, flipper());
    });
}

flipper();
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2  
use class instead –  shadow Oct 28 '13 at 18:02
    
look at my fiddle: jsfiddle.net/X3SVp/8 –  Yogesh Jindal Oct 28 '13 at 18:21
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3 Answers

up vote 4 down vote accepted
function flipper(){
    $('#ball_1, #ball_2, #ball_3').animate({left : -90}, function() {
        $(this).animate({left: 200}, flipper);
    });
}

FIDDLE

You also need to add a position to all balls, and an initial left value, otherwise it won't work as jQuery doesn't have a starting position, and elements with a static position doesn't move.

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thanks very much for your answer –  alonblack Oct 28 '13 at 18:16
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you are close

$('#ball_1, #ball_2, #ball3, #ball4').animate({left : -90}, function() {
    $(this).animate({left: 200}, flipper);
});

, is used to have work on multiple, each is not needed in this case

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Do you want all instances of ball_#? If so, you can use the "starts with" selector:

$("[id^='ball_']")

That will select all elements with an id attribute that starts with "ball_".

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nice! thank you... –  alonblack Oct 28 '13 at 18:16
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