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I'm trying to create an effect that works in a queue, so that each effect starts only after the previous one finished. I was successful, but I'm sure that there's a cleaner way.

This is what I have so far:

$("tr:last td:nth-child(1) div").slideUp(200, function() {
    $("tr:last td:nth-child(2) div").slideUp(200, function() {
        $("tr:last td:nth-child(3) div").slideUp(200, function() {
            $("tr:last td:nth-child(4) div").slideUp(200, function() {
                $("tr:last td:nth-child(5) div").slideUp(200, function() {
                    $("tr:last td:nth-child(6) div").slideUp(200, function() {
                        $("tr:last td:nth-child(7) div").slideUp(200, function() {
                            $("tr:last").remove();
                        });
                    });
                });
            });
        });
    });
});

There's gotta be a cleaner way, right?

Much obliged in advance.

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3 Answers

up vote 4 down vote accepted

Ouch, that's horrid! I'd do it by using delay:

var divs = $("tr:last td div");
divs.each(function(idx, el) {
    $(this).delay(idx * 200).slideUp(200, function(){
        if (idx === divs.length - 1) { // 0-based index
            $("tr:last").remove()
        }
    });
});
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Wow! Beautiful! Thanks! Can I do this with an each loop? –  rpophessagr Jan 12 '11 at 12:10
    
@user See edit. –  lonesomeday Jan 12 '11 at 12:15
    
The new version looks even cleaner... nice :) +1 –  Felix Kling Jan 12 '11 at 12:17
1  
@user See the documentation for each. idx is the position of the element in the selection; el is the element being processed and is identical to this. –  lonesomeday Jan 12 '11 at 12:27
1  
To make it more flexible, maybe better would be if(($(this).closest('td').is(':last')) { /* remove */}. Would be slower but not depend on the number of td s in the row. Or you count the td s beforehand. –  Felix Kling Jan 12 '11 at 12:38
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Just as you say in your question. Use .queue().

http://api.jquery.com/queue

and check:

Can somebody explain jQuery queue to me?

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Does it queue effects on different elements? Reading the documentation I would say no, every element has its own queue. How would you use queue then? –  Felix Kling Jan 12 '11 at 12:08
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You could make a recursive function:

function slide(i) {
    if(i < 8) {
        $("tr:last td:nth-child(" + i + ") div").slideUp(200, function() {
            slide(i+1);
        });
    }
    else {
        $("tr:last").remove();
    }
}
slide(1);

But it is all very hardcoded....

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