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I am in the process of making a jquery application to hide an image after a specified interval of time by using setInterval(). The problem is that the hide image function executes immediately without delay. I am testing it in jsfiddle.

jsfiddle

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setInterval(change(), x); -> setInterval(change, x); –  Felix Kling Oct 22 '11 at 8:19
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4 Answers

up vote 10 down vote accepted

http://jsfiddle.net/wWHux/3/

You called the function immediately instead of passing it to setInterval.

setInterval( change, 1500 ) - passes function change to setInterval

setInterval( change(), 1500 ) - calls the function change and passes the result (undefined) to setInterval

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Where you have setInterval(change(), 99999999); you end up calling the change() function immediately and passing the return value of it to the setInterval() function. You need delay the execution of change() by wrapping it in a function.

setInterval(function() { change() }, 9999999);

Or you can delay it by passing setInterval() just the function itself without calling it.

setInterval(change, 9999999);

Either works. I personally find the first one a bit clearer about the intent than the second.

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I had to pass some data to the function so this wrapper helped. Thanks! –  budidino Mar 27 '13 at 16:10
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You have setInterval(change(), 99999999); and it should be setInterval(change, 99999999);. See the documentation of setInterval/setTimeout why. :)

Common mistake, happens to me all the time. :)

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Change setInterval(change(), 99999999); to setInterval(change, 99999999);

And 99999999 means 99999999 milliseconds as you known.

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