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I have this chunk of javascript that's kind of hacked around from http://www.developphp.com/view.php?tid=1248 and I am seeing an error of "undefined variable - broadcast".

function cdtd(broadcast) {
    /* expected date format is Month DD, YYYY HH:MM:SS */
    var nextbroadcast = new Date(broadcast);
    var now = new Date();
    var timeDiff = nextbroadcast.getTime() - now.getTime();
    if (timeDiff <= 0) {
        clearTimeout(timer);
        document.getElementById("countdown").innerHTML = "<a href=\"flconlineservices.php\">Internet broadcast in progress<\/a>";
        /* Run any code needed for countdown completion here */
    }
    var seconds = Math.floor(timeDiff / 1000);
    var minutes = Math.floor(seconds / 60);
    var hours = Math.floor(minutes / 60);
    var days = Math.floor(hours / 24);
    hours %= 24;
    minutes %= 60;
    seconds %= 60;
    document.getElementById("daysBox").innerHTML = days + " d";
    document.getElementById("hoursBox").innerHTML = hours + " h";
    document.getElementById("minsBox").innerHTML = minutes + " m";
    // seconds isn't in our html code (javascript error if this isn't commented out)
    /*document.getElementById("secsBox").innerHTML = seconds + " s";*/
    var timer = setTimeout('cdtd(broadcast)',1000);
}

"broadcast" is passed from the page with this <script type="text/javascript">cdtd("<?php echo $nextbroadcast; ?>");</script>. $nextbroadcast is based upon the date/time when the user views the page.

I tried var broadcast;, var broadcast = "";, and var broadcast = null;. Whenever I try to declare the variable, before the function, it breaks the script.

Am I doing something incorrectly? The script is working, just fine, but I'd rather not have the error.

share|improve this question
    
Have you tried removing the quotes around the PHP? –  Alex W Jul 3 '12 at 22:02
    
@AlexW I just tried removing the quotes and it broke the script. –  doubleJ Jul 3 '12 at 22:19

2 Answers 2

up vote 2 down vote accepted

Change the following line:

var timer = setTimeout('cdtd(broadcast)',1000);

To this:

var timer = setTimeout(function() { cdtd(broadcast); }, 1000);

share|improve this answer
    
That fixed it. I'm not particularly sure why, though. broadcast was used twice before it got to that function. –  doubleJ Jul 3 '12 at 22:22
1  
Yes, but in your original code you were passing a string 'cdtd(broadcast)', but this parameter doesn't support functions that take parameters, so the javascript engine was looking for a function called cdtd(broadcast)(), which doesn't exist. You need to provide an anonymous function in order to call one with parameters. –  greg84 Jul 3 '12 at 22:27
    
I need to learn more about javascript. Hehehe... –  doubleJ Jul 3 '12 at 22:46

This might be where the problem is:

var timer = setTimeout('cdtd(broadcast)',1000);

You should declare var timer; above cdtd() function, and then set it like so below or outside of the function:

var func = 'cdtd(' + broadcast + ')';

timer = setTimeout(func,1000);
share|improve this answer
    
Not sure this is required, the value of broadcast is already available, it was passed to the function to begin with. It should be able to use what it's already got for the next time it's called. This is what I believe doubleJ was trying to achieve. See my answer. –  greg84 Jul 3 '12 at 22:15
    
That would have worked if the javascript was in the php file. I had a similar thing, initially, because I didn't know how to pass a variable to an external javascript. –  doubleJ Jul 3 '12 at 22:24

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