Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Ok, so I have:

function myfunc(foo,bar) {
    $('#div' + foo).hide();
    $('#div' + bar).show();
    return false;
}

Then I have:

function myOtherFunc() {
// define vars foo and bar
    myfunc(foo,bar);
}
var timerId = setInterval(myOtherFunc, 5000); // run myOtherFunc every 5 seconds.

which works fine. But the I have:

$('#myLink').click(function(){
// define vars 'foo' and 'bar'
myfunc(foo,bar);
return false;
});

Which doesn't work at all... What am I doing wrong?

share|improve this question
    
Why doesn't it work? What happens? How are you defining the variables? –  SLaks Dec 24 '09 at 17:28
    
How does it fail? JavaScript error? Silently? –  CalebD Dec 24 '09 at 17:28
    
Where are foo and bar defined? Have you tried debugging with Firebug? –  Calvin L Dec 24 '09 at 17:52

3 Answers 3

up vote 0 down vote accepted

Since bb will be of type String, foo will be a string, and Javascript will cast the value 1 into a string when you perform the + operator. You can simply change this to;

var aa = $('.mydiv').attr('id'); // get current div's ID
var bb = aa.substring(6,7); // extract the number of the id, i.e. div1 will return '1'
var foo = bb;
var bar = parseInt(foo) + 1;
share|improve this answer
    
var bar = 1 + foo; will also work. –  Rob Van Dam Dec 24 '09 at 20:04
    
used var cc = parseInt(bb); Also works. –  Adam Tal Dec 25 '09 at 13:57

Ok, it seems like the problem is in fact the variable definitions.

    var aa = $('.mydiv').attr('id'); // get current div's ID
var bb = aa.substring(6,7); // extract the number of the id, i.e. div1 will return '1'
var foo = bb;
var bar = foo + 1;

for some reason I get bar = "11" instead of "2" (or "21" instead of "3").

What am I doing wrong? Is there a better way to do this?

share|improve this answer

I believe it has something to do with the JavaScript handles type conversion. try parsing foo into an int. parseInt(foo, 10)

share|improve this answer
    
Thanks. Didn't work though... –  Adam Tal Dec 24 '09 at 18:41

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.