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I'm having a lot of JavaScript on my page and I'm using typekit. In order to make my page work correctly (grid and stuff) I'm using the new typekit font events.

It's simply a try and catch statement that checks if fonts get loaded or not. However somehow I'm not getting it. I'm calling the setGrid() function if typekit fonts are loaded, but e.g. iPad or iPhone doesn't support that yet and so my page doesn't get properly shown when I don't call the setGrid() function.

Anyway, I want to call the function in the error statement as well, so if the page is called on the iPhone, the page works without webfonts as well.

try {
 Typekit.load({
  loading: function() { },
  active: function() { setGrid(); },
  inactive: function() { }
 })
} catch(e) {
 alert('error'); //works
 setGrid(); //doesn't get called
}

However, the alert works, the setGrid() function doesn't get called. Any ideas?

edit: the function looks like that:

var setGrid = function () {
 $('#header, #footer').fadeIn(500);
 return $("#grid").vgrid({
  easeing: "easeOutQuint",
  time: 800,
  delay: 60
 });
};
share|improve this question
    
What evidence do you have that setGrid() is not called? Perhaps that function is too throwing an exception? (Also, you forgot a semicolon after the alert(), which will not affect execution. But it is poor style.) –  cdhowie Nov 20 '10 at 20:52
1  
This is not going to solve your problem, but: Omitting semicolons is considered bad practice, since it can break a lot of things. You should always put them in. –  jwueller Nov 20 '10 at 20:53
    
Try having alert(setGrid); instead of alert('error') - what do you see now? –  Shadow Wizard Nov 21 '10 at 8:38
    
undefined? the setGrid function is two lines underneath. –  matt Nov 21 '10 at 8:44
    
@user239831 see my answer then, should solve your problem. –  Shadow Wizard Nov 21 '10 at 9:01

3 Answers 3

up vote 3 down vote accepted

Try making it "real" function, like this:

function setGrid() {
  $('#header, #footer').fadeIn(500);
  return $("#grid").vgrid({
    easeing: "easeOutQuint",
    time: 800,
    delay: 60
  });
};
share|improve this answer

The function does get called, but it just doesn't work as you expected causing you to think that it isn't getting called. You can see that it is getting called by adding an alert as the first line of setGrid.

jsfiddle link

share|improve this answer
    
Yep. Perhaps he is confused by the fact that the execution stops at the alert until after then alert is closed. Then it continues, running setGrid() after. –  Alex Wayne Nov 20 '10 at 20:58
    
no I'm not confused by the alert, i set the alert just to show that the alert() gets called but my function doesn't work. i edited my post! –  matt Nov 21 '10 at 8:10

Can you:

  • try/catch around setGrid, too
  • alert after setGrid to confirm it's getting through setGrid
share|improve this answer
    
well the alert after the setGrid() doesn't get called! if i set it before the setGrid() call the alert() does work! –  matt Nov 21 '10 at 7:55

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