24

So Safari keeps yelling at me for one specific error.

I'm trying to use Google Maps API and call map.getCenter();. However sometimes, this happens before the map has been fully loaded.

So instead in my function I test for an undefined call like this:

if (map.getCenter() != undefined)

But that still errors out because I guess it doesn't even like making the call just to test the if the result is undefined or not?

Can I get some help here?

Thanks!

9 Answers 9

49

I actually prefer something along these lines.

if(typeof myfunc == 'function') { 
    myfunc(); 
}

Just because something isn't undefined doesn't make it a function.

2
  • Except that in this case I guess that you want to define a function if it doesn't exist if(typeof myfunc !== 'function') { myfunc(); }
    – Henrik
    Commented Jan 30, 2014 at 13:40
  • 1
    @Henrik Your comment code should look like, if(typeof myfunc !== 'function') { myfunc = function(){.....}; } Commented Mar 2, 2015 at 7:01
34
if (typeof map !== 'undefined' && map.getCenter) {
   // code for both map and map.getCenter exists
} else {
  // if they dont exist
}

This is the right way to check for existence of a function.. Calling the function to test its existence will result in an error.

UPDATE: Snippet updated.

5
  • If you're not going to be type-strict (!==), you may as well just write if (!map.getCenter).
    – Andy E
    Commented May 18, 2011 at 15:10
  • I will give this a shot when I get home. Thanks so much!
    – slandau
    Commented May 18, 2011 at 15:14
  • Nope. Gives me 'ReferenceError: map is not defined' when I run your example in smjs console.
    – dragonroot
    Commented Dec 12, 2012 at 6:31
  • could you please tell me, why my condition work without single quote at the undefined
    – m2j
    Commented Feb 15, 2016 at 11:40
  • Note to future seekers: if(typeof FooFunc === 'undefined') { function FooFunc(){} } will not define the function in Safari.
    – SBoss
    Commented May 2, 2018 at 16:18
5

Technically you should be testing if map is undefined, not map.getCenter(). You can't call a function on an undefined reference.

However, Google's own tutorial suggests that you invoke your JavaScript that accesses the API in a body.onload handler, so that you do not attempt to reference anything until all of the remote .js files are loaded - are you doing this? This would solve the problem permanently, rather than failing cleanly when your JavaScript executes prior to loading the API.

0
5
if (typeof map.getCenter !== 'undefined')

Won't throw an error.

So, better yet, if (typeof map.getCenter === 'function') map.getCenter();

1

I have been in the habit recently of using the typeof operator to test for things and types. It returns the type as a string which I think avoids some response type confusion.

if( typeof map.getCenter != 'undefined') ...

I'm not sure if it's more correct, but I find good results with this process.

1

There is now an optional chaining operator that does exactly this.

The optional chaining (?.) operator accesses an object's property or calls a function. If the object accessed or function called using this operator is undefined or null, the expression short circuits and evaluates to undefined instead of throwing an error.

const adventurer = {
  name: 'Alice',
  cat: {
    name: 'Dinah'
  }
};

const dogName = adventurer.dog?.name;
console.log(dogName);
// Expected output: undefined

console.log(adventurer.someNonExistentMethod?.());
// Expected output: undefined

https://developer.mozilla.org/en-US/docs/Web/JavaScript/Reference/Operators/Optional_chaining

0

You should be testing whether map is undefined. In your current check your are still trying to execute the function call.

0

Assuming that map.getCenter() is always a function, it's sufficient to just use this check:

if (map.getCenter) {
      var x = map.getCenter();
}
0

The worked solution for me is try and catch,

const stopPropagation = (e) => {
    try {
        e.stopPropagation();
    } catch (err) {
        console.log("error with stopPropagation: " + err.error);
    }
}

const triggerClick = (e) => {
    stopPropagation(e);
};

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