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So I was browsing the JQuery source for better programming tips, and I found a bit of code where I'm not sure what's going on.

type = type || callback;

Can anyone explain what the OR || is doing in the variable assignment?

I did a few experiments, setting and un-setting values and what-not, but I'm none the wiser.

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3 Answers 3

up vote 9 down vote accepted

If type is a "falsey" value, then the value of callback will be assigned to the type variable, otherwise type will be assigned.

The "falsey" values are:

  • false
  • null
  • undefined
  • 0
  • "" (empty string)
  • NaN

So basically it says "replace type with callback if type is any one of the falsey values".

Consider this:

var type = undefined;

type = type || "default value";

The type variable will ultimately get "default value" assigned.

If it was like this:

var type = "some value";

type = type || "default value";

Then it would keep its "some value".

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Thanks @Gareth. :o) –  user113716 Feb 1 '11 at 14:15
    
Blimey you guys a quick! That's great cheers. –  Craig552uk Feb 1 '11 at 14:19

It sets the variable "type" to either its current value, or the value of "callback" if the current value is not "truthy". If "type" is undefined, or null, or 0, or the empty string, or boolean false, then it'll be set to the value of "callback".

edit oops or NaN

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So I see multiple variables can be 'chained' together and the first "non-falsey" value is assigned.

var val, a, b, c;
a = undefined;
b = null;
c = "C";
val = a || b || c;
alert(val);

That's pretty damn handy.

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a || ( b || c) feels wrong to me. You shouldn't need to check whether your default value is falsy or not. –  Raynos Feb 1 '11 at 14:35

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