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Let f and g be two function. Then f() || g() first evaluates f. If the return value of f is falsy it then evaluates g, and returns g's return value.

I love the neat and concise syntax, but it doesn't include the case where f returns the empty array [], which I want to consider "falsy".

Is there clean way of having this syntax for [] instead of the traditional falsy values?

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1  
[] is an empty array, {} is an empty object. Which do you want to consider falsy? Or is it both? –  Paulpro Sep 7 '11 at 1:56
    
Sorry, empty array []. I'll edit my question. –  Randomblue Sep 7 '11 at 1:57
    
Also more info about the function f would be useful. For example, if it always returns an array you could do f().length || g(). Which will execute g if the length of the array is falsy (0 elements) –  Paulpro Sep 7 '11 at 1:58
    
The function f can return anything. But your solution if f only returns arrays is cute! –  Randomblue Sep 7 '11 at 2:00

4 Answers 4

up vote 5 down vote accepted

You could write a function that converts the empty array into a real falsy value, maybe?

function e(a) { return a instanceof Array ? (a.length ? a : false) : a; }

var result = e(f()) || g();
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1  
+1 That's a nice solution –  Paulpro Sep 7 '11 at 2:02
    
Except you need to change your e function That will return falsy for any truthy non-array (or anything without a length property). Change it to: function e(a) { return typeof a.length === 'number' && !a.length ? false : a; } –  Paulpro Sep 7 '11 at 2:05
    
+1 very clever. –  jondavidjohn Sep 7 '11 at 2:06
    
Nice Edit. Even better than my suggestion :) –  Paulpro Sep 7 '11 at 2:07

The problem with the other solutions presented is that it doesn't behave exactly how you may want the short-circuiting to work. For example, converting the value of f() to a truthy value before the || operator means you lose the ability of returning the result of f(). So here's my preferred solution: write a function that behaves like the || operator.

// let's call the function "either" so that we can read it as "either f or g"
function either () {
    var item;
    // return the first non-empty truthy value or continue:
    for (var i=0;i<arguments.length;i++) {
        item = arguments[i];
        if (item.length === 0 || !item) continue
        return item;
    }
    return false;
}

We can now use the either() function like how we would the || operator:

either(f(), g());
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Why not simply do the length check at f()?

function f(){
  var returned_array = new Array();
  ...
  if(!returned_array.length)
    return false;
}
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If you're talking about actually overloading the || operator, you cannot do that in JavaScript (it was proposed back in ECMAScript 4 but rejected). If you really want to do operator overloading in JavaScript, you'd have to use something like JavaScript Shaper, which is "an extensible framework for JavaScript syntax tree shaping" - you could actually use this to overload operators.

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