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I was killing time reading the underscore.string functions, when I found this weird shorthand:

function count (str, substr) {
  var count = 0, index;
  for (var i = 0; i < str.length;) {
    index = str.indexOf(substr, i);
    index >= 0 && count++; //what is this line doing?
    i = i + (index >= 0 ? index : 0) + substr.length;
  }
  return count;
}

Legal: Think twice before using the function above without giving credit to underscore.string


I put the line alone here, so you don't waste time finding it:

index >= 0 && count++;

I have never seen anything similar to that. I am clueless in what is doing.

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possible duplicate of What does (myVar && foo()) mean in JavaScript? –  kabuko May 21 '12 at 17:59

3 Answers 3

up vote 6 down vote accepted

It's equivalent to:

if (index >= 0) {
    count = count + 1;
}

&& is the logical AND operator. If index >= 0 is true, then the right part is also evaluated, which increases count by one.
If index >= 0 is false, the right part is not evaluated, so count is not changed.

Also, the && is slightly faster than the if method, as seen in this JSPerf.

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Good to know, I am planning to use it whenever I can –  ajax333221 Feb 16 '12 at 22:24
2  
@ajax333221 Google's closure compiler also turns most if constructions in && statements. As for the speed, it's only slightly faster in Firefox. It's unlikely that you get any improvements in speed when using && instead of if, just for speed. Also note that JSLint complain about && instead of if. –  Rob W Feb 16 '12 at 22:27
1  
In that case, I will keep coding like I do and let the compilers do the job. The last thing I want is to debug hours because of a code I am not very familiar with –  ajax333221 Feb 16 '12 at 22:33
    
Keep in mind it's more than a matter of style: the expression as an && statement allows the result to be assigned or passed as an argument. –  grantwparks Mar 31 '12 at 22:44

It's the same as:

if(index >= 0){
    count++;
}

JavaScript will evaluate the left side (index >= 0), if it's false the && (AND) will short circuit (since false AND anything is false), thus not running `count++.

If it's (index >= 0) true, it evaluates the right side (count++), then it just ignores the output.

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index >= 0 && count++;

First part: index >= 0

returns true if index has a value that is greater than or equal to 0.

Second part: a && b

most C-style languages shortcut the boolean || and && operators.

For an || operation, you only need to know that the first operand is true and the entire operation will return true.

For an && operation, you only need to know that the first operand is false and the entire operation will return false.

Third Part: count++

count++ is equivalent to count += 1 is equivalent to count = count + 1

All together now

If the first operand (index >= 0) of the line evaluates as true, the second operand (count++) will evaluate, so it's equivalent to:

if (index >= 0) {
  count = count + 1;
}

JavaScript nuances

JavaScript is different from other C-style languages in that it has the concept of truthy and falsey values. If a value evaluates to false, 0, NaN, "", null, or undefined, it is falsey; all other values are truthy.

|| and && operators in JavaScript don't return boolean values, they return the last executed operand.

2 || 1 will return 2 because the first operand returned a truthy value, true or anything else will always return true, so no more of the operation needs to execute. Alternatively, null && 100 will return null because the first operand returned a falsey value.

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good explanation –  ajax333221 Feb 16 '12 at 22:30

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