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This is how JsFromHell defines a function to find sum of a numeric array (http://jsfromhell.com/array/sum)

sum = function(o){
    for(var s = 0, i = o.length; i; s += o[--i]);
    return s;
};
//sum([1, 2, 3, 4, 5, 6, 7, 8, 9])

Can someone explain what's happening within second part of the for loop? What's the meaning of "i;"? It appears like its same as i >= 0. But that returns a NaN.

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6 Answers 6

up vote 3 down vote accepted

JavaScript has various ways of coercing non-Boolean values to true or false. One of them has to do with numbers: zero is false, any other number is true.

For strings, an empty string is false, others are true. The null value is coerced to false, as is the somewhat zen-like "undefined" non-value.

You could write that code:

for (var s = 0, i = o.length; i > 0; s += o[--i]);

and it might be even more efficient. (Or it might not be; it's the kind of micro-optimization that only library maintainers should worry about, since next week the browser vendors may rev their interpreters and flip the situation on its head.)

Finally, if you're getting a NaN, it means that you don't really have an array of numbers. If there's a single thing in the array that can't cleanly be converted to a numeric value in the third part of the "for" loop, you'll get a NaN result. edit — oh wait, I see; you tried i >= 0 and not i > 0. That means the loop will try to access o[-1] which is undefined. That'll give you a NaN when you try to convert it to a number.

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1  
Hmm, you've changed the prefix decrement to a postfix decrement, which should trigger an out of bounds error (or silently ignored), I'm not sure it's going to improve the perf ;-) –  Damien B Dec 14 '11 at 13:26
    
Oh sorry; typo. edit fixed now. Thanks! –  Pointy Dec 14 '11 at 13:27
    
Right. I was trying i >= 0. Jon's answer explained that part. That would be NaN because of pre-decrement. –  Subbu Dec 14 '11 at 13:39

Loop as a whole:

for(var s = 0, i = o.length; i; s += o[--i]); 

Loop initialization (this is actually setting up two variables):

 var s = 0          // set sum = 0
 var i = o.length   // set "current item index" equal to last index in array

Loop test condition (when this becomes false, the loop ends)

 i  // so this will become false when i == 0

Counting expression:

 s += o[--i]

This adds the "current" array element's value to the sum, and decrements the loop index to change the "current" array element. Very importantly, it uses pre-decrement so that:

  • it does not access an out of bounds value (when i == o.length, o[i] would be out of bounds while the last element would be accessed through o[i-1])
  • it actually processes the element at o[0] (the way the loop test is written, when i == 0 the loop would exit immediately so that o[0] actually needs to be processed when i == 1)
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for(var s = 0, i = o.length; i; s += o[--i]);

On the every step following occurs:

  1. Check if i is false.
  2. If it's false stop, continue otherwise. 0 == false. So the loop will stop when i will be equal to 0.
  3. Subtract 1 from i (--i).
  4. Add i value of o to s.
  5. Go to 1.
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Fhe for-loop condition is checking if i is truthy ir falsy. Its effect is equivalent to doing i !== 0

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First it define that s is 0 and i is the array length

var s = 0, i = o.length;

Then it pass i as it conditional, when JS parse a number format to Boolean, you will see that 0 or less is false and 1 or more is true.

i; //is true until it became 0
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sum = function(o){
    for(var s = 0, i = o.length; i; s += o[--i]);
    return s;
};
//sum([1, 2, 3, 4, 5, 6, 7, 8, 9])

1st part (declaration): s = 0 and i = length of array o

2nd part(condition) i is going to reflect the array index, which we are starting at the length of array o. If our index becomes 0, it will be equivalent to false.

3rd part(action) s is incremented by the integer in position --i of array o. -- is the deincrement operator, which is equivalent to i = i-1. The position of this operator is important. Since it's before the letter i, the program deincrements i before it reads it. So by the first time it gets there, i is already o.length - 1.

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