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I came across these two statements which are placed inside for loop, I tried to make some sense out of them but in vain. can someone please explain to me how they work?

 var s = (n === 7 || n === 8) && l.nodeValue;
 if (s ? !/^\??somestring\b/.test(s) : n !== 3 || /\S/.test(l.nodeValue)) break;
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4 Answers 4

up vote 4 down vote accepted
  1. Set value of l.nodeValue to s if n===7 or n===8
  2. If s is not false then check !/^\??somestring\b/.test(s) and reverse the logic value(!), if not - check if n is not equal or has diffeerent type than 3
  3. Check /\S/.test(l.nodeValue)
  4. If either 2. or 3. is true, then break

Helpfull here is to know that if...else may be written as condition ? true : false, and that === means the variable is equal not only by its value, but in its type, too

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2  
Actually, it will set s to l.nodeValue if n is 7 or 8. It's important, otherwise the statement would not make sense: !/^\??somestring\b/.test(s). –  Felix Kling Apr 1 '13 at 8:59
    
@FelixKling - yes, you're right. Fixed it :) –  Pablo Lemurr Apr 1 '13 at 9:02
1  
You still missed a few. In JS, the "falsey" values are false, 0, undefined, null, NaN, or an empty string (""). Anytyhing else is "Truthy". –  Useless Code Apr 1 '13 at 9:04
    
so if n is not equal to 7 or 8 dose s become false? and if l.nodeValue = false and n is equal to 7 or 8 does s also become false? –  razzak Apr 1 '13 at 9:50
var s = (n === 7 || n === 8) && l.nodeValue;

If n is equal to 7 or 8 set s to l.nodeValue.

if (s ? !/^\??somestring\b/.test(s) : n !== 3 || /\S/.test(l.nodeValue)) break;

If s is not false:

  • If s matches /^\??somestring\b/ do nothing.
  • Else break.

If s is false:

  • If n is equal to 3 and l.nodeValue doesn't match /\S/ do nothing.
  • Else break.
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(n === 7 || n === 8) equates to true if n equals 7 or 8

l.nodeValue will return its value, if it's not falsey (if l.nodeValue isn't "", undefined, null, NaN, 0 or false).

Whatever value is on the right-most side of an && will be returned -- not just true or false.
However, for that to work, of course, everything has to be in place.

So assuming that l.nodeValue = "Bob"; and n = 7;, s = (true) && "Bob";, therefore s === "Bob";

That's line #1.

Line #2 has a ternary assignment, which returns the value being checked by the if statement (the same way n === 7 || n === 8 returned a true for the first check of line 1.

The first regex /^\??somestring\b/ means a string which either starts with "?somestring" or "somestring" and then has a word-boundary (space/newline/punctuation/end-of-string).

If l.nodeValue was saved to s, then test the content of s against "somestring..." or "?somestring...". If there's a match, return false.

If s was false (if line 1 fails), then check if n equals 3. Return true if it does NOT match.
If the ternary test which was chosen fails, then check l.nodeValue to see if there are any characters which aren't space/newline/tab, at all. Return true if there is.

If any of the test-branches in line #2 result in true, then break the loop.

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code similar like below, I didn't test

var s;

if ( n === 7 || n === 8 ){
        s = l.nodeValue;

} else {
        s = false;
}

var isBreakLoop ;

if ( s ){
    isBreakLoop = !/^\??somestring\b/.test(s);
} else {
    if ( n !== 3 ){
        isBreakLoop = true;
    }else {
        isBreakLoop = /\S/.test(l.nodeValue)
    }
}

if( isBreakLoop ) {
    break;
}
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No that's not correct... if s is true, it will always be assigned the value of l.nodeValue. I also think that being overly explicit is not really helpful. s = n === 7 || n === 8; is clear enough. –  Felix Kling Apr 1 '13 at 9:05
    
@FelixKling you are right –  rab Apr 1 '13 at 9:06
    
@FelixKling I have updated answer .. please check ! –  rab Apr 1 '13 at 9:21

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