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I recently ran across the following [effective] syntactical construct:

d <= f && func3();

The actual construct is of the form:

d > f ? a > b ? func1() : func2() : d <= f && func3();

What is the purpose of this construct?

My best guess is that func3 will only be executed if d <= f returns falsy because of the short-circuit evaluation in the && operator, but I don't think that makes sense given that the logic in the actual function would prevent d <= f from ever being false at that point in the code, and it's clear from DOM-watching that func3 is being executed.

If you want to see the whole code, I found this in http://cdn.sstatic.net/js/full.js?v=9358063bfb40 as referenced by http://stackoverflow.com/faq in the moveScroller function (full function below, it's in the line that has d <= f && j.css({...}) to reset back to a relative position).

function moveScroller() {
    var g = $("#scroller").width(),
        d = function () {
            var d = $(window).scrollTop(),
                f = $("#scroller-anchor").offset().top,
                j = $("#scroller");
            d > f ? j.height() > $(window).height() ? j.css({
                position: "fixed",
                top: "",
                bottom: "0px",
                width: g
            }) : j.css({
                position: "fixed",
                top: "0px",
                bottom: "",
                width: g
            }) : d <= f && j.css({
                position: "relative",
                top: "",
                bottom: ""
            })
        };
    $(window).scroll(d).resize(d);
    d()
}
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3  
Anyone who writes code that makes you sit there and scratch your head should be smacked. – j08691 Jan 9 '13 at 21:36
1  
This is almost worth posting to DailyWTF. – SirDarius Jan 9 '13 at 21:41
    
Maybe it's to deal with the possibility that "d" and "f" are both NaN :-) – Pointy Jan 9 '13 at 21:42
    
This looks like the pretty-printed output of a code minifier like Google Closure compiler. Minifiers often convert if statements to &&, ||, and ? : operations to save space. – Mike Samuel Jan 11 '13 at 18:17
up vote 0 down vote accepted

If either d or f are non-numeric (NaN, non-number strings, etc) then both tests d > f and d <= f can return false.

So in the code

d > f ? a > b ? func1() : func2() : d <= f && func3();

at first glance it looks like d <= f is redundant, but it will short-circuit the execution of func3 if either d or f is non-numeric.

Ugly code!

share|improve this answer
    
< works perfectly fine with non-number strings. Given strings, or when the ToPrimitive abstract operator applies to both operands produces a non-numeric value, it coerces its operands to strings and compares them lexicographically. See 11.8.5 – Mike Samuel Jan 11 '13 at 18:15
    
@MikeSamuel -- I think I'm missing something in my understanding of 11.8.5: n > 9 || n <= 9 returns false if n is NaN or a string like 'abc' -- jsfiddle – mike Jan 11 '13 at 20:27
    
@jsfiddle, Sure, because ToNumber ('abc') is NaN. Perhaps I misunderstood your post because I missed the "either ... or". Should I have interpreted "either d or f are non-numeric" to exclude the case where both are non-numeric as in "abc" > "bcd" || "abc" <= "bcd"? – Mike Samuel Jan 11 '13 at 21:38

As you surmised, it means almost the same thing as

if (var1 <= var2) someFunction();

It doesn't mean exactly the same thing; the if statement is, well, a statement, while that && construct is just an expression (and so might be part of a larger expression).

edit — I do agree now that because that code is in the "else" wing of the ?: operator that "d" has to be less than or equal to "f". Perhaps it was written that way to clarify things, but I have the feeling that the author of that code wan't much interested in clarity.

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It's basically hacking the boolean && operator. People sometimes use && and || operators as shortcuts for conditions. This is possible, because of the behaviour of these operators:

  • && will check second operand only when first operand is true, e.g. true && thisWillAlwaysBeExecuted() and false && thisWillNeverBeExecuted
  • || operator will check second operand only when first operand is false, e.g. true || thisWillNeverBeExecuted() and false || thisWillAlwaysBeExecuted()

I think it's a bad practice because it hides the intent. What that expression means is: "compare these two operands" and the intent is "if certain condition is met - perform this task". I really doubt that there's any gain in performance, and the argument "it's less characters" stopped working when the first IDE was invented.

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I like how you pointed out the || check as well. +1 – Travis J Jan 9 '13 at 21:47
d > f ? a > b ? func1() : func2() : d <= f && func3();

Is d more than f? If true then

a > b ? func1() : func2()

Is a > b? If true then run func1(). If not true then run func2().

If d was not more than f, then

d <= f && func3();

if d is less than or equal to f, run func3()

Edit

As to the purpose of using the && it is usually done when you want to avoid doing the later part of the conditional statement, and essentially break, if the condition prior to the && was false. Usually these are used to make sure that a property which does not exist is not accessed by testing for it or for a feature which guarantees its existence.

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Right, and I think the question is, why bother to compare "d" to "f" again, since if you get to that point it must be the case that "d" is not greater than "f". – Pointy Jan 9 '13 at 21:41
    
@Pointy - I cannot guess as to the why of some logic I see here :) Just trying to write out the series of conditional statements. – Travis J Jan 9 '13 at 21:42

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