Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

Consider this Lisp macro:

(defmacro doif (x y) `(if ,x ,y))

The same in Haskell:

doif x y = if x then (Just y) else Nothing

Is it possible to achieve this elegance in the "lisp-y" language of JavaScript? (the use of the word "lisp-y" comes from the author of the JS language)

share|improve this question
    
You want to execute y if x is true in javascript? –  thefourtheye Oct 14 '13 at 9:23
4  
No, you cannot get this elegance because neither JS has macros nor it is non-strict language. Please don't try to use word elegance with JS, it leads to depression;) –  Ankur Oct 14 '13 at 9:34
    
@Ankur I disagree. JavaScript is a very elegant language. Yes, it is impure and it doesn't have algebraic data types or pattern matching like Haskell does. Nevertheless it is still a very powerful language. JavaScript supports functional, object-oriented and procedural styles of programming - the big three. Hence you can mix and match whichever style of programming you prefer. In addition it has prototypal inheritance (which is my opinion is an elegant solution to inheritance and code reuse). In addition the learning curve of JS is not very steep unlike Haskell. BTW I love Haskell and FP too. –  Aadit M Shah Oct 14 '13 at 10:18
    
@AaditMShah: That was just my experience :). Anyway.. check out wtfjs.com –  Ankur Oct 14 '13 at 10:26
1  
@6502: I agree. These days you can compile Haskell, F#, Scala etc to JS. JS runtime like V8 and various mozilla's monkeys :) are amazing tools but they have to consider the JS language semantics and that sort of tie their hands and .. behold.. then you have DOM :) –  Ankur Oct 15 '13 at 4:51

3 Answers 3

up vote 1 down vote accepted

You can implements macros in Javascript because the compiler is part of the runtime (you can eval a string and get back code). However to get close to Lisp you need to implement your own full language because eval can only produce full functions, not expressions.

If instead you're just thinking about delayed evaluation this can be done trivially by wrapping the code in a closure:

function my_if(condition, then_part, else_part) {
    return condition ? then_part() : else_part();
}

my_if(foo < bar,
      function(){ return bar -= foo; },
      function(){ return foo -= bar; });

You can of course also create a closure that will encapsulate the whole operation by delaying also the test...

function my_if(condition, then_part, else_part) {
    return function() {
        return condition() ? then_part() : else_part();
    }
}

var my_prog = my_if(function(){ return foo < bar; },
                    function(){ return bar -= foo; },
                    function(){ return foo -= bar; });

my_prog(); // executes the code
share|improve this answer

Yes, it is possible. If you simply want to a one-to-one mapping of the lisp-y code then you could use the conditional operator as follows:

x ? y : null // note that x and y are expressions, not values: they aren't eval'd

If you don't mind the result of the expression being a falsy value (instead of an explicit null value) then you could use the guard operator instead:

x && y // reminder: x and y are expressions - they aren't evaluated until needed

If you want to create your own doif syntax then you can use hygienic macros provided by sweet.js as follows:

macro doif {
    rule { ($x:expr) ($y:expr) } => { $x ? $y : null }
}

The above macro allows you to write code like this:

doif (x < 100) (x + 1)

The above code gets converted to:

x < 100 ? x + 1 : null

When using either of these operators if the condition x is falsy then y is not evaluated.

share|improve this answer
    
x ? y : null is not same as the lisp code. The x and y can be any expression (not just some variables holding value) which basically mean both x and y will get "evaluated" in this form. What is required that y is not evaluated before checking x –  Ankur Oct 14 '13 at 10:12
2  
@Ankur The conditional operator evaluates only one of its second and third arguments, so it is like the lisp code in that respect. –  Daniel Wagner Oct 14 '13 at 10:14
    
@Ankur I beg to differ. The x and y in this case are not variables. They are placeholders for any expression. That's the reason I provided the macro definition doif. If you see carefully x and y are of type expr (any expression). In either case the expression y is only evaluated if x is truthy. –  Aadit M Shah Oct 14 '13 at 10:15
    
@Ankur If you don't believe me then take a look at the demos: 1) true ? alert("Hello World!") : null (will alert "Hello World!"): jsfiddle.net/n9kF4 2) false ? alert("Hello World!") : null (will not alert "Hello World!"): jsfiddle.net/n9kF4/1 –  Aadit M Shah Oct 14 '13 at 11:25

I suppose the usual way to emulate laziness in a non-lazy language is to manually thunkify. I don't know Javascript very well, so I'm going to write pseudocode instead and hope that you can paint Javascript syntax on the idea.

function doif(x, y) {
    if(x) { return y(); }
    else  { return undefined; }
}

And a sample call:

function expensive() {
    // do a lot of work here
}
doif(false, expensive); // runs very fast
doif(true , expensive); // runs very slow
doif(true , expensive); // runs very slow (unlike Haskell, but I think like Lisp)
share|improve this answer
    
I don't think y must be invoked. The OP wrote doif x y = if x then (Just y) else Nothing. Hence even if y is a function (which in all probability it isn't) it's only being wrapped in a Maybe value. It's never being called. In my humble opinion the correct conversion into JavaScript is x ? y : null. –  Aadit M Shah Oct 14 '13 at 10:23
    
@AaditMShah My reading of the question is that we'd like to delay the computation of something until later (in this example, "later" is "after we know whether some condition is true or not"). Putting the computation inside a function is one way to delay it -- and calling the function is the way to stop delaying. –  Daniel Wagner Oct 14 '13 at 10:27
    
The OP doesn't want to delay a computation per se. He just wants an expression to return y if x evaluates to a truthy value. For example consider the following lisp code: (doif (< x 100) (+ x 1)). This should translate to x < 100 ? x + 1 : null. Translating it into doif(x < 100, function () { return x + 1; }) is unnecessary boilerplate. In either case the second expression is only evaluated if the condition is truthy which is why you can do things like condition ? alert("Hello World!") : null. The alert function will only be invoked if condition is truthy. –  Aadit M Shah Oct 14 '13 at 10:45
1  
@AaditMShah Your comment, "in either case the second expression is only evaluated if the condition is truthy", is exactly what I mean by delaying a computation! You are delaying the evaluation of the second expression until you know more about the condition. While it's true that the conditional operator does this for this precise use case, there are plenty of other useful patterns of delay that are not just "if such-and-such a condition is true". It is this more general use case that my answer is aimed at handling. –  Daniel Wagner Oct 14 '13 at 10:48
1  
That I do agree. Implementing lazy evaluation in a strict language like JavaScript using first-class functions is very useful. Hence +1 for that. =) BTW since we're talking about laziness in JavaScript you might like the following projects: 1) Lazy.js 2) prelude.ls 3) LiveScript Happy hacking in JavaScript (or LiveScript - take your pick). =D –  Aadit M Shah Oct 14 '13 at 12:58

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.