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How can I call Function.prototype.bind with an array of arguments, as opposed to hardcoded arguments? (Not using ECMA6, so no spread operator).

I'm trying to put a promises wrapper around a module that uses callbacks and I want to bind all of the arguments passed in to my wrapper method and bind them. Then I want to call the partially applied bound function with my own callback, which will resolve or reject a promise.

var find = function() {
  var deferred, bound;
  deferred = Q.defer();
  bound = db.find.bind(null, arguments);
  bound(function(err, docs) {
    if(err) {
      deferred.fail(err);
    } else {
      deferred.resolve(docs);
    }
  });
  return deferred.promise;
}

But obviously this doesn't work because bind expects arguments rather than an array of arguments. I know I could do this by inserting my callback onto the end of the arguments array and using apply:

arguments[arguments.length] = function(err, docs) { ... }
db.find.apply(null, arguments);

Or by iterating over the arguments array and rebinding the function for each argument:

var bound, context;
for(var i = 0; i < arguments.length; i++) {
   context = bound ? bound : db.find;
   bound = context.bind(null, arguments[i]);
}
bound(function(err, docs) { ... })

But both of these methods feel dirty. Any ideas?

share|improve this question
    
I believe your last example is wrong. You just keep overwriting bound in each iteration. So you end up with bound bind db.find with the last argument bound to it. –  Felix Kling Feb 2 at 5:40
    
Wasn't concentrating when I jotted it down. Cheers for the heads up. –  Dan Prince Feb 2 at 5:46
    
np! ----------- –  Felix Kling Feb 2 at 5:46

5 Answers 5

up vote 11 down vote accepted

.bind is a normal function, so you can call .apply on it:

bound = db.find.bind.apply(db.find, [null].concat(arguments));

Whether that can be considered cleaner or not is left to the reader.

share|improve this answer
1  
Of course. Fantastic! Cleaner in concept, but in practice? I think not. –  Dan Prince Feb 2 at 5:43
1  
Yeah, personally I'd find it rather confusing. It would probably help to wrap this in a function, something like function bindArray() { ... }, which makes the intend clearer. –  Felix Kling Feb 2 at 5:45
5  
A small note: [null].concat(arguments) yields [null, arguments] because arguments isnt treated like an array. Instead, this worked for me: var argsAsArray = Array.prototype.slice.call(arguments); bound = db.find.bind.apply(db.find, [null].concat(argsAsArray)); –  Otts Mar 12 at 14:36
    
@Otts Arguments not being treated as an Array is also easily fixable, using Array.prototype.slice, since it accepts the arguments object and returns an Array. The whole function will then become bound = db.find.bind.apply(db.find, [null].concat(Array.prototype.slice.call(arguments))); –  Martijn Otto Dec 10 at 15:15
    
@MartijnOtto This is exactly what I wrote in my comment, isn't it? The only difference is that you inlined my definition of argsAsArray (which I wouldn't prefer for the sake of readability). –  Otts Dec 10 at 18:20

The following is a common snippet of code I use in all my projects:

var bind = Function.bind;
var call = Function.call;

var bindable = bind.bind(bind);
var callable = bindable(call);

The bindable function can now be used to pass an array to bind as follows:

var bound = bindable(db.find, db).apply(null, arguments);

In fact you can cache bindable(db.find, db) to speed up the binding as follows:

var findable = bindable(db.find, db);
var bound = findable.apply(null, arguments);

You can use the findable function with or without an array of arguments:

var bound = findable(1, 2, 3);

Hope this helps.

share|improve this answer
2  
My brain is full of bind –  pilau Sep 11 at 13:29
    
Shouldn't this be Function.prototype.bind and Function.prototype.call? –  torazaburo Nov 18 at 13:08
    
@torazaburo It wouldn't really matter because Function is itself a function. Hence, it inherits bind and call from Function.prototype. Therefore, I used the shorter of the two forms because... I am a lazy sadist who likes to confuse people with terse code. –  Aadit M Shah Nov 18 at 13:34

Why not simply bind to the arguments array as per your example, and have the bound() function treat it just like that, as an array?

By the looks of your usage, you are then passing in a function as the final argument to bound(), which means by passing in the actual argument array, you avoid having to separate arguments from callbacks inside bound(), potentially making it easier to play with.

share|improve this answer

Felix's answer didn't work for me because the arguments object isn't really an array (as Otts pointed out). The solution for me was to simply switch bind and apply:

bound = db.find.apply.bind(db.find, null, arguments);
share|improve this answer

Just had an alternative idea, partially apply the null value for context and then use apply to call the partially applied function.

bound = db.find.bind.bind(null).apply(null, arguments);

This removes the need for the slightly spooky looking [null].concat() in @Felix's answer.

share|improve this answer
    
Shouldn't it be db.find.bind.bind(db.find, null).apply(null, arguments);? –  Aadit M Shah Feb 15 at 3:03

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