2

I'm learning javascript right now, seems like beautiful functional language to me, it is wonderful move from PHP, I should have done this earlier. Although, I cannot figure this one out:

var v1 = (/[abc]/).test;
v1('a');

says test method called on incompatible undefined, I'm trying to store the test method of that regex into variable and invoke it later.

but it works with my own functions:

function foo(){
    return 'I\'m foo';
}

var f = foo;
f(); // returns I'm foo

It should work on methods too, since functions are just methods of parent object anyway, right?

Ultimately, the reason I'm trying this is to be able to write something like this:

var a = ['a', 'b', 'c'];
a.every( (/[abc]/).test );

to check each array member against that regex.

Why doesn't this work? Is it limitation in passing built-in functions around? Or am I just doing something wrong?

PS: If you grind your teeth now and muffling something about bad practices, screw good practices, I'm just playing. But I'd like to hear about them too.

3

it works with my own functions

You are not using this inside the function. Consider this example:

var obj = {
    foo: 42,
    bar: function() {
        alert(this.foo);
    }
};
var f = obj.bar;
f(); // will alert `undefined`, not `42`

It should work on methods too, since functions are just methods of parent object anyway, right?

"Method" is just a colloquial term for a function assigned to a property on object. And functions are standalone values. There is no connection to the object a function is assigned to. How would this even be possible, since a function could be assigned to multiple objects?

Why doesn't this work?

What this refers to inside a function is determined at run time. So if you assign the function to a variable and call it later

var v1 = (/[abc]/).test;
v1('a');

this inside the function will refer to window, not to the regular expression object.

What you can do is use .bind [MDN] to explicitly bind this to a specific value:

var a = ['a', 'b', 'c'];
var pattern = /[abc]/;
a.every(pattern.test.bind(pattern));

Note though that since .bind returns a function, the only advantage over using a function expression is that it is a tad shorter to write.


Is it limitation in passing built-in functions around?

No, the problem exists for every method/function because that's how functions work. The nice thing about built-in functions though is that they often explicitly tell you when this is referring to the wrong type of object (by throwing an error).


Learn more about this.

  • Awesome answer, thanks a lot! – enrey Jun 12 '13 at 0:46
  • You're welcome! – Felix Kling Jun 12 '13 at 0:48
  • 1
    Note that in strict mode, this would have been undefined. – RobG Jun 12 '13 at 1:23
  • I just found there's second argument in every, doing exactly what I wanted... [1, 321, 123].every(RegExp.prototype.test, /^\d+$/); // true – enrey Jun 14 '13 at 22:46
3

If you store just a method, it does not carry with it a reference to your object - it just stores a reference to the .test method, but no particular object. Remember, a method is "just" a property on an object and storing a reference to a method doesn't bind it to that object, it just stores a reference to the method.

To invoke that method on a particular object, you have to call it with that object.

You can make your own function that calls the method on the desired object like this:

var v1 = function(x) {
    return /[abc]/.test(x);
}

Then, when you do this:

v1('a');

It will execute the equivalent of this in your function:

/[abc]/.test('a');

But, it isn't entirely clear why you're doing that as you could also just define the regex and call .test() on it several times:

var myRegex = /[abc]/;
console.log(myRegex.test('a'));
console.log(myRegex.test('b'));
console.log(myRegex.test('z'));
  • I know about anonymous functions, but I was hoping to do it without wrapping it in function, since jQuery by itself is function-ception wrapping madness. – enrey Jun 12 '13 at 0:41
  • @enrey—That wrapping stems from a philosophy of not modifying objects you don't own, which means don't modify host or built–in objects. That is considered a good thing as it means your code will play nicely with other people's code (provided they have taken the same approach). – RobG Jun 12 '13 at 1:27
  • 1
    @enrey - You HAVE to create another function that ties your method call to the proper object. You can either do it yourself like this or you can use .bind() and have the framework do it for you. FYI, .bind() does exactly the same thing as this (creates a function wrapper that binds the object and method call together) so it's basically the same. In either case, for a method like this to work, it has to be called in the form object.method(). You can't just call method() and expect it to have the right object associated with it. – jfriend00 Jun 12 '13 at 2:21
  • @jfriend00 thanks for the info, good to know. I find the .bind() way bit easier to read, as it doesn't clobber the code with another lambda when it's supposed to be one liner. – enrey Jun 12 '13 at 12:07
  • 1
    @enrey - just make sure .bind() is supported in all browsers you care about (not supported in IE 8) or use a shim. – jfriend00 Jun 12 '13 at 15:17
1

The test function expects this to be a regular expression. The expression /[abc]/.test gives an unbound function (it does not remember that it belongs to /[abc]/). When you invoke it like you do, this will be undefined and the function will fail.

You can use bind to make the function remember the object it belongs to:

var v1 = /[abc]/.test.bind(/[abc]/);

or

var v1 = RegExp.prototype.test.bind(/[abc]/);
0

Your reference to the method has lost its knowledge of what it was a method of. This isn't so much good practice as just the way JS works.

You can do:

var v1 = /[abc]/;
v1.test('a');    

If you must encapsulate the test method, then you could do:

var v1 = function(str){
    return /[abc]/.test(str);
};
v1('a');
0

I don't know if this is an acceptable solution, but you can do:

v1 = function(exp) { return (/[abc]/).test(exp); }
v1('a');

Your Answer

By clicking “Post Your Answer”, you agree to our terms of service, privacy policy and cookie policy

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