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.

Playing around with JavaScript and jQuery over here. Making a function that produces timestamps.

I've got the following code:

var timestamp = function () {
    var now = new Date();
    var components = [now.getHours(), now.getMinutes(), now.getSeconds()];

    components.zero_pad = function(index, component) {
        // When this function is called with `$.each()` below, 
        // `this` is bound to `component`, not `components`.
        // So, this code fails, because you can't index a Number.
        this[index] = (this[index].toString().length == 1) ?
          '0' + component : component;
    }

    // Offending line
    $.each(components, components.zero_pad);
    return components[0] + ':' + components[1] + ':' + components[2];
};

This code fails, because, $.each() binds the callback to the element it's working on rather than the iterable, as such:

// from jQuery.each()
for ( ; i < length; i++ ) {
    // I would have guessed it would be 
    // value = callback.call( obj, i, obj[ i ] );
    // but instead it's:
    value = callback.call( obj[ i ], i, obj[ i ] );

    if ( value === false ) {
        break;
    }
}

Now, to get the binding I want, I can change the offending line in my code to:

$.each(components, $.proxy(components.zero_pad, components));

but here I invoke even more framework code and this is starting to look quite messy.

I feel like I'm missing something! Is there a simpler way to modify the contents of an array in place?

share|improve this question
    
To clarify, I feel like instead of $.each and then $.proxy, I could just write my own for loop, with the call I want. –  dimadima Mar 2 '13 at 3:31
    
you can extend the Array.prototype.zero_pad = function(){}; –  james emanon Mar 2 '13 at 3:35

2 Answers 2

It would be far easier to replace all your zero_pad stuff with something simpler, like this:

var timestamp = function() {
  var now = new Date(), parts = [now.getHours(), now.getMinutes(), now.getSeconds()],
      pad = function(n) {return n < 10 ? "0"+n : n;};
  return pad(parts[0])+":"+pad(parts[1])+":"+pad(parts[2]);
}
share|improve this answer
    
Thank you @Kolink! That's a good point. I guess I should have changed the code to be more generic though, because this question is more about the best/simplest way to modify an Array/Object in place. What do you think of .map(), as james emanon points out above? –  dimadima Mar 2 '13 at 3:39
    
.map is good, but only if the browser supports it. You could always just loop: for( i=0, l=arr.length; i<l; i++) {arr[i] = doSomething(arr[i]);} –  Niet the Dark Absol Mar 2 '13 at 3:40

please ignore the following if I'm off base- but I was curious what you were trying to get at, is this "sorta" what you are trying to achieve?

jQuery(document).ready(function () {
   var now = new Date();
   var components = [now.getHours(), now.getMinutes(), now.getSeconds()];
   var timestamp = {
     storage : {},
         zero_pad : function() {
            storage = $.grep(components,function(obj,i){
            return obj = (obj.toString().length == 1) ? '0' + components  : components;
         });
        return storage;
     }
   };
     console.log(timestamp.zero_pad());
 });
share|improve this answer
    
Hi james, thanks for the response. Not sure why you're using .grep here. Earlier you suggested jQuery.map, and here you're using .grep like .map, since the .grep callback will never return falsey. So, I'm not sure what's going on. –  dimadima Mar 2 '13 at 4:41
    
I was just trying different things.. ie. grep. I also did one with .map() just messing around, but just happend to post the grep one. Actually, I'm pooped out so I might have missed cut/paste.. I apologize. long day. –  james emanon Mar 2 '13 at 5:46
    
Hey man! No need to apologize :D. I appreciate your help and looking into this. Thank you! –  dimadima Mar 2 '13 at 9:17

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.