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I'm not entirely sure how to implement objects in JS.

Here is a constructor:

function FooList(arg1, arg2, arg3, arg4, arg5, arg6, arg7)
{
    alert("constructing");
    this._arg1 = arg1;
    this._arg2 = arg2;

    this.refresh();
}

I am trying to call it here:

FOO_LIST = new FooList(
    arg1,
    arg2,
    arg3,
    arg4,
    arg5,
    arg6,
    arg7
);

When I have all 7 args, it doesn't work. (No breakpoint in the constructor is hit; and the alert doesn't fire. Also, the method that contains the above code stops executing.)

However, this does result in the alert firing:

FOO_LIST = new FooList();

What am I doing wrong here?

UPDATE Perhaps this is a better way to define a constructor:

FooList = function() { }

rather than

function FooList() { }

However, even using the former approach, it still doesn't work.

UPDATE 2: Looks like Spinon and Russ Cam's comments were correct. One of the args was silently failing when I tried to evaluate it.

share|improve this question
    
Are the variables arg1-7 defined? –  Felix Kling Jul 4 '10 at 21:36
    
What are you passing as argument when you use the 7 args ? –  Tarantula Jul 4 '10 at 21:38
    
@felix yes, they are, and @tarantula: jquery objects, strings, and a callback. –  Rosarch Jul 4 '10 at 21:39
2  
It works fine for me just like you have it in your question. I should add that I just called it with integer values for the args. There might be an exception happening with retrieving one of the args. –  spinon Jul 4 '10 at 21:41
1  
based on the fact that it works with neither a function declaration nor function expression, it sounds like it's a problem with the arguments you're passing to the function constructor. If you could post the code in context, I may be able to help further. –  Russ Cam Jul 4 '10 at 22:03
show 3 more comments

1 Answer 1

up vote 2 down vote accepted

You've got a trailing comma after the last arg which is going to cause problems for the JavaScript engines.

In addition, it would be better to use var in front of FOO_LIST, even if it is intentionally a global variable, as this a good habit to get into for all variable declarations and save you from potential problems with global variable overwriting in future.

For cases where you have functions with many parameters like like this, you might want to use the arguments object and index into it to get args 1-7.

share|improve this answer
    
sorry, that was my own typo entering it into the page. –  Rosarch Jul 4 '10 at 21:38
    
can you show the whole code in context please? –  Russ Cam Jul 4 '10 at 21:46
    
Asking "why doesn't this code work" when you're not showing us the code that's running, isn't a great way to get the problem solved. More so when the example code works for the people who are trying to help ;) –  Gareth Jul 4 '10 at 22:29
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