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.
<div id='dependent'>
<input type="button" value="Add" id='btn' onclick='addfunction()' />
</div>

<script type="text/javascript">

    var a = 1;
    var b = 1;
    var c = 1;

    function addfunction() {

        var c1 = document.createElement('input');
        c1.type = "checkbox";
        c1.id = "a" + a++;
        var c2 = document.createElement('input');
        c2.type = "checkbox";
        c2.id = "b" + b++;
        var c3 = document.createElement('input');
        c3.type = "checkbox";
        c3.id = "c" + c++;
        var c4 = document.createElement('br');


        document.getElementById("dependent").appendChild(c1);
        document.getElementById("dependent").appendChild(c2);
        document.getElementById("dependent").appendChild(c3);
        document.getElementById("dependent").appendChild(c4);
        // c1.onclick = dep();
        // function dep() { alert(this.id); }
        c1.onclick = function () { alert(this.id); };

    }
</script>

When i call the function like this,

c1.onclick = function () { alert(this.id); };

it works as expected. i.e, when i click on the checkbox, the alert appears with its id.

But if i call the function in this way,

c1.onclick = dep();
function dep() { alert(this.id); }

The alert appears, when i click on 'Add' button(on calling addfunction()). why?

share|improve this question
    
Because you are calling it, not assigning its to the event. While in the previous one you are attaching a function and not calling at this point. –  me_digvijay May 10 '13 at 7:46

5 Answers 5

up vote 9 down vote accepted

Because you're executing dep() and assign the return value to c1.onclick.

If you want to assign the function itself, don't call it:

c1.onclick = dep;
share|improve this answer

You are passing result of function invocation instead reference to that function that you would required to be invoked on asynchronous call on click event.

so change this

c1.onclick = dep(); 

to

c1.onclick = dep; 
share|improve this answer

The reason is that dep() is a function invocation expression. So what you are actually doing here is calling the function dep() and then assigning the result (undefined) to c1.onclick. You should do the following instead:

function dep() { alert(this.id); }
c1.onclick = dep;
share|improve this answer
2  
Actually he's assigning undefined and NOT null. –  Johannes Lumpe May 10 '13 at 6:27
    
@JohannesLumpe Duly noted. –  JLRishe May 10 '13 at 8:28

You don't want to assign the result of calling dep() (undefined) to onclick. You should assign the function itself

 c1.onclick = dep;
share|improve this answer

The code

   c1.onclick = dep();

Actually calls dep. See the parenthesis???. That's what they do, they actually execute the code. The anonymous function seems to be the way to go. Beware of the this word though. On

   c1.onclick = function () { alert(this.id); };

this can refer to the function itself if you "name" it. Since you already refered to c1, c2, and c3 you can do various solutions like:

c1.onclick=function() {alert(c1.id);}

or

function click_handler(v_param) {alert(v_param.id);}
c1.onclick=function() {click_handler(c1);}

Scope in JS can be tricky if you try to look at it as a C or C++ like language.

Hope that helps!.

share|improve this answer
2  
The problem has nothing to do with scoping –  Juan Mendes May 10 '13 at 6:30
1  
The problem is that the OP is calling the function and assigning the result instead of assigning it, nothing to do with scope –  Juan Mendes May 10 '13 at 6:33
    
Oh, I see. I just wanted to point out the scoping issues when using non-anonymous functions, in case you wanted to try them out. Also, you said shipping, instead of scoping, that's why I didn't get it. I don't know why I got the impression you were the OP... –  The Marlboro Man May 10 '13 at 6:35
1  
And Spanish is not my native language –  Juan Mendes May 10 '13 at 6:35

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.