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I am customizing some jQuery plugin, and I have an error message I can't understand

        var totHistory=0;
        var positions = new Array();
        $('.someclass').each(function(index){
           var tmp = $(this).val();
           addHistory({id:tmp});
        });

        function addHistory(obj)
        {
            /* Gets called on page load for each comment, and on comment submit */
            totHistory++;
            positions.push(obj.id);
        }

At the very first iteration through .someClass, I get this message

Cannot call method 'push' of undefined 

Could someone explain why ?

share|improve this question
1  
Should work. - works for me jsfiddle.net/mplungjan/kG7B4 – mplungjan Sep 26 '13 at 14:01
    
The scope seems right, check if you are overwritting or deleting your var positions anywhere. Basically 'push' is a prototype method of array objects, the error means that 'positions' in your case isn't and array object but undefined, and as undefined it donesn't have the method 'push'. – aleation Sep 26 '13 at 14:02
    
Which element are you referring in .someclass because val won't work on every element. – Jinal Shah Sep 26 '13 at 14:04
    
Maybe telling/tagging the plugin you are trying to modify or showing more code we will be more able to help you, I don't really think the error is in that chunk of code – aleation Sep 26 '13 at 14:04
    
Is all this code inside any function? because is so, var positions would not be in the global scope as @SteveP suggested on his answer, I thought it was at root level – aleation Sep 26 '13 at 14:10

You should either send positions as a parameter or declare it in a scope accesible for addHistory. You should not declare it without the var keyword as that is considered a bad practice.

Try my first suggestion as that one is the only one I can help you with without knowing the structure of your other js code.

share|improve this answer
    
In the code example of the OP, positions is declared in a scope accessible for addHistory. Also, it is declared using var. – NDM Sep 26 '13 at 14:19
    
Yes, it appears it is, but if that's the case, that error should not be appearing, maybe he omitted code. The var keyword advice was because of the other answers people are posting. – dajavax Sep 26 '13 at 14:22

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