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var cartTotal = [];
var priceValue = x;
var priceID = y;

After defining the above empty array, i have a loop which includes the following:

cartObj = {};
cartObj.priceID = priceValue;
cartTotal.push(cartObj);
total(priceID);

After looping through the above code a few times, will the resulting cartTotal array look like this:

cartTotal = [{priceID:priceValue},{priceID:priceValue}]       ?

The reason I ask is because I am trying to pass priceID to the total function below in order sum all of the priceValue numbers. Why in the total function, is a.price undefined? The cartTotal.length alert indicates that I have an Array with numerous values so the array is recognised within the function.

function total(price){
alert(cartTotal.length);
totalPrice = 0;
for(var i=0;i<cartTotal.length; i++){
a = cartTotal[i];
itemPrice = parseInt(a.price);
totalPrice += itemPrice;
} 
}
share|improve this question

1 Answer 1

up vote 1 down vote accepted

You need a.priceID. That was the key you stored using.

No need for a, just use the array itself. Also, as it is a price, it is better to use float.

Code:

function total(price){
    alert(cartTotal.length);
    totalPrice = 0;
    var itemPrice;

    for(var i=0; i<cartTotal.length; i++){
        itemPrice = parseFloat(carTotal[i].priceID).toFixed(2);
        totalPrice += itemPrice;
    } 
}

Question: Why are you passing price as argument to the function?

share|improve this answer
    
priceID is passed to the total function when it is executed total(priceID);. So I thought when i define the function, i could have anything to represent this passed parameter. E.g.: –  Pete Jan 12 '13 at 17:44
    
function total(price){ or function total(a){ i have done a similar thing in the past. Why does price not represent priceID which is the passed parameter when the function is executed? thanks for you reply btw. –  Pete Jan 12 '13 at 17:44
    
@bfavaretto Which var s? –  ATOzTOA Jan 12 '13 at 17:46
    
On the OP code, a, itemPrice and totalPrice. On yours, itemPrice and totalPrice (I'd return the last one, instead of using a global). –  bfavaretto Jan 12 '13 at 17:52
    
@bfavaretto Got it... thanks... –  ATOzTOA Jan 12 '13 at 17:53

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