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var select;
window.onload = function () {
var select = document.getElementById("money");
console.log(select);
}

function changedepositedInput(objDropDown) {
console.log(parseInt(objDropDown));
var objdeposited = document.getElementById("deposited");
objdeposited.value=parseInt(objdeposited.value);
var total=parseInt(objdeposited.value);
objdeposited.value = parseInt(objDropDown.value+total);
objdeposited.value = parseInt(objdeposited.value);
}
</script>
<h1>Vending Machine Project</h1>
<form name="vendingmachine" action=" ">
Choose Bevrage<br>
        <input name="item" type="radio" value="water" checked="checked">Water 75 cents<br>
        <input name="item" type="radio" value="soda">Soda $1.50<br>
        <input name="item" type="radio" value="coffee">Coffee $1.00<br>
        <input name="item" type="radio" value="beer">Beer $2.00<br>
<p>
    <label>Deposit Money:
        <select name="money" id="money" onchange="changedepositedInput(this)">
            <option>Choose Amount</option>
            <option value="10">10 cents</option>
            <option value="25">25 cents</option>
            <option value="50">50 cents</option>
            <option value="75">75 cents</option>
            <option value="100">$1.00</option>
        </select>
    </label>
</p>
<p>Total Deposited:<input name="deposited" id="deposited" type="text" readonly="TRUE" value=" "></p>

using this code I am not getting a return of a solid number, for example in a drop down menu I would select two values ie 50 and 75 and they would combine as 5075, does this mean it is still running it through as string somewhere and if so where?

share|improve this question
    
You're re-declaring select. var declares a local variable in the scope. –  elclanrs Dec 13 '13 at 0:34
    
what do I need to do to change that, sorry im new to this, thank you! –  joro4651 Dec 13 '13 at 0:45

1 Answer 1

up vote 1 down vote accepted

for example in a drop down menu I would select two values ie 50 and 75 and they would combine as 5075, does this mean it is still running it through as string somewhere and if so where?

Yes, here:

objdeposited.value = parseInt(objDropDown.value+total);

objDropDown.value is a string, e.g. '50', and total is a number, e.g. 75.

In JavaScript, '50'+75 is '5075'.

You can replace these 3 lines

var total=parseInt(objdeposited.value);
objdeposited.value = parseInt(objDropDown.value+total);
objdeposited.value = parseInt(objdeposited.value);

with

var total = parseInt(objdeposited.value);
objdeposited.value = parseInt(objDropDown.value||'0') + total;

Edit:

The default value for the deposited value was a space " " which was causing problems. Change this to the empty string "". Also add a ||'0' to all calls to parseInt (or parseFloat). See http://jsfiddle.net/es2yS/1/ .

share|improve this answer
    
ah, ok is there any way of going about to making this code add up then? or am I leaving something out, I apologize on my lack of knowledge Im new at this, but thank you! –  joro4651 Dec 13 '13 at 0:42
    
Yes - just call parseInt everytime you use one of the html values. I'll update the answer. –  Matt Dec 13 '13 at 0:46
    
Its coming up NaN now, would you need to see more of the code to see if I messed something else up? like something in the menu itself? –  joro4651 Dec 13 '13 at 0:56
    
@joro4651 Ok that can happen if the value is blank. I added a ||'0' to the above code. If that doesn't fix it, then somehow try to provide example values for the html fields. –  Matt Dec 13 '13 at 0:59
    
ok I added the rest of the code pertaining to the problem I left out some of the stuff not effecting it, let me know if you see anything, thank you again –  joro4651 Dec 13 '13 at 1:10

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