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I have two variables, 'a' and 'b' in my JavaScript, and i want to add them together - i assume this code:

var a = 10;
var b = 30
var varible = a + b;

This, puts the two numbers next to each other... any ideas why... the result should be 40?

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I am amazed at how someone downvoted this question. Was it because there was an error in the code? Amazing... – Victor Oct 27 '09 at 13:17
    
Please edit your code and rename the "new" variable. Victor is right, code posted as example should be functional and not introduce new errors. – Boldewyn Oct 27 '09 at 13:29
1  
Because the problem he is experiencing can't be the result of that code, even if the new is fixed. – Harry Vangberg Oct 27 '09 at 14:27
up vote 4 down vote accepted

You probably have strings instead of integers. That is your code really is like this:

var a = "10";
var b = "30";
var c = a + b; // "1030"

There are several ways to convert the strings to integers:

a = parseInt(a, 10);  // Parse the string
b = b * 1;            // Force interpretation as number
share|improve this answer
2  
Careful using parseInt without specifying the radix argument. – Joel Coehoorn Oct 27 '09 at 13:14

new is a reserved word, I'd use something else in any case.

And with a normal variable name of c it worked for me:

var a = 10;
var b = 30
var c = a + b;
alert(c);

did the expected and alerted 40

share|improve this answer
    
The code he posted is obviously not what he uses in real life, as (most?) JavaScript interpreters will throw a syntax error in this case. Also, one of his variables probably contains a string. – Harry Vangberg Oct 27 '09 at 13:07
2  
But that is the error in the posted code. I cannot read unposted code yet, sorry. – Victor Oct 27 '09 at 13:08

new is a keyword in JavaScript. you should not use it to declare your variables or functions. change the variable name from new to something else

share|improve this answer

Are you sure you didn't do this:

var a = '30';
var b = '40';

Here, I show '30' as a string rather than a number, and I would expect the "+" operator to concatenate two strings. Since this is contrived code, you may not be entirely sure where your variables were initially assign or what type they have. You can check it like this:

var a = '30';
var b = '40';
alert( typeof(a) + '\n' + typeof(b) );

If either of those say 'object' or 'string' rather than 'number' this is your problem. One way this might happen that you didn't expect is with an input. Say you have code like this:

<input id="a" value="30" />
<input id="b" value="40" />
<script language="javascript">
    var a = document.getElementById('a').value;
    var b = document.getElementById('b').value;
</script>

Here, the value of a text input is always a string initially.

If you want to convert a variable to a number first you should use something like myVar - 0 to coerce a numeric operation or the more-formal parseInt() or parseFloat() functions (don't forget the radix parameter for parseInt()). And always check isNaN() on the results.

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+1 why downvoted? – Federico Culloca Oct 27 '09 at 13:14
    
Lack of solution. – Harry Vangberg Oct 27 '09 at 13:28
    
He didn't ask for a solution. He asked for the "why". Often that's much more important. You may already know things you can do to fix it, but you want to know why it's broken so you can understand the problem and avoid it altogether in the future. That said, I have added solution suggestions to the bottom of the post. – Joel Coehoorn Oct 27 '09 at 13:32

I'm really surprised that noone has until now suggested the obvious: "Casting" with JavaScript (I set it in quotes, because it is no real casting).

var a = "1"; // string
var b = Number(a); // number
var c = String (b); // string again

a + b; // "11"
b + a; // 2
a + c; // "11"

Now, why is this no real casting? Because you don't create a new variable of type "number" but a new object "Number" and initialize it with something that could be numerical.

share|improve this answer

One or both is a string. If you get the values from a HTML input or something, they definitely are. Make sure they're both integers by using parseInt:

var newValue = parseInt(a,10) + parseInt(b,10);

Also, 'new' is a keyword. You can't use that for a variable name :)

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1  
careful using parseInt without the radix argument. You can easily get into trouble, especially if there can be leading zeros. – Joel Coehoorn Oct 27 '09 at 13:16

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