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I am using a function where I have a readonly text input, and when I execute the function I want the number value + 1. So let's say I have 60, when I execute the function, the number returned should be 61.

But instead it's coming out 601, which is just adding the number 1 to the string. Any clue as to what is going on? Subtraction, multiplication and division all work fine. Here is a snippet

 var num= $("#originalnum").val() + 1;
 $("#originalnum").val(num);

And yes i've tried a few different variations, am I missing something?

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Use an <input type="number"> :-) –  Bergi Nov 19 '12 at 23:11

4 Answers 4

up vote 5 down vote accepted

A simple unary + is sufficient to turn a string into a number in this case:

var num = +$("#originalnum").val() + 1;
$("#originalnum").val(num);
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1+ the + operator is to a variable indicatiing its a number is alot faster then the parseInt(x,10) (when used to it) –  VeXii Nov 19 '12 at 23:12
    
so when i use the + sign in front of lets say a span or text input im indicating that its not a string but that its an int? –  Dnaso Nov 20 '12 at 3:58
    
not that i can really see a difference, but in cases where i use it for phonegap and stuff (and because its probably better practice etc) i like this answer –  Dnaso Nov 20 '12 at 4:00

You should use the parseInt function and make sure the value is number(use isNaN function):

var val = $("#originalnum").val();

var num = 0;

if ( !isNaN(val) )
  num= parseInt(val) + 1;
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i can use that even if my input box is type text? –  Dnaso Nov 19 '12 at 23:08
    
and do by any chance know why every other operation works but addition? ie multiplication division etc? –  Dnaso Nov 19 '12 at 23:09
1  
The other operations probably cause the JS engine to convert the types. Because + is a valid operator for strings, the types are not converted (and the strings are concatenated). –  jahroy Nov 19 '12 at 23:09
1  
@Dnaso because + can also mean concat for strings –  Kirill Ivlev Nov 19 '12 at 23:10
1  
Please don't forget to supply 10 as radix parameter –  Bergi Nov 19 '12 at 23:12

The problem is that .val() returns the value of the element as a string, and when you use the + operator on a string it does string concatenation. You need to convert the value to a number first:

var num = +$("#originalnum").val() + 1;            // unary plus operator
// OR
var num = Number($("#originalnum").val()) + 1;     // Number()
// OR
var num= parseFloat($("#originalnum").val()) + 1;  // parseFloat()
// OR
var num= parseInt($("#originalnum").val(),10) + 1; // parseInt()

Note that if you use parseInt() you must include the radix (10) as the second parameter or it will (depending on the browser) treat strings with a leading zero as octal and strings with a leading "0x" as hexadecimal. Note also that parseInt() ignores any non-numeric characters at the end of the string, including a full-stop that the user might have intended as a decimal point, so parseInt("123.45aasdf",10) returns 123. Similarly parseFloat() ignores non-numeric characters at the end of the string.

Also if it's a user-entered value you should double-check that it actually is a number and perhaps provide an error message if it isn't.

When you use the *, / or - operators JS tries to convert the string to a number automatically, so that's why those operators "work" (assuming the string can be converted).

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Use parseInt():

var num= parseInt($("#originalnum").val(),10) + 1;

So your number is treated as an integer instead of a string (as .val() treats the result as string by default)

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1  
Please don't forget to supply 10 as radix parameter –  Bergi Nov 19 '12 at 23:12
    
Good point, thanks! –  DarkAjax Nov 19 '12 at 23:15

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