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What I want to do is determine if a string is numeric. I would like to know what people think about the two solutions I am trying to decide between (OR if there is a better solution that I have not found yet). The parseInt function is not suitable because it will return an integer value for a parameter like "40 years old". The two solutions I am deciding between are:

Use Integer.valueOf() with try catch

function isNumeric(quantity)
{
    var isNumeric = true
    try
    {
        Integer.valueOf(quantity)
    }
    catch(err)
    {
        isNumeric = false
    }
    return isNumeric
}

Or check each character individually

function IsNumeric(quantity)
{
    var validChars = "0123456789";
    var isNumber = true;
    var nextChar;

    for (i = 0; i < quantity.length && isNumber == true; i++) 
    { 
        nexChar = quantity.charAt(i); 
        if (validChars.indexOf(nextChar) == -1) 
        {
            isNumber = false;
        }
    }
    return IsNumber;
}

I would have thought there would be a simpler solution than both of these though. Have I just missed something?

NOTE: I am using jQuery aswel so if there is a jQuery solution that that would be sufficient

share|improve this question
    
Can the string include a leading sign character (+ or -)? –  David R Tribble Oct 15 '09 at 22:23
    
yes the string could be anything –  Simon Fox Oct 15 '09 at 22:24
    
if (nexChar >= '0' && nexchar <= '9') is more efficient than using indexOf(). –  David R Tribble Oct 15 '09 at 22:24
    
While Loadmaster's test is constant time compared to indexOf's O(n) (in most implementations), it does rely on the characters for digits being dense in the character set. (that is, the character symbol for "1" is one more than the symbol for '0', etc.) Thankfully, all popular character sets (including the one specified for ECMAscript and even EBCDIC) have that property. –  Berry Oct 15 '09 at 22:32

6 Answers 6

up vote 8 down vote accepted

I had to do something like you want, but I needed to verify if a variable contained a number without knowing its type, it could be a numeric string (considering also exponential notation, etc.), a Number object, basically anything.

And I had to take care about implicit type conversion, for example !isNaN(true) == true was not good.

I ended up writing a set of 30+ unit test that you can find here, and I use the following function, that passes all my tests:

function isNumber(n) {
  return !isNaN(parseFloat(n)) && isFinite(n);
}
share|improve this answer
    
Even better. Thanks –  Simon Fox Oct 15 '09 at 23:03

Why not isNaN(obj)?

function IsNumeric (value) {
    return (!((isNaN(value)) || (value.length == 0)));
}
share|improve this answer
    
That misses empty string but works well. Thanks –  Simon Fox Oct 15 '09 at 22:36
    
It will fail with white-space characters also: IsNumeric(' ') == true; or IsNumeric('\t \t') == true; –  CMS Oct 15 '09 at 23:42

how about a regex?

function IsNumeric(string) { 
    return string.match(/^\d+$/) !== null;
}

(not tested or very defensive, but you get the point)

share|improve this answer
1  
This will blow up if the value passed in isn't a string or worse, is null. –  mimetnet Oct 15 '09 at 22:19
    
I'd modify the regex to allow a leading sign character: /^[-+]?\d+$/. –  David R Tribble Oct 15 '09 at 22:26

This would work for most values

function isNumericString(s)
{
   return !!s && !isNaN(+s);
}

generally unary + is the best way to convert to number. no base issue, no dangling non digit problem.

share|improve this answer
    
Will fail with white-space character strings as isNumericString('\t \t') == true; or isNumericString(' ') == true; –  CMS Oct 16 '09 at 0:54

I suppose you could use a regular expression to validate the input, but I honestly don't see what's wrong with the first one.

share|improve this answer

If you are only testing strings, why not let any string use the method?

String.prototype.isNumeric= function(){
 return parseFloat(this)== this;
}
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