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I have written a bunch of code to have a valid entry for Spend amount (32.4554, 234,324.34, etc.). I have additionally written code to limit the user from entering more than 13 digits (excluding . and ,).

All of this works perfectly in Firefox. But in IE 8, after the number of digits exceeds 13, if a letter is entered, Internet Explorer hangs and crashes! While debugging I noticed it faulting at the regex line, but the same regex works fine until that limit of 13 isn't crossed! Regexperts, please! Show me the light!

function isIncorrectSpend(cubeCurrencySpend) {  
    if(!(/^([1-9]*[0-9]*,?[0-9]*)* (\.[0-9]*)?$/.test(cubeCurrencySpend))) {
        return true;
    }
    return false;
}

function isLongerThanThirteenDigits(cubeCurrencySpend) {
    cubeCurrencySpend = cubeCurrencySpend.replace(/,/g, "").replace(/\./g, "");
    if(cubeCurrencySpend.length>12) { 
        return true;
    }
    return false;
}

jQuery("input#minval").keyup( function() {
    if(isIncorrectSpend(jQuery("input#minval").val())) {
        jQuery("input#minval").val("");
        alert("please enter correct spend value");
    }        
});
jQuery("input#minval").keypress( function(e) {
    var code = (e.keyCode ? e.keyCode : e.which);
    if(isLongerThanThirteenDigits(jQuery("input#minval").val()) && (code > 47 && code < 58)) {
        alert("Please enter a number less than 13 digits");
        return false;
    }
    return true;
});
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Its not IE's fault. The regex: /^([1-9]*[0-9]*,?[0-9]*)* (\.[0-9]*)?$/ as stema correctly points out, suffers from catastrophic backtracking. –  ridgerunner Nov 14 '12 at 16:07

3 Answers 3

up vote 5 down vote accepted

I am quite sure this is a case of catastrophic backtracking. Your regex has too many possibilities to check, till it can fail.

The problem is this part

([1-9]*[0-9]*,?[0-9]*)*

and I am quite sure it is not doing what you expect it to.

This will match the same stuff, but will fail much quicker:

/^[1-9]*[0-9,]*(\.[0-9]+)?$/

it is still allowing stuff like 1,,,,,,,.123, but much better than yours. If you want to disallow such things, you need to clarify your requirements.

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@ridgerunner, of course you are correct, I forgot to delete the opening bracket. –  stema Nov 14 '12 at 20:03

You could also alter the regex to combine both the length and validity check.

function isIncorrectSpend(cubeCurrencySpend) {  
     return !/^(?!0)(?:\d[,\.]*){1,13}$/.test(cubeCurrencySpend);              
}
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This answer assumes you wish to validate a decimal "number" which meets the following criteria:

Definition of a "Number"

  • There must be at least one digit and all digits must be decimal (from 0 to 9).
  • Both the integer and fractional parts are optional, but one or the other must be present.
  • The fractional part, if present, may have any number of digits but is always preceded by a decimal point.
  • If the integer part has more than one digit, the leading digit must not be zero.
  • If the integer part has more than three digits, commas may be used to separate the integer into digit triplets.
  • The number may begin with an optional sign, either a plus +, or a minus -.
  • Whitespace is not allowed.
  • An exponent part is not allowed.

Given the above requirements here are some valid and invalid numbers

Valid "Numbers":

0
0.
.0
0.0
1
+1
-1
1234
123456
1,234
12,345
123,456
123,456.7890

Invalid "Numbers":

0FA92      // Invalid digit. Must be 0-9.
0123       // Multi-digit integer must lead with non-zero.
.          // Must have at least one digit.
1,23,4     // Commas must separate triplets of digits.
12345,678. // Missing comma.
+  10      // Whitespace not allowed.
1.2E34     // Exponents not allowed.

Here is a regex (first presented in commented, free-spacing mode format using Python's handy raw string syntax) which matches a number meeting the above requirements:

Regex to validate a "number"

r"""
^          # Anchor to start of string.
[+\-]?     # Optional sign.
(?=\.?\d)  # Must have at least one digit.
(?:        # Optional integer part. Either...
  [1-9]    # A sequence of digits w/no commas.
  \d*      # (but first digit is not zero.)
|          # or an integer having commas...
  [1-9]    # First digit is not zero.
  \d{0,2}  # 1,2 or 3 digits ahead of 1st comma.
  (?:      # One or more comma + 3 digits.
    ,      # Comma separates
    \d{3}  # digit triplets.
  )+       # One or more comma + 3 digits.
| 0        # or integer part may be just zero.
)?         # Optional integer part.
(?:        # Optional fractional part.
  \.       # Dot separates
  \d*      # zero or more fraction digits.
)?         # Optional fractional part.
$          # Anchor to end of string.
"""

Here is a JavaScript function which implements the above regex:

function isValidNumber()

function isValidNumber(text) {
    var re = /^[+\-]?(?=\.?\d)(?:[1-9]\d*|[1-9]\d{0,2}(?:,\d{3})+|0)?(?:\.\d*)?$/;
    if((re.test(text))) return 'true';
    return 'false';
}

Note that you should not be trying to validate the number until after the user has finished entering the entire number. Calling a validation function for each and every keypress (as your code above appears to be doing) is not good practice IMHO.

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