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I have strings which contains thousand separators, however no string-to-number function wants to consume it correctly (using JavaScript). I'm thinking about "preparing" the string by stripping all thousand separators, leaving anything else untoched and letting Number/parseInt/parseFloat functions (I'm satisfied with their behavious otherwise) to decide the rest. But it seems what i have no idea which RegExp can do that!

Better ideas are welcome too!


UPDATE:

Sorry, answers enlightened me how badly formulated question it is. What i'm triyng to achieve is: 1) to strip thousand separators only if any, but 2) to not disturb original string much so i will get NaNs in the cases of invalid numerals.

MORE UPDATE:

JavaScript is limited to English locale for parsing, so lets assume thousand separator is ',' for simplicity (naturally, it never matches decimal separator in any locale, so changing to any other locale should not pose a problem)

Now, on parsing functions:

parseFloat('1023.95BARGAIN BYTES!')  // parseXXX functions just "gives up" on invalid chars and returns 1023.95
Number('1023.95BARGAIN BYTES!')      // while Number constructor behaves "strictly" and will return NaN

Sometimes I use rhw loose one, sometimes strict. I want to figure out the best approach for preparing string for both functions.

On validity of numerals:

'1,023.99' is perfectly well-formed English number, and stripping all commas will lead to correct result. '1,0,2,3.99' is broken, however generic comma stripping will give '1023.99' which is unlikely to be a correct result.

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Is your separator a comma, or a dot? That is, is twelve thousand represented as '12,000', or as '12.000'? (Or something else?) –  ruakh Nov 18 '11 at 20:32
    
@ruakh, actually a space, but it is not relevant, because JavaScript is not locale-capable at all. –  OnTheFly Nov 18 '11 at 20:45
2  
It is relevant, because your regex will have to know which separator to remove! –  ruakh Nov 18 '11 at 20:52
    
please give an example of the string before and after, for instance: 12 345 678 ==> 12345678 or he said, 'I just won $25 000 000!!!' ==> he said, 'I just won $25000000!!!' or there are 5,280 feet in a mile, right? ==> there are 5280 feet in a mile, right? or whatever you can think of –  Code Jockey Nov 18 '11 at 21:02
    
@Code Jockey, i've updated the question, hope its better –  OnTheFly Nov 18 '11 at 21:33

5 Answers 5

up vote 3 down vote accepted

welp, I'll venture to throw my suggestion into the pot:

Note: Revised

stringWithNumbers = stringwithNumbers.replace(/(\d+),(?=\d{3}(\D|$))/g, "$1");

should turn

1,234,567.12
1,023.99
1,0,2,3.99
the dang thing costs $1,205!!
95,5,0,432
12345,0000
1,2345

into:

1234567.12
1023.99
1,0,2,3.99
the dang thing costs $1205!!
95,5,0432
12345,0000
1,2345

I hope that's useful!

EDIT:

There is an additional alteration that may be necessary, but is not without side effects:

(\b\d{1,3}),(?=\d{3}(\D|$))

This changes the "one or more" quantifier (+) for the first set of digits into a "one to three" quantifier ({1,3}) and adds a "word-boundary" assertion before it. It will prevent replacements like 1234,123 ==> 1234123. However, it will also prevent a replacement that might be desired (if it is preceded by a letter or underscore), such as A123,789 or _1,555 (which will remain unchanged).

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Divine elegance! Yes, very useful, thanks! –  OnTheFly Nov 18 '11 at 22:07
    
I guess i found a bug, '30,0300'.replace(/(\d+),(?=\d{3})/g, "$1") still strips a comma. How can i adjust lookahead assertion to stop after exactly 3 digits? –  OnTheFly Nov 18 '11 at 22:21
1  
.replace(/(\d+),(?=\d{3})(\D|$)/g, "$1$2"); –  Jan Kuča Nov 18 '11 at 23:39
    
@Jan Kuča, '1,030,000'.replace(/(\d+),(?=\d{3})(\D|$)/g, "$1$2") returns "1,030,000" –  OnTheFly Nov 19 '11 at 9:06
    
@user539484 - the solution I believe you seek has been added to my answer. It quite close to the solution Jan Kuča proposed, but includes the non-digit match INSIDE the look-ahead assertion. –  Code Jockey Nov 19 '11 at 20:09

A simple num.replace(/,/g, '') should be sufficient I think.

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But what if input numeral is not well-formed, eg '1,02,4'? –  OnTheFly Nov 18 '11 at 20:40
    
Well then those are not thousand separators. If that should be interpreted as 1024, then the code to get that value is the same. –  Jan Kuča Nov 18 '11 at 20:46
    
Problem is: simple approach will take those as thousand separators and i will get 1024 while correct results (for JavaScript environment) parseInt('1,02,4') == 1, Number('1,02,4') == NaN –  OnTheFly Nov 18 '11 at 20:57

Depends on what your thousand separator is

myString = myString.replace(/[ ,]/g, "");

would remove spaces and commas.

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JavaScript strings don't have a replaceAll method. Maybe you're thinking of Java? –  ruakh Nov 18 '11 at 20:34
    
@ruakh: Yeah, I had fixed it by the time your comment got through though. ;) –  flesk Nov 18 '11 at 20:35
    
Thanks. +1, then. :-) –  ruakh Nov 18 '11 at 20:50

This should work for you

var decimalCharacter = ".",
    regex = new RegExp("[\\d" + decimalCharacter + "]+", "g"),
    num = "10,0000,000,000.999";
+num.match(regex).join("");
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To confirm that a numeral-string is well-formed, use:

/^(\d*|\d{1,3}(,\d{3})+)($|[^\d])/.test(numeral_string)

which will return true if the numeral-string is either (1) just a sequence of zero or more digits, or (2) a sequence of digits with a comma before each set of three digits, or (3) either of the above followed by a non-digit character and who knows what else. (Case #3 is for floats, as well as your "BARGAIN BYTES!" examples.)

Once you've confirmed that, use:

numeral_string.replace(/,/g, '')

which will return a copy of the numeral-string with all commas excised.

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