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How can I build a regular expression that will match a string of any length containing any characters but which must contain 21 commas?

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Should it contain exactly or at least 21 commas? – Dario May 14 '09 at 12:46
CSV validation? – dfa May 14 '09 at 12:54

9 Answers 9


That is:

^     Start of string
(     Start of group
[^,]* Any character except comma, zero or more times
,     A comma
){21} End and repeat the group 21 times
[^,]* Any character except comma, zero or more times again
$     End of string
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Very nice explanation. Just make sure you put that in the comment in the code. – Robert May 14 '09 at 13:01
thanks that really good only thing is ,,,,,,,,,,,,,,,,, etc is allowed how can i include this? – matt123 May 14 '09 at 13:07
This regex will allow 21 consecutive commas - to prevent that, change both of the * to + – Peter Boughton May 14 '09 at 13:09
Also, using *+ (or ++) instead of * (or +) may be faster, if your regex engine supports it. – Peter Boughton May 14 '09 at 13:10
Also, regarding Robert's comment - see my answer below which uses (?x) to enable commenting, so both the regex and explanation can live together. – Peter Boughton May 14 '09 at 13:13

If you're using a regex variety that supports the Possessive quantifier (e.g. Java), you can do:


The Possessive quantifier can be better performance than a Greedy quantifier.


(?x)    # enables comments, so this whole block can be used in a regex.
^       # start of string
(?:     # start non-capturing group
[^,]*+  # as many non-commas as possible, but none required
,       # a comma
)       # end non-capturing group
{21}    # 21 of previous entity (i.e. the group)
[^,]*+  # as many non-commas as possible, but none required
$       # end of string
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Might be faster and more understandable to iterate through the string, count the number of commas found and then compare it to 21.

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Exactly 21 commas:


At least 21 commas:

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The first will match more than 21 commas (because it's not anchored) and if you anchor it the string will have to end with comma – Greg May 14 '09 at 12:51
Allready fixed ... ^^ – Daniel Brückner May 14 '09 at 12:56
Oops ... not fixed ... but now ... – Daniel Brückner May 14 '09 at 12:58
This isn't right. Why do you require that the string not end in a comma? The question didn't say that. – Michael Graczyk Jul 19 '12 at 4:14
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You can remove the '?:' if you're not using .NET – Trumpi May 14 '09 at 12:50
Irrespective of regex version, you should leave the ?: unless you want to capture the group. – Peter Boughton May 14 '09 at 13:01

if exactly 21:


if at least 21:


However, I would suggest don't use regex for such simple task. Because it's slow.

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What language? There's probably a simpler method.

For example...

In CFML, you can just see if ListLen(MyString) is 22

In Java, you can compare MyString.split(',') to 22


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var valid = ((" " + input + " ").split(",").length == 22);


var valid = 21 == (function(input){
    var ret = 0;
    for (var i=0; i<input.length; i++)
        if (input.substr(i,1) == ",")
    return ret

Will perform better than...

var valid = (/^([^,]*,){21}[^,]*$/).test(input);
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This will match more than 21 commas – Greg May 14 '09 at 12:51
And it's unreadable too! There's a reason {num} syntax exists. – Peter Boughton May 14 '09 at 13:02
Agreed, it's unreadable. The {21} syntax is preferable. But it makes the point visibly: just repeat what you want. It also has the advantage of working in old regex environments that don't support the repeat count syntax. – John D. Cook May 14 '09 at 15:03
It's also extremely inefficient. The first dot-star will initially consume the whole string, then backtrack just enough to let the following comma match. Then the second dot-star-comma will have nothing to match, so the first one will be forced to backtrack again, and so on. This is a recipe for catastrophic backtracking. – Alan Moore May 14 '09 at 23:10

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