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I confess at the outset that I dislike and don't really understand regex properly. I want to check that a single character ch is one of a set of acceptable characters. I thought this should work, but it doesn't:

if (/aCcehIikmNnOoprSstxYy/.test(ch)) {

What am I doing wrong?

Thanks.

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Your regex means you are expecting exactly the string aCcehIikmNnOoprSstxYy. –  helpermethod Jun 13 '12 at 8:14

2 Answers 2

up vote 2 down vote accepted

I think this can be solved without regex:

var characters = "aCcehIikmNnOoprSstxYy";
var allowed    = characters.indexOf("C") != -1;

if (allowed) {
  // do something here
}

String.indexOf() returns -1 if character is not in string, otherwise positive number.

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1  
A much better solution. Indexof in this case is also much faster than regex. See a speed comparison here: jsperf.com/regexp-vs-indexof For example my Chrome 19's indexOf is about twice as fast as regex is. –  h2ooooooo Jun 13 '12 at 8:25
    
@h2ooooooo thx ;) –  ioseb Jun 13 '12 at 8:27
    
I should add that if you prefer, this could also be made a one liner very easily. if (​String("aCcehIikmNnOoprSstxYy").indexOf("C") != -1)​​​​​​​​ { –  h2ooooooo Jun 13 '12 at 8:27
1  
String(...) is not necessary, it's legitimate to use directly: "aCcehIikmNnOoprSstxYy".indexOf("C") –  ioseb Jun 13 '12 at 8:28
    
Thanks, everyone. I used if ("aCcehIikmNnOoprSstxYy".indexOf(ch) !== -1) { –  Nick Jun 13 '12 at 8:37

you need to enclose the set of characters in [ ]:

if (/[aCcehIikmNnOoprSstxYy]/.test(ch)) {

Without that you are trying to match the whole string 'aCcehIikmNnOoprSstxYy'.

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