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I know I can validate against string with words ( 0-9 A-Z a-z and underscore ) by applying W in regex like this:

function isValid(str) { return /^\w+$/.test(str); }

But how do I check whether the string contains ASCII characters only? ( I think I'm close, but what did I miss? )

Reference: http://stackoverflow.com/a/8253200/188331

UPDATE : Standard character set is enough for my case.

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What's wrong with current solution? –  zerkms Jan 14 '13 at 4:00
    
Standard or extended character set? –  zzzzBov Jan 14 '13 at 4:01
    
I want ASCII symbols such as parenthesis , hyphen , question marks , fullstop to be included. –  Raptor Jan 14 '13 at 4:01
    
standard character set is enough for this case. –  Raptor Jan 14 '13 at 4:02
    
possible duplicate of Regex any ascii character –  sachleen Jan 14 '13 at 4:02
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2 Answers

up vote 12 down vote accepted

All you need to do it test that the characters are in the right character range.

function isASCII(str) {
    return /^[\x00-\x7F]*$/.test(str);
}

Or if you want to possibly use the extended ASCII character set:

function isASCII(str, extended) {
    return (extended ? /^[\x00-\xFF]*$/ : /^[\x00-\x7F]*$/).test(str);
}
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You've missed + –  zerkms Jan 14 '13 at 4:04
1  
@zerkms, between the two of us we'll get there. For now I'll assume * as a string of '' is technically ASCII. –  zzzzBov Jan 14 '13 at 4:05
    
I'm not insisting on + instead of *. When I posted my comment there were none of them. –  zerkms Jan 14 '13 at 4:07
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You don't need a RegEx to do it, just check if all characters in that string have a char code between 0 and 127:

function isValid(str){
    if(typeof(str)!=='string'){
        return false;
    }
    for(var i=0;i<str.length;i++){
        if(str.charCodeAt(i)>127){
            return false;
        }
    }
    return true;
}
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3  
"You don't need a RegEx to do it" --- why not use regex - it will be a trivial one liner –  zerkms Jan 14 '13 at 4:04
    
If he wants "ASCII only" I guess it's >127, not >255 –  ThiefMaster Jan 14 '13 at 4:04
    
@ThiefMaster that's right, I've updated the answer –  Danilo Valente Jan 14 '13 at 4:06
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