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Quick question: I need to allow an input to only accept letters, from a to z and from A to Z, but can't find any expression for that. I want to use the javascript test() method.

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let res = /^[a-zA-Z]+$/.test('sfjd');
console.log(res);

Note: If you have any punctuation marks or anything, those are all invalid too. Dashes and underscores are invalid. \w covers a-zA-Z and some other word characters. It all depends on what you need specifically.

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  • do you know if there is much of a difference between regex.test(string) and string.match(regex)? Jun 18 '10 at 21:29
  • hmm it seems I was missing only the start and end tags, thanks!
    – yoda
    Jun 18 '10 at 21:38
  • 3
    what about other languages' letters?
    – vsync
    Jan 12 '15 at 17:11
  • how can you allow punctuation like all letters but also you might have united-states as allowable? Oct 4 '15 at 4:28
  • @WeDoTDD Like this: ^[a-zA-Z]+(-[a-zA-Z]+)*$. The regular expression accepts at least one English letter, and then naught or more of one dash and at least one letter. That allows a, a-a, a-a-a, and so on (using a to stand for at least one capital or lower-case letter). You can change the asterisk (*) to a question mark (?) if you want to allow at most one dash (e.g. only a or a-a).
    – Toothbrush
    Oct 8 '15 at 13:50
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Another option is to use the case-insensitive flag i, then there's no need for the extra character range A-Z.

var reg = /^[a-z]+$/i;
console.log( reg.test("somethingELSE") ); //true
console.log( "somethingELSE".match(reg)[0] ); //"somethingELSE"

Here's a DEMO on how this regex works with test() and match().

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  • Just to clarify, will this expression return null when there is some other, say, '&' character is present? IF there are only English letters, then it will return the input itself? Jul 23 '16 at 16:18
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    @MadPhysicist TLDR; Yes. Explanation: Using string.match(regex) will return null if there are no matches otherwise it returns an array of matched strings. Since this regex is matching everything from the start of the string (^) to the end of the string ($), a match() here will return the whole string or null. See my DEMO above for uses of regex.test(string) or string.match(regex). Jul 24 '16 at 0:09
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    @MadPhysicist clarification: match() here actually returns an array with the whole string at the zero index. Jul 24 '16 at 0:25
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The answer that accepts empty string:

/^[a-zA-Z]*$/.test('something')

the * means 0 or more occurrences of the preceding item.

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