78

I have a regex

/^([a-zA-Z0-9]+)$/

this just allows only alphanumerics but also if I insert only number(s) or only character(s) then also it accepts it. I want it to work like the field should accept only alphanumeric values but the value must contain at least both 1 character and 1 number.

1
  • Is it okay if it should contains special characters? Dec 14, 2018 at 11:40

9 Answers 9

131

Why not first apply the whole test, and then add individual tests for characters and numbers? Anyway, if you want to do it all in one regexp, use positive lookahead:

/^(?=.*[0-9])(?=.*[a-zA-Z])([a-zA-Z0-9]+)$/
10
  • 7
    This is better than the below solution: If you wanted to add a hyphen and underscore check, this will still work all around. Ex: ^(?=.*[0-9])(?=.*[a-z])([a-z0-9_-]+)$ abc-d12345
    – Sababado
    May 3, 2012 at 16:29
  • 2
    thanks very much both for answer and explanation of way to think
    – merveotesi
    Nov 28, 2012 at 12:11
  • This gives a good explanation on how lookaround works: regular-expressions.info/lookaround.html
    – jmort253
    Jul 22, 2016 at 6:29
  • 1
    Dear @phihag , as you said asked it at stackoverflow.com/questions/44528450/… Jun 13, 2017 at 17:58
  • 7
    WARNING: this regex will fail on strings that contain special characters. It matches only strings that have letters and numbers. It does not strings that contains letters, numbers, and special chars. Mar 21, 2018 at 21:49
23

This RE will do:

/^(?:[0-9]+[a-z]|[a-z]+[0-9])[a-z0-9]*$/i

Explanation of RE:

  • Match either of the following:
    1. At least one number, then one letter or
    2. At least one letter, then one number plus
  • Any remaining numbers and letters

  • (?:...) creates an unreferenced group
  • /i is the ignore-case flag, so that a-z == a-zA-Z.
6
  • Why do we need case sensitivity in this? Oct 7, 2011 at 8:40
  • The /i at the end makes it case-insensitive.
    – Kasaku
    Oct 7, 2011 at 8:42
  • In your code, you mentioned a-zA-Z. I've done some test yesterday, and deduced that the /[a-z]/i is slightly faster than /[a-zA-Z]/. See: jsperf.com/regexp-a-z-i-vs-a-za-z
    – Rob W
    Oct 7, 2011 at 8:43
  • 3
    @RobW The data shown on the linked page clashes with your statement. On Chrome, /[a-zA-Z]/ seems to be faster. But that's kind of a silly test anyway, and performance doesn't really matter in the first place.
    – phihag
    Oct 10, 2011 at 6:59
  • If you wanted to add a check for hyphens and underscores to this, your regex will break with any hyphen or underscore before the letter/number pair. Ex: ^(?:[0-9]+[a-z]|[a-z]+[0-9])[a-z0-9_-]*$abc-d12345
    – Sababado
    May 3, 2012 at 16:27
17

I can see that other responders have given you a complete solution. Problem with regexes is that they can be difficult to maintain/understand.

An easier solution would be to retain your existing regex, then create two new regexes to test for your "at least one alphabetic" and "at least one numeric".

So, test for this :-

/^([a-zA-Z0-9]+)$/

Then this :-

/\d/

Then this :-

/[A-Z]/i

If your string passes all three regexes, you have the answer you need.

3
  • I really like the simplicity of this. Much, much easier to read and maintain. Apr 20, 2016 at 16:56
  • Hello Paul.. I am looking for a regex with only numbers[0-9] and two spacial characters [.,] and then ' ml' - at least one number should be there.. Your solution looks great but I am not able to write the exact regex.. I tried this : .match(/(?=.*\d)[0-9][,.]{1,5} ml/g) . its not working. Can you help me out. Jul 11, 2018 at 8:26
  • BEAUTIFUL and GENIUS. This should be the accepted answer.
    – Ilker Cat
    Sep 15, 2020 at 8:30
10

While the accepted answer is correct, I find this regex a lot easier to read:

REGEX = "([A-Za-z]+[0-9]|[0-9]+[A-Za-z])[A-Za-z0-9]*"
0
9

The accepted answers is not worked as it is not allow to enter special characters.

Its worked perfect for me.

^(?=.*[0-9])(?=.*[a-zA-Z])(?=\S+$).{6,20}$

  • one digit must
  • one character must (lower or upper)
  • every other things optional

Thank you.

5
  • From the question: the field should accept only alphanumeric values
    – Toto
    Dec 14, 2018 at 10:46
  • Regex pattern to match at least 1 number and 1 character in a string means at least alphanumeric MUST but every other thing is fine it you enter or not. Dec 14, 2018 at 11:20
  • Reread the question. Second line: the field should accept only alphanumeric values
    – Toto
    Dec 14, 2018 at 11:23
  • Reread first line : if I insert only number(s) or only character(s) then also it accepts but he want both must. So I think my answer is not wrong. Dec 14, 2018 at 11:43
  • They say their actual regex accepts only number or only alpha but they want at least 1 digit and 1 alpha AND only alphanumeric. The accepted answer was given 7 seven years ago and it seems to answer perfectly. But you're allowed to imagine what you want. Have a good day.
    – Toto
    Dec 14, 2018 at 12:22
7

This solution accepts at least 1 number and at least 1 character:

[^\w\d]*(([0-9]+.*[A-Za-z]+.*)|[A-Za-z]+.*([0-9]+.*))
0
3

Maybe a bit late, but this is my RE:

/^(\w*(\d+[a-zA-Z]|[a-zA-Z]+\d)\w*)+$/

Explanation:

\w* -> 0 or more alphanumeric digits, at the beginning

\d+[a-zA-Z]|[a-zA-Z]+\d -> a digit + a letter OR a letter + a digit

\w* -> 0 or more alphanumeric digits, again

I hope it was understandable

3

And an idea with a negative check.

/^(?!\d*$|[a-z]*$)[a-z\d]+$/i
  • ^(?! at start look ahead if string does not
  • \d*$ contain only digits | or
  • [a-z]*$ contain only letters
  • [a-z\d]+$ matches one or more letters or digits until $ end.

Have a look at this regex101 demo

(the i flag turns on caseless matching: a-z matches a-zA-Z)

0

If you need the digit to be at the end of any word, this worked for me:

/\b([a-zA-Z]+[0-9]+)\b/g
  • \b word boundary
  • [a-zA-Z] any letter
  • [0-9] any number
  • "+" unlimited search (show all results)
1
  • This doesn't match 3b or 1a2b3c4d
    – Toto
    Dec 21, 2019 at 10:47

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