35

I need regular expressions to match the below cases.

  1. 3 or more consecutive sequential characters/numbers; e.g. 123, abc, 789, pqr, etc.
  2. 3 or more consecutive identical characters/numbers; e.g. 111, aaa, bbb, 222, etc.
1
  • If you want a regex which passes if the string does NOT contain 3 consecutive identical characters, you can use this: /^(?!.*(.)\1\1.*).*$/ - regex101.com/r/hxTDfr/2 Feb 5, 2020 at 23:05

15 Answers 15

26

I don't think you can (easily) use regex for the first case. The second case is easy though:

Pattern pattern = Pattern.compile("([a-z\\d])\\1\\1", Pattern.CASE_INSENSITIVE);

Since \\1 represents part matched by group 1 this will match any sequence of three identical characters that are either within the range a-z or are digits (\d).

Update

To be clear, you can use regex for the first case. However, the pattern is so laborious and ridiculously convoluted that you are better off not doing it at all. Especially if you wanted to REALLY cover all the alphabet. In that case you should probably generate the pattern programmatically by iterating the char codes of the Unicode charset or something like that and generate groupings for every three consecutive characters. However, you should realize that by having generated such a large decision tree for the pattern matcher, the marching performance is bound to suffer (O(n) where n is the number of groups which is the size of the Unicode charset minus 2).

3
  • stackoverflow.com/questions/22931991/… noted that it IS indeed possible to match an arbitrary length of sequential characters in a string, provided you define the rules for which characters follow which.
    – mbomb007
    Dec 18, 2014 at 15:44
  • At least in Python/Perl regex, the "\\" would be "\"
    – Martin
    Mar 11 at 10:17
  • In Python, to be able to forego the second backslash, you will need to start your string as a regex string with the r modifier (r'...' instead of '') Mar 11 at 15:13
16

I disagree, case 1 is possible to regex, but you have to tell it the sequences to match... which is kind of long and boring:

/(abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|012|123|234|345|456|567|678|789)+/ig

http://regexr.com/3dqln

10

To my knowledge, the first case is indeed not possible. The regex engine doesn't know anything about the order of the natural numbers or the alphabet. But it's at least possible to differentiate between 3 or more numbers and 3 or more letters, for example:

[a-z]{3,}|[A-Z]{3,}|\d{3,}

This matches abcd, ABCDE or 123 but doesn't match ab2d, A5c4 or 12z, for example. According to this, the second case can be correctly given in a shorter version as:

  (\w)\1{2,}
2
  • \w includes also underscore _
    – Toto
    Jan 17, 2012 at 12:38
  • 1
    Sure, but the author did not explicitly exclude punctuation. She only mentioned identical characters. This can be virtually everything. But anyway...
    – pemistahl
    Jan 17, 2012 at 13:38
9

for the second question:

\\b([a-zA-Z0-9])\\1\\1+\\b

explanation:

\\b               : zero-length word boundary
  (               : start capture group 1
    [a-zA-Z0-9]   : a letter or a digit
  )               : end group
  \\1             : same character as group 1
  \\1+            : same character as group 1 one or more times
\\b               : zero-length word boundary
5
  • That first part isn't sequential though. Jan 16, 2012 at 15:14
  • Why are you using the word boundaries? I don't see the question stating that we are looking for word-wrap searches Jan 16, 2012 at 18:04
  • 1
    @MiladNaseri to avoid matching aaaaaaab. Jan 16, 2012 at 23:57
  • how can we convert it to less than 3?
    – Saksham
    Sep 3, 2015 at 18:39
  • @Saksham: Just remove the last \\1+.
    – Toto
    Sep 4, 2015 at 7:29
4

3 or more consecutive sequential characters/numbers ex - 123, abc, 789, pqr etc.

Not possible with regular expressions.

3 or more consecutive identical characters/numbers ex - 111, aaa, bbb. 222 etc.

Use a pattern of (?i)(?:([a-z0-9])\\1{2,})*.

If you want to check the whole string, use Matcher.matches(). To find matches within a string, use Matcher.find().

Here's some sample code:

final String ps = "(?i)(?:([a-z0-9])\\1{2,})*";
final String psLong =
        "(?i)\t\t\t# Case insensitive flag\n"
                + "(?:\t\t\t\t# Begin non-capturing group\n"
                + " (\t\t\t\t# Begin capturing group\n"
                + "  [a-z0-9]\t\t# Match an alpha or digit character\n"
                + " )\t\t\t\t# End capturing group\n"
                + " \\1\t\t\t\t# Back-reference first capturing group\n"
                + " {2,}\t\t\t# Match previous atom 2 or more times\n"
                + ")\t\t\t\t# End non-capturing group\n"
                + "*\t\t\t\t# Match previous atom zero or more characters\n";
System.out.println("***** PATTERN *****\n" + ps + "\n" + psLong
        + "\n");
final Pattern p = Pattern.compile(ps);
for (final String s : new String[] {"aa", "11", "aaa", "111",
        "aaaaaaaaa", "111111111", "aaa111bbb222ccc333",
        "aaaaaa111111bbb222"})
{
    final Matcher m = p.matcher(s);
    if (m.matches()) {
        System.out.println("Success: " + s);
    } else {
        System.out.println("Fail: " + s);
    }
}

And the output is:

***** PATTERN *****
(?i)(?:([a-z0-9])\1{2,})*
(?i)            # Case insensitive flag
(?:             # Begin non-capturing group
 (              # Begin capturing group
  [a-z0-9]      # Match an alpha or digit character
 )              # End capturing group
 \1             # Back-reference first capturing group
 {2,}           # Match previous atom 2 or more times
)               # End non-capturing group
*               # Match previous atom zero or more characters


Fail: aa
Fail: 11
Success: aaa
Success: 111
Success: aaaaaaaaa
Success: 111111111
Success: aaa111bbb222ccc333
Success: aaaaaa111111bbb222
3
  • Your first pattern will match characters that aren't sequential (ie. vbgt)
    – Toto
    Jan 17, 2012 at 13:49
  • Oops, left that in. Corrected.
    – Dan Cruz
    Jan 17, 2012 at 13:58
  • how to check if the string has a group of 3 or more similar characters consecutive (.....CCC....), string shouldnt have 3 consecutive similar characters. eg. it should not accept 1. AAA 2. AAAAAAA 3. AAAAR Sep 19, 2014 at 9:05
3

Thanks All for helping me.

For the first case - 3 or more consecutive sequential characters/numbers; e.g. 123, abc, 789, pqr, etc. I used below code logic. Pls share your comments on this.

public static boolean validateConsecutiveSeq(String epin) {
    char epinCharArray[] = epin.toCharArray();
    int asciiCode = 0;
    boolean isConSeq = false;
    int previousAsciiCode = 0;
    int numSeqcount = 0;

    for (int i = 0; i < epinCharArray.length; i++) {
        asciiCode = epinCharArray[i];
        if ((previousAsciiCode + 1) == asciiCode) {
            numSeqcount++;
            if (numSeqcount >= 2) {
                isConSeq = true;
                break;
            }
        } else {
            numSeqcount = 0;
        }
        previousAsciiCode = asciiCode;
    }
    return isConSeq;
}
1
  • 1
    the art is to write less code. in this case you need to find the proper regex. Nov 11, 2016 at 20:46
3

Regex to match three consecutive numbers or alphabets is "([0-9]|[aA-zZ])\1\1"

1
  • this works. thank you!
    – Eliftch
    Apr 20 at 7:31
2

All put together:

([a-zA-Z0-9])\1\1+|(abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|012|123|234|345|456|567|678|789)+

3 or more consecutive sequential characters/numbers; e.g. 123, abc, 789, pqr, etc.

(abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|012|123|234|345|456|567|678|789)+

3 or more consecutive identical characters/numbers; e.g. 111, aaa, bbb, 222, etc.

([a-zA-Z0-9])\1\1+

https://regexr.com/4727n

This also works:

(?:(?:0(?=1)|1(?=2)|2(?=3)|3(?=4)|4(?=5)|5(?=6)|6(?=7)|7(?=8)|8(?=9)){2,}\d|(?:a(?=b)|b(?=c)|c(?=d)|d(?=e)|e(?=f)|f(?=g)|g(?=h)|h(?=i)|i(?=j)|j(?=k)|k(?=l)|l(?=m)|m(?=n)|n(?=o)|o(?=p)|p(?=q)|q(?=r)|r(?=s)|s(?=t)|t(?=u)|u(?=v)|v(?=w)|w(?=x)|x(?=y)|y(?=z)){2,}[[:alpha:]])|([a-zA-Z0-9])\1\1+

https://regex101.com/r/6fXC9u/1

1

If you have lower bound (3) and upper bound regexString can be generated as follows

public class RegexBuilder {
    public static void main(String[] args) {
        StringBuilder sb = new StringBuilder();

        int seqStart = 3;
        int seqEnd = 5;
        buildRegex(sb, seqStart, seqEnd);
        System.out.println(sb);
    }

    private static void buildRegex(StringBuilder sb, int seqStart, int seqEnd) {
        for (int i = seqStart; i <= seqEnd; i++) {
            buildRegexCharGroup(sb, i, '0', '9');
            buildRegexCharGroup(sb, i, 'A', 'Z');
            buildRegexCharGroup(sb, i, 'a', 'z');
            buildRegexRepeatedString(sb, i);
        }
    }

    private static void buildRegexCharGroup(StringBuilder sb, int seqLength,
            char start, char end) {
        for (char c = start; c <= end - seqLength + 1; c++) {
            char ch = c;
            if (sb.length() > 0) {
                sb.append('|');
            }
            for (int i = 0; i < seqLength; i++) {
                sb.append(ch++);
            }
        }
    }

    private static void buildRegexRepeatedString(StringBuilder sb, int seqLength) {
        sb.append('|');
        sb.append("([a-zA-Z\\d])");
        for (int i = 1; i < seqLength; i++) {
            sb.append("\\1");
        }
    }
}

Output

012|123|234|345|456|567|678|789|ABC|BCD|CDE|DEF|EFG|FGH|GHI|HIJ|IJK|JKL|KLM|LMN|MNO|NOP|OPQ|PQR|QRS|RST|STU|TUV|UVW|VWX|WXY|XYZ|abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|([a-z\d])\1\1|0123|1234|2345|3456|4567|5678|6789|ABCD|BCDE|CDEF|DEFG|EFGH|FGHI|GHIJ|HIJK|IJKL|JKLM|KLMN|LMNO|MNOP|NOPQ|OPQR|PQRS|QRST|RSTU|STUV|TUVW|UVWX|VWXY|WXYZ|abcd|bcde|cdef|defg|efgh|fghi|ghij|hijk|ijkl|jklm|klmn|lmno|mnop|nopq|opqr|pqrs|qrst|rstu|stuv|tuvw|uvwx|vwxy|wxyz|([a-z\d])\1\1\1|01234|12345|23456|34567|45678|56789|ABCDE|BCDEF|CDEFG|DEFGH|EFGHI|FGHIJ|GHIJK|HIJKL|IJKLM|JKLMN|KLMNO|LMNOP|MNOPQ|NOPQR|OPQRS|PQRST|QRSTU|RSTUV|STUVW|TUVWX|UVWXY|VWXYZ|abcde|bcdef|cdefg|defgh|efghi|fghij|ghijk|hijkl|ijklm|jklmn|klmno|lmnop|mnopq|nopqr|opqrs|pqrst|qrstu|rstuv|stuvw|tuvwx|uvwxy|vwxyz|([a-z\d])\1\1\1\1
0

for the first question this works if you're ok with less regex

         containsConsecutiveCharacters(str) {
            for (let i = 0; i <= str.length - 3; i++) {
                var allthree = str[i] + str[i + 1] + str[i + 2];
                let s1 = str.charCodeAt(i);
                let s2 = str.charCodeAt(i + 1);
                let s3 = str.charCodeAt(i + 2);
                if (
                    /[a-zA-Z]+$/.test(allthree) &&
                    (s1 < s2 && s2 < s3 && s1+s2+s3-(3*s1) === 3)
                ) {
                    return true;
                }
            }
        }
2
  • there is regex in this,
    – ShAkKiR
    Apr 18, 2018 at 5:13
  • Yes, true I edited the answer at some point. I don't get the down vote though, this pretty much works. it might not be ideal but it's not a wrong answer I assume, and the code is pretty self explanatory. Apr 18, 2018 at 5:25
0
  • 3 or more consecutive sequential characters/numbers; e.g. 123, abc, 789, pqr, etc.

    (?:(?:0(?=1)|1(?=2)|2(?=3)|3(?=4)|4(?=5)|5(?=6)|6(?=7)|7(?=8)|8(?=9)){2,}\d|(?:a(?=b)|b(?=c)|c(?=d)|d(?=e)|e(?=f)|f(?=g)|g(?=h)|h(?=i)|i(?=j)|j(?=k)|k(?=l)|l(?=m)|m(?=n)|n(?=o)|o(?=p)|p(?=q)|q(?=r)|r(?=s)|s(?=t)|t(?=u)|u(?=v)|v(?=w)|w(?=x)|x(?=y)|y(?=z)){2,}[\p{Alpha}])
    

    https://regex101.com/r/5IragF/1

  • 3 or more consecutive identical characters/numbers; e.g. 111, aaa, bbb, 222, etc.

    ([\p{Alnum}])\1{2,}
    

    https://regex101.com/r/VEHoI9/1

0

All put together:

([a-zA-Z0-9])\1\1+|(abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|012|123|234|345|456|567|678|789)+

3 or more consecutive sequential characters/numbers; e.g. 123, abc, 789, pqr, etc.

(abc|bcd|cde|def|efg|fgh|ghi|hij|ijk|jkl|klm|lmn|mno|nop|opq|pqr|qrs|rst|stu|tuv|uvw|vwx|wxy|xyz|012|123|234|345|456|567|678|789)+

3 or more consecutive identical characters/numbers; e.g. 111, aaa, bbb, 222, etc.

([a-zA-Z0-9])\1\1+

https://regexr.com/4727n

0

For case #2 I got inspired by a sample on regextester and created the following regex to match n identical digits (to check for both numbers and letters replace 0-9 with A-Za-z0-9):

const n = 3
const identicalAlphanumericRegEx = new RegExp("([0-9])" + "\\1".repeat(n - 1))
0

I was discussing this with a coworker and we think we have a good solution for #1.

To check for abc or bcd or ... or 012 or 123 or even any number of sequential characters, try:

.*((a(?=b))|(?:b(?=c))|(?:c(?=d))|(?:d(?=e))|(?:e(?=f))|(?:f(?=g))|(?:g(?=h))|(?:h(?=i))|(?:i(?=j))|(?:j(?=k))|(?:k(?=l))|(?:l(?=m))|(?:m(?=n))|(?:n(?=o))|(?:o(?=p))|(?:p(?=q))|(?:q(?=r))|(?:r(?=s))|(?:s(?=t))|(?:t(?=u))|(?:u(?=v))|(?:v(?=w))|(?:w(?=x))|(?:x(?=y))|(?:y(?=z))|(?:0(?=1))|(?:1(?=2))|(?:2(?=3))|(?:3(?=4))|(?:4(?=5))|(?:5(?=6))|(?:6(?=7))|(?:7(?=8))|(?:8(?=9))){2,}.*

The nice thing about this solution is if you want more than 3 consecutive characters, increase the {2,} to be one less than what you want to check for.

the ?: in each group prevents the group from being captured.

-2

Try this for the first question.

returns true if it finds 3 consecutive numbers or alphabets in the arg

function check(val){
    for (i = 0; i <= val.length - 3; i++) {
      var s1 = val.charCodeAt(i);
      var s2 = val.charCodeAt(i + 1);
      var s3 = val.charCodeAt(i + 2);
      if (Math.abs(s1 - s2) === 1 && s1 - s2 === s2 - s3) {
        return true;
      }
    }

    return false;
}

console.log(check('Sh1ak@ki1r@100'));
0

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