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Need a regular expression to validate username which:

  1. should allow trailing spaces but not spaces in between characters
  2. must contain at least one letter,may contain letters and numbers
  3. 7-15 characters max(alphanumeric)
  4. cannot contain special characters
  5. underscore is allowed

Not sure how to do this. Any help is appreciated. Thank you.

This is what I was using but it allows space between characters

"(?=.*[a-zA-Z])[a-zA-Z0-9_]{1}[_a-zA-Z0-9\\s]{6,14}"

Example: user name No spaces are allowed in user name

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Why must you use a single regexp for this? Often a few lines of clear code are better than a single contorted regexp. Allowing trailing spaces seems odd; are they actually part of the username, or are they ignored? Do you really want to treat "fred" and "fred " as distinct? Do trailing spaces count towards the 7-15 maximum length? Must a username be at least 7 characters, or is there a variable maximum length that can be anywhere from 7 to 15 (and based on what)? What exactly are "special characters"? Is "123_456" valid (i.e., does underscore count as a letter for purposes of rule 2)? –  Keith Thompson Dec 3 '11 at 1:50

1 Answer 1

up vote 4 down vote accepted

Try this:

foundMatch = Regex.IsMatch(subjectString, @"^(?=.*[a-z])\w{7,15}\s*$", RegexOptions.IgnoreCase);

Is also allows the use of _ since you allowed this in your attempt.

So basically I use three rules. One to check if at least one letter exists. Another to check if the string consists only of alphas plus the _ and finally I accept trailing spaces and at least 7 with a max of 15 alpha's. You are in a good track. Keep it up and you will be answering questions here too :)

Breakdown:

    "
^           # Assert position at the beginning of the string
(?=         # Assert that the regex below can be matched, starting at this position (positive lookahead)
   .        # Match any single character that is not a line break character
      *     # Between zero and unlimited times, as many times as possible, giving back as needed (greedy)
   [a-z]    # Match a single character in the range between “a” and “z”
)
\w          # Match a single character that is a “word character” (letters, digits, etc.)
   {7,15}   # Between 7 and 15 times, as many times as possible, giving back as needed (greedy)
\s          # Match a single character that is a “whitespace character” (spaces, tabs, line breaks, etc.)
   *        # Between zero and unlimited times, as many times as possible, giving back as needed (greedy)
$           # Assert position at the end of the string (or before the line break at the end of the string, if any)
"
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Hi, The above expression you provided still allows space in between characters –  1078081 Dec 2 '11 at 20:11
    
@user1078081 Yes? Can you explain me how this is possible? –  FailedDev Dec 2 '11 at 20:14
    
This shows a invalid escape sequence (valid ones are \b \t \n \f \r \" \' \ ) syntax error pattern. How can I fix it. –  1078081 Dec 2 '11 at 20:20
1  
Which language are you using? –  FailedDev Dec 2 '11 at 20:20
    
@NotEmpty @Pattern(regexp = "^(?=.*[a-z])\w{7,15}\s*$" private String username; –  1078081 Dec 2 '11 at 20:22

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