Take the 2-minute tour ×
Stack Overflow is a question and answer site for professional and enthusiast programmers. It's 100% free, no registration required.

I would like to find an efficient way (not scanning the String 10,000 times, or creating lots of intermediary Strings for holding temporary results, or string bashing, etc.) to write a method that accepts a String and determine if it meets the following criteria:

  • It is at least 2 characters in length
  • The first character is uppercased
  • The remaining substring after the first character contains at least 1 lowercased character

Here's my attempt so far:

private boolean isInProperForm(final String token) {
    if(token.length() < 2)
        return false;

    char firstChar = token.charAt(0);
    String restOfToken = token.substring(1);
    String firstCharAsString = firstChar + "";
    String firstCharStrToUpper = firstCharAsString.toUpperCase();

    // TODO: Giving up because this already seems way too complicated/inefficient.
    // Ignore the '&& true' clause - left it there as a placeholder so it wouldn't  give a compile error.
    if(firstCharStrToUpper.equals(firstCharAsString) && true)
        return true;

    // Presume false if we get here.
    return false;
}

But as you can see I already have 1 char and 3 temp strings, and something just doesn't feel right. There's got to be a better way to write this. It's important because this method is going to get called thousands and thousands of times (for each tokenized word in a text document). So it really really needs to be efficient.

Thanks in advance!

share|improve this question
    
Why not try with StringBuilder? –  Rohit Jain Oct 17 '12 at 13:39
2  
If it's only going to be called thousands of times (vs. millions or billions), don't worry about efficiency until it becomes a problem. –  Skip Head Oct 17 '12 at 13:40
2  
If removing && true gives a compile-time error, you've got a bigger problem... –  Jon Skeet Oct 17 '12 at 13:40
    
@RohitJain: There is no need to any strings in here, actually. –  amit Oct 17 '12 at 13:41
    
Use a regex until you've measured the performance and determined it's a problem –  artbristol Oct 17 '12 at 13:48

7 Answers 7

up vote 6 down vote accepted

This function should cover it. Each char is examined only once and no objects are created.

public static boolean validate(String token) {
  if (token == null || token.length() < 2) return false;
  if (!Character.isUpperCase(token.charAt(0)) return false;
  for (int i = 1; i < token.length(); i++)
    if (Character.isLowerCase(token.charAt(i)) return true;
  return false;
share|improve this answer

The first criteria is simply the length - this data is cached in the string object and is not requiring traversing the string.

You can use Character.isUpperCase() to determine if the first char is upper case. No need as well to traverse the string.

The last criteria requires a single traversal on the string- and stop when you first find a lower case character.


P.S. An alternative for the 2+3 criteria combined is to use a regex (not more efficient - but more elegant):

return token.matches("[A-Z].*[a-z].*");

The regex is checking if the string starts with an upper case letter, and then followed by any sequence which contains at least one lower case character.

share|improve this answer
  • It is at least 2 characters in length
  • The first character is uppercased
  • The remaining substring after the first character contains at least 1 lowercased character

Code:

private boolean isInProperForm(final String token) {
    if(token.length() < 2) return false;
    if(!Character.isUpperCase(token.charAt(0)) return false;
    for(int i = 1; i < token.length(); i++) {
        if(Character.isLowerCase(token.charAt(i)) {
            return true; // our last criteria, so we are free 
                         // to return on a met condition
        }
    }
    return false; // didn't meet the last criteria, so we return false
}

If you added more criteria, you'd have to revise the last condition.

share|improve this answer

What about:

return token.matches("[A-Z].*[a-z].*");

This regular expression starts with an uppercase letter and has at least one following lowercase letter and therefore meets your requirements.

share|improve this answer
    
Another requirement was efficiency, so I would modify it slightly to: return token.matches("[A-Z].*?[a-z].*?"); inserted question marks –  jlordo Oct 17 '12 at 13:54
1  
Note that in regex, the caret ^ is not negation outside of character classes. It's a zero-width assertion denoting the start of a string. –  NullUserException Oct 19 '12 at 23:31
    
Thank you. Will keep that in mind now :) –  jlordo Oct 19 '12 at 23:35

To find if the first character is uppercase:

Character.isUpperCase(token.charAt(0))

To check if there is at least one lowercase:

if(Pattern.compile("[a-z]").matcher(token).find()) {
    //At least one lowercase
}
share|improve this answer

To check if first char is uppercase you can use:

Character.isUpperCase(s.charAt(0))
share|improve this answer

return token.matches("[A-Z].[a-z].");

share|improve this answer
    
There are already two answers giving the regular expression, and they're better formatted than this. You also need * after the . –  Teepeemm Jun 13 at 12:42

Your Answer

 
discard

By posting your answer, you agree to the privacy policy and terms of service.

Not the answer you're looking for? Browse other questions tagged or ask your own question.