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if (c=='a' || c=='e' || c=='i' || c=='o' || c=='u') { count++;

When i give the above statement it returns number of vowels in a word only if the given word is in lowercase (ie: input: friend output 2 vowels). I Want to know even if i give uppercase or mixed it should return number of vowels. How to do it?

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+1 for your question inspired so many different answers. –  DerMike Oct 13 '10 at 7:32
    
ya thank u mike –  Sumithra Oct 13 '10 at 10:32

10 Answers 10

up vote 1 down vote accepted

You can use tests like:

Character.toLowerCase(c) == 'a'

instead.

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ya I got it Thanks!! –  Sumithra Oct 13 '10 at 7:21
3  
@Sumithra: note that this will fail in a Turkish locale, because it has dotted and dotless i in both upper- and lowercase, so Character.toLowerCase('I') == 'ı' and Character.toUpperCase('i') == 'İ' en.wikipedia.org/wiki/Dotted_and_dotless_I –  Michael Borgwardt Oct 13 '10 at 7:34
    
How is that a failure? –  user334856 Oct 9 '12 at 17:41

One succint, simple way to do this without doing 10 comparisons:

if ("aeiouAEIOU".indexOf(c) != -1) { count++; }
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Here there is a complete example - note they turn the string to lower case before checking the vowels.

You can also try with a case insensitive regular expression, example from http://www.shiffman.net/teaching/a2z/regex/:

String regex = "[aeiou]";               
Pattern p = Pattern.compile(regex,Pattern.CASE_INSENSITIVE);   
int vowelcount = 0;
Matcher m = p.matcher(content);         // Create Matcher
while (m.find()) {
  //System.out.print(m.group());
  vowelcount++;
}
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Another plus for the regular expression is that it can easily extracted into a separate method and can be reused for other patterns. –  Ruben Oct 13 '10 at 7:18
1  
+1 Most elegant solution imho –  Jeroen Rosenberg Oct 13 '10 at 7:33
    
Hmmm as everyone knows, regexp is the fastest solution. I mean, development wise... –  ring0 Oct 13 '10 at 15:28

If you want to get upper or lowercase a simple approach seems to be the following:

Iterate over all the characters in the word and do the following test:

if (c=='a' || c=='e' || c=='i' || c=='o' || c=='u'
|| c=='A' || c=='E' || c=='I' || c=='O' || c=='U') 
   { count++ };
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5  
+1 for using the "principle of minimal conceptual change". This is often overlooked in the rush to refactor but there are situations (such as fixing production issues for one) where it's vital, to ensure you don't introduce other problems. There's nothing quite so frowned upon as introducing a brand new bug in a production fix :-) –  paxdiablo Oct 13 '10 at 7:31
    
+1 to the comment for "principle of minimal conceptual change".. never knew this as a concept even though we use it often. –  Jayan Oct 13 '10 at 7:37

I tell you one thing, if you give the out put in upper case then in your code accept given out put in lower case.

if string str='FRIEND'

handle str.Tolower(); Please try this I think your problem resoloved.

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How about:

if (Arrays.asList('a', 'e', 'i', 'o', 'u').contains(Character.toLowerCase(c))) {
   ...
}

I would also static final the list as well.

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1  
That list should be wrapped inside Collections.unmodifiableList(..) when declared as static final. –  whiskeysierra Oct 13 '10 at 15:16

Here is a quite simple utility class :

public class Main {
    public static int countChars(String string, Character... characters) {
        return countChars(string, new HashSet<Character>(Arrays.asList(characters)));
    }

    public static int countChars(String string, Set<Character> characters) {
        int count = 0;
        for(int i = 0; i < string.length(); i++){
            if(characters.contains(string.charAt(i))){
                count++;
            }
        }
        return count;
    }

    public static int countCharsIgnoreCase(String string, Character... characters) {
        return countCharsIgnoreCase(string, new HashSet<Character>(Arrays.asList(characters)));
    }

    public static int countCharsIgnoreCase(String string, Set<Character> characters) {
        Set<Character> finalCharacters = new HashSet<Character>();
        for (Character character : characters) {
            finalCharacters.add(Character.toUpperCase(character));
            finalCharacters.add(Character.toLowerCase(character));
        }

        return countChars(string, finalCharacters);
    }
}

code on ideone

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Not the most efficient solution, but perhaps the shortest? :)

int vowelCount = (inputString+" ").split("(?i)[aoeuiy]").length - 1

Btw, am I the only one counting 'y' as a wovel? ;)

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Didn't see a Set yet :-(

  static Character charvowels[] = { 'A','I','U','E','O','a','i','u','e','o' };
  static Set<Character> vowels = new HashSet<Character>(Arrays.asList(charvowels));
  ...
  public void countVowel(char c) {
    if (vowels.contains(c)) count++;
  }
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Using Guava's CharMatcher:

private final CharMatcher vowels = CharMatcher.anyOf("aeiouAEIOU");

...

// somewhere in your method:
if (vowels.matches(c)) {
    ...
}
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