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Is there a simple way (instead of traversing manually all the string, or loop for indexOf) in order to find how many times, a character appears in a string?

Say we have "abdsd3$asda$asasdd$sadas" and we want that $ appears 3 times.

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Duplicate of stackoverflow.com/questions/767759/… –  james.garriss Oct 23 '13 at 17:33
    

15 Answers 15

up vote 35 down vote accepted
String s = "...";
int counter = 0;
for( int i=0; i<s.length(); i++ ) {
    if( s.charAt(i) == '$' ) {
        counter++;
    } 
}

This is definitely the fastest way. Regexes are much much slower here, and possible harder to understand.

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Ooh, don't you mind using enhanced for loop instead of C-style going through indices? –  Dmitry Ginzburg May 28 at 8:48
    
I don't want to use implicit iterators. –  Daniel Jun 2 at 8:38
1  
firstly, surely, there's no shame to use iterators, what's the problem? Secondly, iterators are not used for looping arrays, see, for example, stackoverflow.com/a/7956673/1828937. –  Dmitry Ginzburg Jun 2 at 10:13
    
@DmitryGinzburg: The problem is we don't have a char array here, but a String. The alternate way would be to iterate over s.toCharArray(), but this would involve a copy of the Strings internal char array. –  Daniel Jun 21 at 6:03

Not optimal, but simple way to count occurrences:

String s = "...";
int counter = s.split("$").length - 1;
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1  
Almost a good idea. This fails on some simple cases though. e.g. s = "$" –  noddy May 3 at 1:47

A character frequency count is a common task for some applications (such as education) but not general enough to warrant inclusion with the core Java APIs. As such, you'll probably need to write your own function.

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Traversing the string is probably the most efficient, though using Regex to do this might yield cleaner looking code (though you can always hide your traverse code in a function).

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1  
Regex = cleaner? Maybe shorter, but I would say regexes are generally pretty cryptic (and less clean) when compared to basic looping code. –  jahroy May 30 '13 at 4:52

you can also use a for each loop. I think it is simpler to read.

int occurrences = 0;
for(char c : yourString.toCharArray()){
   if(c == '$'){
      occurrences++;
   }
}
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Well there are a bunch of different utilities for this, e.g. Apache Commons Lang String Utils

but in the end, it has to loop over the string to count the occurrences one way or another.

Note also that the countMatches method above has the following signature so will work for substrings as well.

public static int countMatches(String str, String sub)

The source for this is (from here):

public static int countMatches(String str, String sub) {
    if (isEmpty(str) || isEmpty(sub)) {
        return 0;
    }
    int count = 0;
    int idx = 0;
    while ((idx = str.indexOf(sub, idx)) != -1) {
        count++;
        idx += sub.length();
    }
    return count;
}

I was curious if they were iterating over the string or using Regex.

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Since you're scanning the whole string anyway you can build a full character count and do any number of lookups, all for the same big-Oh cost (n):

public static Map<Character,Integer> getCharFreq(String s) {
  Map<Character,Integer> charFreq = new HashMap<Character,Integer>();
  if (s != null) {
    for (Character c : s.toCharArray()) {
      Integer count = charFreq.get(c);
      int newCount = (count==null ? 1 : count+1);
      charFreq.put(c, newCount);
    }
  }
  return charFreq;
}

// ...
String s = "abdsd3$asda$asasdd$sadas";
Map counts = getCharFreq(s);
counts.get('$'); // => 3
counts.get('a'); // => 7
counts.get('s'); // => 6
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I believe the "one liner" that you expected to get is this:

"abdsd3$asda$asasdd$sadas".replaceAll( "[^$]*($)?", "$1" ).length();

Remember that the requirements are:

(instead of traversing manually all the string, or loop for indexOf)

and let me add: that at the heart of this question it sounds like "any loop" is not wanted and there is no requirement for speed. I believe the subtext of this question is coolness factor.

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Yahoo! I got voted up! My first post ever :-D –  user3090078 Feb 13 at 20:32
    
@Marcelo solution looks nice but fails with: "$$$$$$$$".split("\\$").length - 1 which = -1 or "$$$$$$$$".split("$").length - 1 which = 0. –  user3090078 Mar 25 at 23:16

Functional style (Java 8, just for fun):

str.chars().filter(num -> num == Character.getNumericValue('$')).count()
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You can look at sorting the string -- treat it as a char array -- and then do a modified binary search which counts occurrences? But I agree with @tofutim that traversing it is the most efficient -- O(N) versus O(N * logN) + O(logN)

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This is simple code, but of course a little bit slower.

String s = ...;
int countDollar = s.length()-s.replaceAll("\\$","").length();
int counta = s.length()-s.replaceAll("a","").length();

An even better answer is here in a duplicate question

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Something a bit more functional, without Regex:

public static int count(String s, char c) {
    return s.length()==0 ? 0 : (s.charAt(0)==c ? 1 : 0) + count(s.substring(1),c);
}

It's no tail recursive, for the sake of clarity.

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You can use Apache Commons' StringUtils.countMatches(String string, String subStringToCount).

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There is another way to count the number of characters in each string. Assuming we have a String as String str = "abfdvdvdfv"

We can then count the number of times each character appears by traversing only once as

for (int i = 0; i < str.length(); i++) { if(null==map.get(str.charAt(i)+"")) { map.put(str.charAt(i)+"", new Integer(1)); } else { Integer count = map.get(str.charAt(i)+""); map.put(str.charAt(i)+"", count+1); } }

We can then check the output by traversing the Map as

` for (Map.Entry entry:map.entrySet()) { System.out.println(entry.getKey()+" count is : "+entry.getValue())

}`
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 public static int countChars(String input,char find){      
            if(input.indexOf(find) != -1){          
            return  countChars(input.substring(0, input.indexOf(find)), find)+ 
                countChars(input.substring(input.indexOf(find)+1),find) + 1;
            }
            else {
                return 0;
            }

        }
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1  
This works, but it's confusing and overcomplicated. Why use recursion - let alone this convoluted implementation - when iteration can be used simply and cleanly? Also, indexOffinds the leftmost index of the target string, so countChars(input.substring(0, input.indexOf(find)), find) will always be equal to zero; you could scrap the first line of your return expression and get the same result. –  Mark Amery Jan 26 '13 at 16:03

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