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 wanted to get the average of each unique character in a string. I have an example here as it would be easier to illustrate it.

String:

The big brown fox

Average of each character including spaces:

T = 1/17 = .058
h = 1/17 = .058
e = 1/17 = .058
' '= 3/17 = .176
b = 2/17 = .117
i = 1/17 = .058
g = 1/17 = .058
r = 1/17 = .058
o = 2/17 = .117
w = 1/17 = .058
n = 1/17 = .058
f = 1/17 = .058
x = 1/17 = .058

So far all my attempts have failed, think my brain is not working at the moment. How do I code this? Any help or input will be greatly appreciated.

I have this code as a solution. It just came to me when I was copy pasting my code here in stack. I hope this is not a re-post because I just answered the same thing a few minutes ago but it didn't show up.

 Map<String, Integer> storeCharCount = new HashMap<String, Integer>();

        String a = "The big brown fox";


        for (int x=0; x<a.length(); x++){
            char getChar = a.charAt(x);
            String convGetChar = Character.toString(getChar);

            Integer countChar = storeCharCount.get(convGetChar);
            storeCharCount.put(convGetChar, (countChar==null?countChar=1:countChar+1));

        }
        System.out.println("Map: "+ storeCharCount);
        double RelFrequency = 0;
        for (Map.Entry<String, Integer> getValue: storeCharCount.entrySet()){

            RelFrequency = (double)(getValue.getValue())/(a.length());
            System.out.println("Character "+getValue.getKey() +"  Relative Frequency: "+RelFrequency);

        }

Here is the output

Map: {f=1, g=1,  =3, e=1, b=2, n=1, o=2, h=1, i=1, w=1, T=1, r=1, x=1}
Character f  Relative Frequency: 0.058823529411764705
Character g  Relative Frequency: 0.058823529411764705
Character    Relative Frequency: 0.17647058823529413
Character e  Relative Frequency: 0.058823529411764705
Character b  Relative Frequency: 0.11764705882352941
Character n  Relative Frequency: 0.058823529411764705
Character o  Relative Frequency: 0.11764705882352941
Character h  Relative Frequency: 0.058823529411764705
Character i  Relative Frequency: 0.058823529411764705
Character w  Relative Frequency: 0.058823529411764705
Character T  Relative Frequency: 0.058823529411764705
Character r  Relative Frequency: 0.058823529411764705
Character x  Relative Frequency: 0.058823529411764705   
share|improve this question
3  
What have you tried? –  beerbajay May 18 '12 at 10:06
2  
The most straight forward solution would be a java.util.HashMap<Character, Integer> –  Corbin May 18 '12 at 10:07
    
1) "Tnx" That word is spelled 'thanks', but leave out such noise. 2) What have you tried? I mean besides asking random strangers on the internet to do it for you. –  Andrew Thompson May 18 '12 at 10:07
    
How about you show us what you've done, then we can work from there? I'm sure we could all learn from it. –  Ewald May 18 '12 at 10:08
    
I tried using the variation of using map.put(character, charCount=null?charCount=0:charCount+1) but this code can gives me the sum of each character and I have hard time getting the value part of this map "map(Key, Value)". –  dimas May 18 '12 at 10:12
show 2 more comments

2 Answers 2

up vote 1 down vote accepted

Here's my suggestion. Start by iterating over every character in the String, update freq if found else add 1. Then iterate again to print result :

        String s = "The big brown fox";
    Map<Character, Float> m = new TreeMap<Character, Float>();
    for (char c : s.toCharArray()) {
        if (m.containsKey(c))
            m.put(c, m.get(c) + 1);
        else
            m.put(c, 1f);
    }

    for (char c : s.toCharArray()) {
        float freq = m.get(c) / s.length();
        System.out.println(c + " " + freq);
    }
share|improve this answer
    
Hi I like your code but I think its the same output as to what I have. I'll use this variation soon. thanks for your help! –  dimas May 18 '12 at 10:41
    
Is there any specific reason for choosing TreeMap over other Map implementations in this case? –  Abhilash May 18 '12 at 10:41
    
If you ask me it helps in my case because its easy to sort out the values obtain inside treemap. Other than that I don't know. –  dimas May 18 '12 at 10:51
    
@Abhilash: Any map is ok, I had a different printout part first where all characters were printed in alphabetical order, and didn't change map type afterwards. –  Kennet May 19 '12 at 11:21
add comment

i think it is not the best way but you can count each letter [a-z][A-Z] and remove every " " and then you calculate = count of letter/all letters.

i hope it helps.

share|improve this answer
    
I can't remove the space because its part of unique characters. Also I don't think that counting from a-z - A-Z would is not that efficient as I need to do this at least 80M Strings with each string having a minimum of 0-700 characters. But thank you for replying. –  dimas May 18 '12 at 10:21
    
@dimas: 80M string is not a big one actually, since you can iterate all of the chars in less than a second. If you need exact answers, you need to iterate all of the chars, otherwise, how can you count the frequency? Another way, if approximate results is acceptable for you, is random sampling of the chars. –  Mohsen May 18 '12 at 10:29
    
Hi Mohsen the data am trying to manipulate is already sampled the original number of Strings is 1.7B for approximately 14 hrs of data gathering. I still need 4 more days each with 14 hrs. thank your thoughts on it though. –  dimas May 18 '12 at 10:46
add comment

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.