4

If I am given an ArrayList of strings, i.e. {"hello", "goodbye", "morning", "night"}, how do I check how many a's, b's, c's, etc. there are in the list?

The method must return an array of ints, where position [0] is the numbers of a's, etc. For example, the returnArray[1] = 1, because there is one b in the list. Is there a better way to do this than simply hardcoding each letter?

public static int[] getLetters( ArrayList<String> list) {
    int [] result = new int[25];
    if(list.contains('a')) {
        result[0] = result[0] + 1;
    }
    return result;
}

Is there a better way than repeating the above strategy 25 more times?

  • You need to get each character, you can then use the character to index the array – MadProgrammer Sep 23 '15 at 5:36
  • If I understand your question correct, it does not matter that "hello" and "goodbye" (etc.) are separate words. A string with a concatenation of all the elements in the list would lead to the same result. Is that true? What about uppercase and any non alphabet characters? – reto Sep 23 '15 at 5:39
  • new int[25] is going to cause you all sorts of grief, unless you're Greek. Though, given you're using a/b/c instead of α/β/γ, that's unlikely. – paxdiablo Sep 23 '15 at 5:45
8

You can use the char as a means to address the array, for example...

ArrayList<String> list = new ArrayList<>(Arrays.asList(new String[]{"hello", "goodbye", "morning", "night"}));
int[] results = new int[26];
for (String value : list) {
    for (char c : value.toCharArray()) {
         // 'a' is the lowest range (0), but the ascii for 'a' is 97
        results[c - 'a'] += 1;
    }
}

Which results in...

[0, 1, 0, 1, 2, 0, 3, 2, 2, 0, 0, 2, 1, 3, 4, 0, 0, 1, 0, 1, 0, 0, 0, 0, 1, 0]

nb: This will only work for lower case characters, if you have any upper case characters, you'll get an array out of bounds error. You could put range checking in for each character to make sure it's between a and z, but that's up to you

  • Kudos for just using 26. Though,as stated, production-ready code should be bulletproof against a string like "WTF?" :-) – paxdiablo Sep 23 '15 at 5:48
  • What about results[c - 'a']++; – Shadow Sep 23 '15 at 5:52
  • @Shadow That should also work ;) – MadProgrammer Sep 23 '15 at 5:53
  • 1
    @paxdiablo That would come down to the requirements, which are clearly defined (and you are right), in this case (as I understand it), I might 1. convert the String to lowercase to start with and then check to see if the char is between a and z and basically discard all the characters, but that assumes we only care about those characters ;) – MadProgrammer Sep 23 '15 at 5:55
  • 1
    @Aivean Possibly, but I'm lazy and it was easier to type – MadProgrammer Sep 23 '15 at 6:02
0

Yo can convert your Array toCharArray() and then you can compare each letter with the alphabet you want.

  • Thanks for the reply, but can you give me a quick bit of code to show me how that would work? Thanks! – Alex S Sep 23 '15 at 5:39
0

With java 8, you could do it this way:

List<String> list = new ArrayList<>(Arrays.asList("hello", "goodbye", "morning", "night"));

Map<String, Long> map = list.stream()
    .flatMap(word -> Arrays.stream(word.split("")))
    .collect(Collectors.groupingBy(
        letter -> letter, 
        Collectors.counting()));

System.out.println(map); // {r=1, b=1, t=1, d=1, e=2, g=3, h=2, i=2,
                         // y=1, l=2, m=1, n=3, o=4}

Building the required array from this map is left as an excercise to the reader ;)

0

You can rely on a map and the Character class as follows:

import java.util.List;
import java.util.ArrayList;
import java.util.HashMap;
import java.util.HashSet;
import java.util.Set;

class C {
    public static void main(String[] args) {
        String w1 = "samefoo";
        String w2 = "barsame";

        ArrayList<String> al = new ArrayList<String>();
        al.add(w1);
        al.add(w2);

        // this is your method --->
        HashMap<Character, Integer> map = new HashMap<Character, Integer>();
        for(String str: al) {
            for(int i = 0; i < str.length(); ++i) {
                char k = str.charAt(i);
                if(map.containsKey(k)) {
                    map.put(k, map.get(k) + 1);
                } else {
                    map.put(k, 1);
                }
            }
        }
        // <---

        for(char c: map.keySet()) {
            System.out.println(c + ":" + map.get(c));
        }
    }
}

Obviously, all the ones not in the map have implicitly 0 as counter.

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